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...
62 Commits
Author SHA1 Message Date
MightyPork 8028f14387 version bump 2017-09-05 02:14:55 +02:00
MightyPork daba5340f7 fixes and tweaks. implemented polling reload on HB loss 2017-09-05 02:13:16 +02:00
MightyPork a82e14961c RAM tuning 2017-09-05 01:48:37 +02:00
MightyPork 6c9ae7e126 remove debug log 2017-09-04 22:54:27 +02:00
MightyPork a3c84f9a8f Merge branch 'better-mouse' 2017-09-04 22:53:38 +02:00
MightyPork 7aa3cd7f75 working mouse 2017-09-04 22:53:29 +02:00
MightyPork 58ed6098c4 untested impl of mouse tracking modes 2017-09-04 22:03:08 +02:00
MightyPork 16a36a3d26 cleaning 2017-09-04 01:49:17 +02:00
MightyPork 9d1cefeaab done client-side mouse reporting 2017-09-04 01:46:00 +02:00
MightyPork 357600de8f expanded Help section and grouped some things; added screen resize command 2017-09-04 01:01:16 +02:00
MightyPork fe699c7918 Temporarily fixed #71 by fixed cell width, rel 7.0 preparations 2017-09-03 23:06:55 +02:00
MightyPork 4edaa0687d Implemented heartbeat 2017-09-03 22:37:54 +02:00
MightyPork f8ebae044a Fixed #63 2017-09-03 22:25:02 +02:00
MightyPork 9e9539472c renamed the project in the cmakelists clion file 2017-09-03 22:05:48 +02:00
MightyPork b57e0ee75b change GitHub URL 2017-09-03 22:02:02 +02:00
MightyPork 65e34a1634 Updated help page 2017-09-03 21:54:37 +02:00
MightyPork 6f32a6ef1a fix messed up insert/delete with region 2017-09-02 01:04:30 +02:00
MightyPork d3468a109c fix bug with hanging flag left set after GoTo col 80 2017-09-02 00:40:08 +02:00
MightyPorkandGitHub 8f82b81434 Update README.md 2017-08-25 15:19:26 +02:00
MightyPorkandGitHub 653dc55d85 Update README.md 2017-08-25 15:18:55 +02:00
MightyPork dda469ff21 Updated the xterm comparison page 2017-08-25 15:07:16 +02:00
MightyPork 3515e178cb Updated readme 2017-08-25 15:06:54 +02:00
MightyPork 5fd5c92390 bumped patch number 2017-08-25 12:47:41 +02:00
MightyPork e3ae34a932 fix broken cursor save / restore 2017-08-25 12:47:21 +02:00
MightyPork 423022b8bc Fixed the DECCOLM bug (not clearing screen etc) and a scrolling up not erasing freed lines bug 2017-08-25 12:26:18 +02:00
MightyPork fce3995800 changed mkfile attrs 2017-08-25 01:40:15 +02:00
MightyPork 67625a9317 bumped version for a new pre release for testing 2017-08-25 01:12:30 +02:00
MightyPork 35e1a788f0 Merge branch 'scrolling-region' 2017-08-25 01:08:43 +02:00
MightyPork dd68c112b0 implemented scrolling region and origin mode 2017-08-25 01:08:36 +02:00
MightyPork 2c7c496862 Merge branch 'throttle-redraw' 2017-08-24 23:08:17 +02:00
MightyPork 73c943bb97 throttle screen redraw via cooldown, setting 10/30 largely eliminates dropped bytes 2017-08-24 23:08:09 +02:00
MightyPork beda5e67c0 Merge branch 'async_uart' 2017-08-24 22:17:54 +02:00
MightyPork 357c81ba07 added async buffers for uart0, maybe improved byte drop ratio 2017-08-24 22:12:59 +02:00
MightyPork acd8801d33 W.I.P. new async Rx Tx buffer, probably not working 2017-08-24 00:47:14 +02:00
MightyPork 5c57ea3b28 Logging is now toggleable and updates are postponed if socket is busy 2017-08-22 23:05:21 +02:00
MightyPork 0e73f57da1 missing paren 2017-08-21 22:54:20 +02:00
MightyPork 1f18c7d1f6 moved the styles to the top 2017-08-21 22:47:54 +02:00
MightyPork 2a76eaee8e removed css files for doc and inlined them 2017-08-21 22:45:26 +02:00
MightyPork 3b8cfd41e3 small fixes & added doc directory 2017-08-21 22:39:59 +02:00
MightyPork 09cc66c75c fixed broken character sets & added character set 1 - augmented DOS codepage 437 2017-08-21 01:35:28 +02:00
MightyPork 7947b3a88c tab bug fixed 2017-08-20 22:44:56 +02:00
MightyPork 3355295aa3 CSI split to subroutines 2017-08-20 22:25:42 +02:00
MightyPork 87e0030be8 lowered fifo full threshold, seems the byte drop bug has improved 2017-08-20 20:51:42 +02:00
MightyPork 6d9d068268 split parser handlers file to multiple 2017-08-20 20:41:56 +02:00
MightyPork 276af04945 implemented CSI ! p as an alias to ESC c 2017-08-20 14:57:47 +02:00
MightyPork 8d9c5bb246 DECREPTPARM is now ID'd as Response to Query explicitly 2017-08-20 14:50:43 +02:00
MightyPork 59f26adf68 Stubs for scrolling region and other functions, implemented inverse video, improved parse (hardeing against xterm travesty), optimize tabs, DECREPTPARM 2017-08-20 14:42:38 +02:00
MightyPork 5995988a9b BEEEEEEEEEEEEEEEEEP 2017-08-20 00:28:31 +02:00
MightyPork fe714bf473 Parser cleanup; implemented #67, support for DCS queries, added doc comments, SGR enum 2017-08-19 23:15:15 +02:00
MightyPork 68747d493c Tab Stops™ 2017-08-19 18:58:55 +02:00
MightyPork 184b186b85 some missing sequences 2017-08-19 03:06:55 +02:00
MightyPork af47249492 NLM 2017-08-19 03:02:23 +02:00
MightyPork e22ae1e66a Buffered Logging + fix bel osc bug 2017-08-19 02:55:01 +02:00
MightyPork bf1507b624 ignore cursor chars inside escape seqs + can, sub terminate, esc start new 2017-08-19 01:35:30 +02:00
MightyPork b5378a6626 config toggle for xterm fn keys and display timeout added 2017-08-18 14:52:51 +02:00
MightyPork 9cac029e58 implemented numpad alt mode, fn keys alt mode and cursor alt mode 2017-08-18 14:19:54 +02:00
MightyPork 8117229926 moving some stuff around, removed "soft reset" seq, added server-side support for control key remaps 2017-08-18 00:38:46 +02:00
MightyPork 04b75b8218 xenl 2017-08-17 01:38:25 +02:00
MightyPork 89fca5c40a insert mode 2017-08-17 00:51:28 +02:00
MightyPork ca410736f7 removed some logging and version bump 2017-08-15 03:14:07 +02:00
MightyPork 2ca8bf1483 workaround for buggy ets_timer_disarm causing bootloop in some devices with perser tiemout > 0 2017-08-15 02:29:16 +02:00
MightyPork 35393827a9 implemented ctrl-, f- and other keys. enter now sends CR, use ctrl-enter for LF. 2017-08-15 01:04:58 +02:00
70 changed files with 9017 additions and 2151 deletions
+23 -5
View File
@@ -5,7 +5,7 @@ cmake_minimum_required(VERSION 3.7)
# Do not attempt to build it with cmake, use make instead. # # Do not attempt to build it with cmake, use make instead. #
################################################################### ###################################################################
project(esp_vt100_firmware) project(ESPTerm)
set(CMAKE_CXX_STANDARD GNU99) set(CMAKE_CXX_STANDARD GNU99)
@@ -110,6 +110,8 @@ set(SOURCE_FILES
user/serial.h user/serial.h
user/routes.c user/routes.c
user/routes.h user/routes.h
user/uart_asyncdrv.c-
user/uart_asyncdrv.h-
user/cgi_main.c user/cgi_main.c
user/cgi_main.h user/cgi_main.h
user/cgi_sockets.c user/cgi_sockets.c
@@ -117,14 +119,29 @@ set(SOURCE_FILES
user/cgi_sockets.h user/cgi_sockets.h
user/ansi_parser_callbacks.c user/ansi_parser_callbacks.c
user/ansi_parser_callbacks.h user/ansi_parser_callbacks.h
user/user_main.h
user/wifimgr.c user/wifimgr.c
user/wifimgr.h user/wifimgr.h
user/persist.c user/persist.c
user/persist.h user/persist.h
include/helpers.h include/helpers.h
user/syscfg.c user/syscfg.c
user/syscfg.h user/ansi_utf.c user/ansi_utf.h) user/syscfg.h
user/ascii.h
user/sgr.h
user/apars_utf8.c
user/apars_utf8.h
user/apars_logging.h
user/version.h
user/apars_csi.c
user/apars_csi.h
user/apars_short.c
user/apars_short.h
user/apars_string.c
user/apars_string.h
user/apars_osc.c
user/apars_osc.h
user/apars_dcs.c
user/apars_dcs.h user/uart_buffer.c user/uart_buffer.h user/jstring.c user/jstring.h)
include_directories(include) include_directories(include)
include_directories(user) include_directories(user)
@@ -145,7 +162,8 @@ add_definitions(
-DFLAG_GZIP=2 -DFLAG_GZIP=2
-DADMIN_PASSWORD="asdf" -DADMIN_PASSWORD="asdf"
-DGIT_HASH="blabla" -DGIT_HASH="blabla"
-DDEBUG_ANSI=1 -DDEBUG_HEAP=1
-DDEBUG_MALLOC=1
-DESPFS_HEATSHRINK) -DESPFS_HEATSHRINK)
add_executable(esp_vt100_firmware ${SOURCE_FILES}) add_executable(ESPTerm ${SOURCE_FILES})
+3 -4
View File
@@ -67,13 +67,12 @@ CFLAGS = -Os -ggdb -std=gnu99 -Werror -Wpointer-arith -Wundef -Wall -Wl,-EL -fn
-nostdlib -mlongcalls -mtext-section-literals -D__ets__ -DICACHE_FLASH \ -nostdlib -mlongcalls -mtext-section-literals -D__ets__ -DICACHE_FLASH \
-Wno-address -Wno-unused -Wno-address -Wno-unused
CFLAGS += -DHTTPD_MAX_BACKLOG_SIZE=10240
CFLAGS += -DGIT_HASH='"$(shell git rev-parse --short HEAD)"' CFLAGS += -DGIT_HASH='"$(shell git rev-parse --short HEAD)"'
CFLAGS += -DADMIN_PASSWORD=$(ADMIN_PASSWORD) CFLAGS += -DADMIN_PASSWORD=$(ADMIN_PASSWORD)
# Debug logging ifdef GLOBAL_CFLAGS
CFLAGS += -DDEBUG_ANSI=1 CFLAGS += $(GLOBAL_CFLAGS)
CFLAGS += -DDEBUG_INPUT=1 endif
# linker flags used to generate the main object file # linker flags used to generate the main object file
LDFLAGS = -nostdlib -Wl,--no-check-sections -u call_user_start -Wl,-static LDFLAGS = -nostdlib -Wl,--no-check-sections -u call_user_start -Wl,-static
+69 -43
View File
@@ -1,76 +1,100 @@
# ESPTerm # ESPTerm
ESP8266 Wireless Terminal Emulator project ESPTerm is a terminal emulator running on the ESP8266 WiFi chip.
The firmware emulates VT102 with some additional features based on `xterm` and later VT models, and the terminal screen can be accessed using any web browser, even on a phone or tablet. It works with ESP-01, ESP-01S, ESP-12 and likely many other modules (I use ESP-12 on a NodeMCU board for development).
This project is based on SpriteTM's esphttpd and libesphttpd, forked by MightyPork to ESPTerm can add remote access via WiFi to any embeded project, all you need is a serial port.
[MightyPork/esphttpd](https://github.com/MightyPork/esphttpd) and
[MightyPork/libesphttpd](https://github.com/MightyPork/libesphttpd) respectively.
Those forks include improvements not available upstream. ## Screenshots, photos
## Goals - Look at the [GitHub releases page][releases], there are some pics.
The project aims to be a wireless terminal emulator that'll work with the likes of ## ESPTerm features
Arduino, AVR, PIC, STM8, STM32, mbed etc, anything with UART, even your USB-serial dongle will work.
Connect it to the master device via UART and use the terminal on the built-in web page for debug logging, - **Robust WiFi configuration interface**
remote control etc. It works like a simple LCD screen, in a way. - static IP
- DHCP
- AP channel and strength setting
- AP password
- SSID search for finding your existing network
- **Almost complete VT102 emulation** with some extras
- *Sufficient to run most Linux console applications, including ncurses-based ones\**
- All standard SGR (text style attributes) supported
- Full UTF-8 support
- Alternate character sets support
- 16 colors
- Scrolling Region, Origin Mode
- Tab Stops
- Cursor save/restore
- Character/Line insert, delete, clear operations
- Audible BEL (ASCII 7 beep)
- Most standard queries (get cursor position, get SGR, get screen size...)
- All DEC private options either implemented or safely consumed by the parser
- **Other features:**
- Screen size up to 80x25
- Real-time screen update via WebSocket
- Button to open Android software keyboard
- 5 buttons under the screen for quick commands
- Button labels can be changed (by OSC commands or via settings)
- Screen title can be changed (by OSC commands or via settings)
- Built-in help page with basic troubleshooting and command reference
It lets you make simple UI (manipulating the screen with ANSI sequences) and receive input from buttons on \*) Linux console applications run via agetty at ttyUSB0 were used for testing, obviously you'll be better off using SSH for remote shell
the webpage (and keyboard on PC). There is some rudimentary touch input as well.
The screen size is adjustable up to 25x80 (via a special control sequence) and uses 16 standard colors ESPTerm firmware is written in C and is based on SpriteTM's `libesphttpd` http server library, forked by MightyPork to
(8 dark and 8 bright). Both default size and colors can be configured in the settings. [MightyPork/libesphttpd](https://github.com/MightyPork/libesphttpd) respectively. This fork includes various improvements and changes required by the project.
## Project status ## Running ESPTerm
*A little buggy, but mostly okay! There are many features and fixes planned, but it should be fairly usable already.* To run ESPTerm on your ESP8266, either build it yourself from source using `xtensa-lx106-elf-gcc` (and the included Makefile), or download pre-built binaries from the [GitHub releases section][releases]. Flash the binaries using [esptool](https://github.com/espressif/esptool).
- We have a working **2-way terminal** (UART->ESP->Browser and vice versa) with real-time update via websocket. ### Pins
This means that what you type in the browser is sent to UART0 and what's received on UART0 is processed by the
ANSI parser and applied to the internal screen buffer. You'll also immediately see the changes in your browser.
There's a filter in the way that discards garbage characters (like unicode and most ASCII outside 32-126).
For a quick test, try connecting the UART0 Rx and Tx with a piece of wire to make a loopback interface.
*NOTE: Use the bare module, not something like LoLin or NodeMCU with a FTDI, it'll interfere*.
You should then directly see what you type & can even try some ANSI sequences, right from the browser.
- All ANSI sequences that make sense, as well as control codes like Backspace and CR / LF are implemented.
Set colors with your usual `\e[31;1m` etc (see Wikipedia). `\e` is the ASCII code 27 (ESC).
Arrow keys generate ANSI sequences, ESC sends literal ASCII code 27 etc. Almost everything can be input
straight from the browser.
- Buttons pressed in the browser UI send ASCII codes 1..5. Mouse clicks are sent as `\e[<row>;<col>M`. - Pin GPIO2 is used for debug messages at 115200 baud, 8 bit, no parity.
- Pins Rx and Tx are used for the main communication UART. Connect your USB-serial dongle or application microcontroller here.
- There's a built-in WiFi config page and a Help page with a list of all supported ANSI sequences and other details. ### Console commands - escape sequences
- A list of most supported commands can be found here: http://bits.ondrovo.com/espterm-xterm.html
- To set the screen title, use `OSC 0 ; title ST` (`OSC` = `ESC ]`, `ST` = `ESC \` or ASCII 7)
- To set buttons text, use `OSC 8 1 ; text ST` with 81 through 85.
- Mouse clicks (as of v0.6.9) generate `CSI row ; col M` at the Tx pin (`CSI` = `ESC [`)
- For more info, look eg. on Wikipedia or here: http://ascii-table.com/ansi-escape-sequences-vt-100.php
### Setup
- When flashed for the first time, ESPTerm wipes any possible previous WiFi configuration, because it implements its own WiFi config manager with many additional features.
- It should start in AP mode, the default SSID being `TERM-MACADR` with `MACADR` being three unique bytes from the MAC address / Device ID.
- Connect to it via a smartphone or laptop and configure WiFi as desired.
- To re-enable the built-in AP, hold the BOOT (GPIO0) button for about 1 s, until the blue LED starts slowly flashing. Then release the button!
- To reset all settings to defaults, hold the BOOT (GPIO0) button until the blue LED flashes rapidly, then release the button.
- When you accidentally make the blue LED flash, you can cancel the operation by pressing Reset or disconnecting its power supply. The wipe is done on the button's release.
### Config files
ESPTerm has two config "files", one for defaults and one for the currently used settings. In the case of the terminal config, there is also a third, temporary file for changes done via ESC commands.
When you get your settings *just right*, you can store them as defaults, which can then be at any time restored by holding the BOOT (GPIO0) button. You can do this on the System Settings page. This asks for an "admin password", which you can define when building the firmware in the `esphttpdconfig.mk` file. The default password is `19738426`. This password can't presently be changed without re-flashing the firmware.
You can also restore everything (except the saved defaults) to "factory defaults", there is a button for this on the System Settings page. Those are the initial values in the config files.
## Development ## Development
### Installation for development ### Installation for development
- Clone this project with `--recursive`, or afterwards run `git submodule init` and `git submodule update`. - Clone this project with `--recursive`, or afterwards run `git submodule init` and `git submodule update`.
- Install [esp-open-sdk](https://github.com/pfalcon/esp-open-sdk/) and build it with - Install [esp-open-sdk](https://github.com/pfalcon/esp-open-sdk/) and build it with
`make toolchain esptool libhal STANDALONE=n`. `make toolchain esptool libhal STANDALONE=n`.
Make sure the `xtensa-lx106-elf/bin` folder is on $PATH. Make sure the `xtensa-lx106-elf/bin` folder is on $PATH.
- Install [esptool](https://github.com/espressif/esptool) (it's in the Arch community repo and on AUR, too) - Install [esptool](https://github.com/espressif/esptool) (it's in the Arch community repo and on AUR, too)
- Set up udev rules so you have access to ttyUSB0 without root, eg: - Set up udev rules so you have access to ttyUSB0 without root, eg:
``` ```
KERNEL=="tty[A-Z]*[0-9]*", GROUP="uucp", MODE="0666" KERNEL=="tty[A-Z]*[0-9]*", GROUP="uucp", MODE="0666"
``` ```
- Install Ragel if you wish to make modifications to the ANSI sequence parser. - Install Ragel if you wish to make modifications to the ANSI sequence parser.
If not, comment out its call in `build_parser.sh`. The `.rl` file is the actual source, the `.c` is generated. If not, comment out its call in `build_parser.sh`. The `.rl` file is the actual source, the `.c` is generated.
- Install Ruby and then the `sass` package with `gem install sass` (or try some other implementation, such as - Install Ruby and then the `sass` package with `gem install sass` (or try some other implementation, such as
`sassc`) `sassc`)
- Make sure your `esphttpdconfig.mk` is set up properly - link to the SDK etc. - Make sure your `esphttpdconfig.mk` is set up properly - link to the SDK etc.
The IoT SDK is now included in the project due to problems with obtaining the correct version and patching it. The IoT SDK is now included in the project due to problems with obtaining the correct version and patching it.
@@ -80,7 +104,7 @@ than welcome!
### Web resources ### Web resources
The web resources are in `html_orig`. To prepare for a build, run `build_web.sh`, which packs them and The web resources are in `html_orig`. To prepare for a build, run `build_web.sh`, which packs them and
copies over to `html`. The compression and minification is handled by scripts in libesphttpd, specifically copies over to `html`. The compression and minification is handled by scripts in libesphttpd, specifically,
it runs yuicompressor on js and css and gzip or heatshrink on the other files. The `html` folder is it runs yuicompressor on js and css and gzip or heatshrink on the other files. The `html` folder is
then embedded in the firmware image. then embedded in the firmware image.
@@ -97,3 +121,5 @@ Sometimes it does not, particularly with `make -B`. Try just plain `make`. You c
build scripts manually, too. build scripts manually, too.
To flash, just run `make flash`. To flash, just run `make flash`.
[releases]: https://github.com/MightyPork/esp-vt100-firmware/releases
File diff suppressed because it is too large Load Diff
+15
View File
@@ -40,3 +40,18 @@ ESP_SPI_FLASH_SIZE_K = 1024
# Admin password, used to store settings to flash as defaults # Admin password, used to store settings to flash as defaults
ADMIN_PASSWORD = "19738426" ADMIN_PASSWORD = "19738426"
GLOBAL_CFLAGS = \
-DDEBUG_ROUTER=0 \
-DDEBUG_CAPTDNS=0 \
-DDEBUG_HTTP=1 \
-DDEBUG_ESPFS=0 \
-DDEBUG_WS=0 \
-DDEBUG_ANSI=1 \
-DDEBUG_ANSI_NOIMPL=1 \
-DHTTPD_MAX_BACKLOG_SIZE=8192 \
-DHTTPD_MAX_HEAD_LEN=1024 \
-DHTTPD_MAX_POST_LEN=512 \
-DDEBUG_INPUT=0 \
-DDEBUG_HEAP=1 \
-DDEBUG_MALLOC=0
+2 -6
View File
@@ -16,14 +16,10 @@ return [
'labels_seq' => 'TESPTerm local debug1235', 'labels_seq' => 'TESPTerm local debug1235',
'screenData' => '  HELLOx NRE3',//'\u000b\u0001\u001b\u0001\u0001\u0001\u0001\u0001\f\u0005\u0001\u0010\u0003HELLOx\u0002\u000b\u0001\u0001N\u0001RE\u00023\u0001', //, 'screenData' => '  HELLOx NRE3',//'\u000b\u0001\u001b\u0001\u0001\u0001\u0001\u0001\f\u0005\u0001\u0010\u0003HELLOx\u0002\u000b\u0001\u0001N\u0001RE\u00023\u0001', //,
/*'{
"w": 26, "h": 10,
"x": 10, "y": 5,
"cv": 1, "fg": 10, "bg": 2,
"screen": ""
}',//"70 t259"*/
'parser_tout_ms' => 10, 'parser_tout_ms' => 10,
'display_tout_ms' => 20,
'fn_alt_mode' => '1',
'opmode' => '2', 'opmode' => '2',
'sta_enable' => '0', 'sta_enable' => '0',
+3 -1
View File
@@ -14,6 +14,8 @@ function process_html($s) {
return $s; return $s;
} }
$no_tpl_files = ['help', 'cfg_wifi_conn'];
ob_start(); ob_start();
foreach($_pages as $_k => $p) { foreach($_pages as $_k => $p) {
if ($p->bodyclass == 'api') continue; if ($p->bodyclass == 'api') continue;
@@ -30,7 +32,7 @@ foreach($_pages as $_k => $p) {
// $s = process_html($s); // $s = process_html($s);
ob_clean(); // clean up ob_clean(); // clean up
$of = __DIR__ . '/../html/' . $_k . '.tpl'; $of = __DIR__ . '/../html/' . $_k . (in_array($_k, $no_tpl_files) ? '.html' : '.tpl');
file_put_contents($of, $s); // write to a file file_put_contents($of, $s); // write to a file
} }
+60 -17
View File
@@ -416,8 +416,12 @@ a:hover {
cursor: pointer; } cursor: pointer; }
ul > * { ul > * {
padding-top: .2em; padding-top: .3em;
padding-bottom: .2em; } padding-bottom: .3em; }
ul {
margin-top: 0;
margin-bottom: 0; }
/* Main outer container */ /* Main outer container */
#outer { #outer {
@@ -629,7 +633,36 @@ ul > * {
.Box.mobopen .Row.explain { .Box.mobopen .Row.explain {
margin-top: 18px; } } margin-top: 18px; } }
.Box.fold h2 {
position: relative;
cursor: pointer;
padding: 2px 1.3rem 2px 5px;
margin: 0 -5px 0 -5px; }
.Box.fold h2::after {
position: absolute;
right: 4px;
content: '▸';
top: 50%;
font-size: 120%;
font-weight: bold;
transform: translate(0, -50%) rotate(90deg); }
.Box.fold.expanded h2::after {
transform: translate(-25%, -50%) rotate(-90deg);
margin-bottom: 1rem; }
.Box.fold .Row {
display: none; }
.Box.fold.expanded .Row {
display: flex; }
.Box.fold.expanded .Row.v {
display: block; }
@media screen and (max-width: 544px) { @media screen and (max-width: 544px) {
.Box.fold h2, .Box.mobcol h2 {
padding: 2px 1.3rem 2px 5px;
margin: 0 -5px 0 -5px; }
.Box.fold.expanded h2::after, .Box.mobcol.expanded h2::after {
margin-bottom: 1rem; }
.Box.mobcol h2 { .Box.mobcol h2 {
position: relative; position: relative;
cursor: pointer; cursor: pointer;
@@ -648,10 +681,12 @@ ul > * {
margin-bottom: 1rem; } margin-bottom: 1rem; }
.Box.mobcol .Row { .Box.mobcol .Row {
display: none; } display: none; }
.Box.mobcol #ap-box {
display: none; }
.Box.mobcol.expanded .Row { .Box.mobcol.expanded .Row {
display: flex; } display: flex; }
.Box.mobcol.expanded .Row.v {
display: block; }
.Box.mobcol #ap-box {
display: none; }
.Box.mobcol.expanded #ap-box { .Box.mobcol.expanded #ap-box {
display: block; } } display: block; } }
.Modal { .Modal {
@@ -875,6 +910,16 @@ form {
margin-top: 0; } margin-top: 0; }
.Row:last-child { .Row:last-child {
margin-bottom: 0; } margin-bottom: 0; }
.Row.v {
display: block; }
.Row .aside {
float: right;
margin-left: 5px;
margin-bottom: 5px; }
@media screen and (max-width: 544px) {
.Row .aside {
margin: 0;
float: none; } }
.Row .spacer { .Row .spacer {
width: 160px; } width: 160px; }
@media screen and (max-width: 544px) { @media screen and (max-width: 544px) {
@@ -1107,7 +1152,7 @@ body.term #screen {
-ms-user-select: none; -ms-user-select: none;
user-select: none; user-select: none;
font-family: monospace; font-family: monospace;
font-size: 16pt; font-size: 20px;
white-space: nowrap; white-space: nowrap;
background: #111213; background: #111213;
padding: 6px; padding: 6px;
@@ -1115,12 +1160,11 @@ body.term #screen {
border: 2px solid #3983CD; } border: 2px solid #3983CD; }
body.term #screen span { body.term #screen span {
white-space: pre; white-space: pre;
cursor: pointer; } cursor: pointer;
body.term #screen span:hover { display: inline-block;
outline: 1px solid rgba(255, 255, 255, 0.4); } line-height: 1.15em;
@media screen and (max-width: 544px) { width: 0.6em;
body.term #screen span:hover { overflow: visible; }
outline: 0 none; } }
body.term #buttons { body.term #buttons {
margin-top: 10px; margin-top: 10px;
white-space: nowrap; } white-space: nowrap; }
@@ -1605,20 +1649,19 @@ body.term #botnav {
padding: 0.38198rem 0; padding: 0.38198rem 0;
text-align: center; } text-align: center; }
.ansiref, .ansiref td, .ansiref th { .Row table, .Row table td, .Row table th {
border: 1px solid #666; } border: 1px solid #666; }
.ansiref th, .ansiref td { .Row table th, .Row table td {
white-space: normal; } white-space: normal; }
.ansiref th { .Row table th {
background-color: rgba(255, 255, 255, 0.1); } background-color: rgba(255, 255, 255, 0.1); }
.ansiref td:nth-child(1) { .ansiref td:nth-child(1) {
font-family: monospace; } font-family: monospace; }
.ansiref.w100 { .ansiref.w100 {
width: 100%; } width: 100%; }
.ansiref.w100 td:nth-child(1) { .ansiref.w100 td:nth-child(1) {
width: 9em; } width: 6em; }
.ansiref.w100 td:nth-child(2) {
width: 8em; }
@media screen and (min-width: 545px) { @media screen and (min-width: 545px) {
.mq-phone { .mq-phone {
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@@ -701,6 +701,316 @@
// Set Chibi's global namespace here ($) // Set Chibi's global namespace here ($)
w.$ = chibi; w.$ = chibi;
}()); }());
// keymaster.js
// (c) 2011-2013 Thomas Fuchs
// keymaster.js may be freely distributed under the MIT license.
;(function(global){
var k,
_handlers = {},
_mods = { 16: false, 18: false, 17: false, 91: false },
_scope = 'all',
// modifier keys
_MODIFIERS = {
'⇧': 16, shift: 16,
'⌥': 18, alt: 18, option: 18,
'⌃': 17, ctrl: 17, control: 17,
'⌘': 91, command: 91
},
// special keys
_MAP = {
backspace: 8, tab: 9, clear: 12,
enter: 13, 'return': 13,
esc: 27, escape: 27, space: 32,
left: 37, up: 38,
right: 39, down: 40,
del: 46, 'delete': 46,
home: 36, end: 35,
pageup: 33, pagedown: 34,
',': 188, '.': 190, '/': 191,
'`': 192, '-': 189, '=': 187,
';': 186, '\'': 222,
'[': 219, ']': 221, '\\': 220,
// added:
insert: 45,
np_0: 96, np_1: 97, np_2: 98, np_3: 99, np_4: 100, np_5: 101,
np_6: 102, np_7: 103, np_8: 104, np_9: 105, np_mul: 106,
np_add: 107, np_sub: 109, np_point: 110, np_div: 111, numlock: 144,
},
code = function(x){
return _MAP[x] || x.toUpperCase().charCodeAt(0);
},
_downKeys = [];
for(k=1;k<20;k++) _MAP['f'+k] = 111+k;
// IE doesn't support Array#indexOf, so have a simple replacement
function index(array, item){
var i = array.length;
while(i--) if(array[i]===item) return i;
return -1;
}
// for comparing mods before unassignment
function compareArray(a1, a2) {
if (a1.length != a2.length) return false;
for (var i = 0; i < a1.length; i++) {
if (a1[i] !== a2[i]) return false;
}
return true;
}
var modifierMap = {
16:'shiftKey',
18:'altKey',
17:'ctrlKey',
91:'metaKey'
};
function updateModifierKey(event) {
for(k in _mods) _mods[k] = event[modifierMap[k]];
};
function isModifierPressed(mod) {
if (mod=='control'||mod=='ctrl') return _mods[17];
if (mod=='shift') return _mods[16];
if (mod=='meta') return _mods[91];
if (mod=='alt') return _mods[18];
return false;
}
// handle keydown event
function dispatch(event) {
var key, handler, k, i, modifiersMatch, scope;
key = event.keyCode;
if (index(_downKeys, key) == -1) {
_downKeys.push(key);
}
// if a modifier key, set the key.<modifierkeyname> property to true and return
if(key == 93 || key == 224) key = 91; // right command on webkit, command on Gecko
if(key in _mods) {
_mods[key] = true;
// 'assignKey' from inside this closure is exported to window.key
for(k in _MODIFIERS) if(_MODIFIERS[k] == key) assignKey[k] = true;
return;
}
updateModifierKey(event);
// see if we need to ignore the keypress (filter() can can be overridden)
// by default ignore key presses if a select, textarea, or input is focused
if(!assignKey.filter.call(this, event)) return;
// abort if no potentially matching shortcuts found
if (!(key in _handlers)) return;
scope = getScope();
// for each potential shortcut
for (i = 0; i < _handlers[key].length; i++) {
handler = _handlers[key][i];
// see if it's in the current scope
if(handler.scope == scope || handler.scope == 'all'){
// check if modifiers match if any
modifiersMatch = handler.mods.length > 0;
for(k in _mods)
if((!_mods[k] && index(handler.mods, +k) > -1) ||
(_mods[k] && index(handler.mods, +k) == -1)) modifiersMatch = false;
// call the handler and stop the event if neccessary
if((handler.mods.length == 0 && !_mods[16] && !_mods[18] && !_mods[17] && !_mods[91]) || modifiersMatch){
if(handler.method(event, handler)===false){
if(event.preventDefault) event.preventDefault();
else event.returnValue = false;
if(event.stopPropagation) event.stopPropagation();
if(event.cancelBubble) event.cancelBubble = true;
}
}
}
}
};
// unset modifier keys on keyup
function clearModifier(event){
var key = event.keyCode, k,
i = index(_downKeys, key);
// remove key from _downKeys
if (i >= 0) {
_downKeys.splice(i, 1);
}
if(key == 93 || key == 224) key = 91;
if(key in _mods) {
_mods[key] = false;
for(k in _MODIFIERS) if(_MODIFIERS[k] == key) assignKey[k] = false;
}
};
function resetModifiers() {
for(k in _mods) _mods[k] = false;
for(k in _MODIFIERS) assignKey[k] = false;
};
// parse and assign shortcut
function assignKey(key, scope, method){
var keys, mods;
keys = getKeys(key);
if (method === undefined) {
method = scope;
scope = 'all';
}
// for each shortcut
for (var i = 0; i < keys.length; i++) {
// set modifier keys if any
mods = [];
key = keys[i].split('+');
if (key.length > 1){
mods = getMods(key);
key = [key[key.length-1]];
}
// convert to keycode and...
key = key[0]
key = code(key);
// ...store handler
if (!(key in _handlers)) _handlers[key] = [];
_handlers[key].push({ shortcut: keys[i], scope: scope, method: method, key: keys[i], mods: mods });
}
};
// unbind all handlers for given key in current scope
function unbindKey(key, scope) {
var multipleKeys, keys,
mods = [],
i, j, obj;
multipleKeys = getKeys(key);
for (j = 0; j < multipleKeys.length; j++) {
keys = multipleKeys[j].split('+');
if (keys.length > 1) {
mods = getMods(keys);
}
key = keys[keys.length - 1];
key = code(key);
if (scope === undefined) {
scope = getScope();
}
if (!_handlers[key]) {
return;
}
for (i = 0; i < _handlers[key].length; i++) {
obj = _handlers[key][i];
// only clear handlers if correct scope and mods match
if (obj.scope === scope && compareArray(obj.mods, mods)) {
_handlers[key][i] = {};
}
}
}
};
// Returns true if the key with code 'keyCode' is currently down
// Converts strings into key codes.
function isPressed(keyCode) {
if (typeof(keyCode)=='string') {
keyCode = code(keyCode);
}
return index(_downKeys, keyCode) != -1;
}
function getPressedKeyCodes() {
return _downKeys.slice(0);
}
function filter(event){
var tagName = (event.target || event.srcElement).tagName;
// ignore keypressed in any elements that support keyboard data input
return !(tagName == 'INPUT' || tagName == 'SELECT' || tagName == 'TEXTAREA');
}
// initialize key.<modifier> to false
for(k in _MODIFIERS) assignKey[k] = false;
// set current scope (default 'all')
function setScope(scope){ _scope = scope || 'all' };
function getScope(){ return _scope || 'all' };
// delete all handlers for a given scope
function deleteScope(scope){
var key, handlers, i;
for (key in _handlers) {
handlers = _handlers[key];
for (i = 0; i < handlers.length; ) {
if (handlers[i].scope === scope) handlers.splice(i, 1);
else i++;
}
}
};
// abstract key logic for assign and unassign
function getKeys(key) {
var keys;
key = key.replace(/\s/g, '');
keys = key.split(',');
if ((keys[keys.length - 1]) == '') {
keys[keys.length - 2] += ',';
}
return keys;
}
// abstract mods logic for assign and unassign
function getMods(key) {
var mods = key.slice(0, key.length - 1);
for (var mi = 0; mi < mods.length; mi++)
mods[mi] = _MODIFIERS[mods[mi]];
return mods;
}
// cross-browser events
function addEvent(object, event, method) {
if (object.addEventListener)
object.addEventListener(event, method, false);
else if(object.attachEvent)
object.attachEvent('on'+event, function(){ method(window.event) });
};
// set the handlers globally on document
addEvent(document, 'keydown', function(event) { dispatch(event) }); // Passing _scope to a callback to ensure it remains the same by execution. Fixes #48
addEvent(document, 'keyup', clearModifier);
// reset modifiers to false whenever the window is (re)focused.
addEvent(window, 'focus', resetModifiers);
// store previously defined key
var previousKey = global.key;
// restore previously defined key and return reference to our key object
function noConflict() {
var k = global.key;
global.key = previousKey;
return k;
}
// set window.key and window.key.set/get/deleteScope, and the default filter
global.key = assignKey;
global.key.setScope = setScope;
global.key.getScope = getScope;
global.key.deleteScope = deleteScope;
global.key.filter = filter;
global.key.isPressed = isPressed;
global.key.isModifier = isModifierPressed;
global.key.getPressedKeyCodes = getPressedKeyCodes;
global.key.noConflict = noConflict;
global.key.unbind = unbindKey;
if(typeof module !== 'undefined') module.exports = assignKey;
})(this);
/** Make a node */ /** Make a node */
function mk(e) {return document.createElement(e)} function mk(e) {return document.createElement(e)}
@@ -915,7 +1225,7 @@ $.ready(function () {
}); });
// Expanding boxes on mobile // Expanding boxes on mobile
$('.Box.mobcol').forEach(function(x) { $('.Box.mobcol,.Box.fold').forEach(function(x) {
var h = x.querySelector('h2'); var h = x.querySelector('h2');
var hdl = function() { var hdl = function() {
@@ -1254,6 +1564,41 @@ function tr(key) { return _tr[key] || '?'+key+'?'; }
w.init = wifiInit; w.init = wifiInit;
w.startScanning = startScanning; w.startScanning = startScanning;
})(window.WiFi = {}); })(window.WiFi = {});
/** Decode two-byte number */
function parse2B(s, i) {
return (s.charCodeAt(i++) - 1) + (s.charCodeAt(i) - 1) * 127;
}
/** Decode three-byte number */
function parse3B(s, i) {
return (s.charCodeAt(i) - 1) + (s.charCodeAt(i+1) - 1) * 127 + (s.charCodeAt(i+2) - 1) * 127 * 127;
}
function Chr(n) {
return String.fromCharCode(n);
}
function encode2B(n) {
var lsb, msb;
lsb = (n % 127);
n = ((n - lsb) / 127);
lsb += 1;
msb = (n + 1);
return Chr(lsb) + Chr(msb);
}
function encode3B(n) {
var lsb, msb, xsb;
lsb = (n % 127);
n = (n - lsb) / 127;
lsb += 1;
msb = (n % 127);
n = (n - msb) / 127;
msb += 1;
xsb = (n + 1);
return Chr(lsb) + Chr(msb) + Chr(xsb);
}
var Screen = (function () { var Screen = (function () {
var W = 0, H = 0; // dimensions var W = 0, H = 0; // dimensions
var inited = false; var inited = false;
@@ -1266,11 +1611,14 @@ var Screen = (function () {
bg: 0, bg: 0,
attrs: 0, attrs: 0,
suppress: false, // do not turn on in blink interval (for safe moving) suppress: false, // do not turn on in blink interval (for safe moving)
hidden: false // do not show forceOn: false,
hidden: false, // do not show
hanging: false, // xenl
}; };
var screen = []; var screen = [];
var blinkIval; var blinkIval;
var cursorFlashStartIval;
var frakturExceptions = { var frakturExceptions = {
'C': '\u212d', 'C': '\u212d',
@@ -1280,6 +1628,14 @@ var Screen = (function () {
'Z': '\u2128', 'Z': '\u2128',
}; };
// for BEL
var audioCtx = null;
try {
audioCtx = new (window.AudioContext || window.audioContext || window.webkitAudioContext)();
} catch (er) {
console.error("Browser does not support AudioContext, can't beep.", er);
}
/** Get cell under cursor */ /** Get cell under cursor */
function _curCell() { function _curCell() {
return screen[cursor.y*W + cursor.x]; return screen[cursor.y*W + cursor.x];
@@ -1299,6 +1655,7 @@ var Screen = (function () {
/** Update cell on display. inv = invert (for cursor) */ /** Update cell on display. inv = invert (for cursor) */
function _draw(cell, inv) { function _draw(cell, inv) {
if (!cell) return;
if (typeof inv == 'undefined') { if (typeof inv == 'undefined') {
inv = cursor.a && cursor.x == cell.x && cursor.y == cell.y; inv = cursor.a && cursor.x == cell.x && cursor.y == cell.y;
} }
@@ -1368,8 +1725,21 @@ var Screen = (function () {
(function() { (function() {
var x = i % W; var x = i % W;
var y = Math.floor(i / W); var y = Math.floor(i / W);
e.addEventListener('click', function () { e.addEventListener('mouseenter', function (evt) {
Input.onTap(y, x); Input.onMouseMove(x, y);
});
e.addEventListener('mousedown', function (evt) {
Input.onMouseDown(x, y, evt.button+1);
});
e.addEventListener('mouseup', function (evt) {
Input.onMouseUp(x, y, evt.button+1);
});
e.addEventListener('contextmenu', function (evt) {
evt.preventDefault();
});
e.addEventListener('mousewheel', function (evt) {
Input.onMouseWheel(x, y, evt.deltaY>0?1:-1);
return false;
}); });
})(); })();
@@ -1382,8 +1752,8 @@ var Screen = (function () {
cell = { cell = {
t: ' ', t: ' ',
fg: cursor.fg, fg: 7,
bg: cursor.bg, bg: 0, // the colors will be replaced immediately as we receive data (user won't see this)
attrs: 0, attrs: 0,
e: e, e: e,
x: i % W, x: i % W,
@@ -1400,19 +1770,20 @@ var Screen = (function () {
clearInterval(blinkIval); clearInterval(blinkIval);
blinkIval = setInterval(function () { blinkIval = setInterval(function () {
cursor.a = !cursor.a; cursor.a = !cursor.a;
if (cursor.hidden) { // TODO try to invent a new way to indicate "hanging" - this is copied from gtkterm
if (cursor.hidden || cursor.hanging) {
cursor.a = false; cursor.a = false;
} }
if (!cursor.suppress) { if (!cursor.suppress) {
_draw(_curCell(), cursor.a); _draw(_curCell(), cursor.forceOn || cursor.a);
} }
}, 500); }, 500);
// blink attribute // blink attribute
setInterval(function () { setInterval(function () {
$('#screen').removeClass('blink-hide'); $('#screen').removeClass('blink-hide');
setTimeout(function() { setTimeout(function () {
$('#screen').addClass('blink-hide'); $('#screen').addClass('blink-hide');
}, 800); // 200 ms ON }, 800); // 200 ms ON
}, 1000); }, 1000);
@@ -1420,16 +1791,6 @@ var Screen = (function () {
inited = true; inited = true;
} }
/** Decode two-byte number */
function parse2B(s, i) {
return (s.charCodeAt(i++) - 1) + (s.charCodeAt(i) - 1) * 127;
}
/** Decode three-byte number */
function parse3B(s, i) {
return (s.charCodeAt(i) - 1) + (s.charCodeAt(i+1) - 1) * 127 + (s.charCodeAt(i+2) - 1) * 127 * 127;
}
var SEQ_SET_COLOR_ATTR = 1; var SEQ_SET_COLOR_ATTR = 1;
var SEQ_REPEAT = 2; var SEQ_REPEAT = 2;
var SEQ_SET_COLOR = 3; var SEQ_SET_COLOR = 3;
@@ -1440,6 +1801,8 @@ var Screen = (function () {
if (!inited) _init(); if (!inited) _init();
var cursorMoved;
// Set size // Set size
num = parse2B(str, i); i += 2; // height num = parse2B(str, i); i += 2; // height
num2 = parse2B(str, i); i += 2; // width num2 = parse2B(str, i); i += 2; // width
@@ -1451,17 +1814,24 @@ var Screen = (function () {
// Cursor position // Cursor position
num = parse2B(str, i); i += 2; // row num = parse2B(str, i); i += 2; // row
num2 = parse2B(str, i); i += 2; // col num2 = parse2B(str, i); i += 2; // col
cursorMoved = (cursor.x != num2 || cursor.y != num);
cursorSet(num, num2); cursorSet(num, num2);
// console.log("Cursor at ",num, num2); // console.log("Cursor at ",num, num2);
// Attributes // Attributes
num = parse2B(str, i); i += 2; // fg bg bold hidden num = parse2B(str, i); i += 2; // fg bg bold hidden
cursor.fg = num & 0x0F; cursor.hidden = !(num & 0x0001);
cursor.bg = (num & 0xF0) >> 4; cursor.hanging = !!(num & 0x0002);
cursor.hidden = !(num & 0x100); // console.log("Attributes word ",num.toString(16)+'h');
fg = cursor.fg; Input.setAlts(
bg = cursor.bg; !!(num & 0x0004), // cu
!!(num & 0x0008), // np
!!(num & 0x0010) // fn
);
fg = 7;
bg = 0;
attrs = 0; attrs = 0;
// Here come the content // Here come the content
@@ -1507,6 +1877,19 @@ var Screen = (function () {
} }
_drawAll(); _drawAll();
// if (!cursor.hidden || cursor.hanging || !cursor.suppress) {
// // hide cursor asap
// _draw(_curCell(), false);
// }
if (cursorMoved) {
cursor.forceOn = true;
cursorFlashStartIval = setTimeout(function() {
cursor.forceOn = false;
}, 1200);
_draw(_curCell(), true);
}
} }
function _load_labels(str) { function _load_labels(str) {
@@ -1515,11 +1898,39 @@ var Screen = (function () {
qsa('#buttons button').forEach(function(x, i) { qsa('#buttons button').forEach(function(x, i) {
var s = pieces[i+1].trim(); var s = pieces[i+1].trim();
// if empty string, use the "dim" effect and put nbsp instead to stretch the btn vertically // if empty string, use the "dim" effect and put nbsp instead to stretch the btn vertically
x.innerHTML = s.length >0 ? e(s) : "&nbsp;"; x.innerHTML = s.length > 0 ? e(s) : "&nbsp;";
x.style.opacity = s.length > 0 ? 1 : 0.2; x.style.opacity = s.length > 0 ? 1 : 0.2;
}); });
} }
function _beep()
{
var osc, gain;
if (!audioCtx) return;
// Main beep
osc = audioCtx.createOscillator();
gain = audioCtx.createGain();
osc.connect(gain);
gain.connect(audioCtx.destination);
gain.gain.value = 0.5;
osc.frequency.value = 750;
osc.type = 'sine';
osc.start();
osc.stop(audioCtx.currentTime+0.05);
// Surrogate beep (making it sound like 'oops')
osc = audioCtx.createOscillator();
gain = audioCtx.createGain();
osc.connect(gain);
gain.connect(audioCtx.destination);
gain.gain.value = 0.2;
osc.frequency.value = 400;
osc.type = 'sine';
osc.start(audioCtx.currentTime+0.05);
osc.stop(audioCtx.currentTime+0.08);
}
/** Load screen content from a binary sequence (new) */ /** Load screen content from a binary sequence (new) */
function load(str) { function load(str) {
var content = str.substr(1); var content = str.substr(1);
@@ -1530,6 +1941,9 @@ var Screen = (function () {
case 'T': case 'T':
_load_labels(content); _load_labels(content);
break; break;
case 'B':
_beep();
break;
default: default:
console.warn("Bad data message type, ignoring."); console.warn("Bad data message type, ignoring.");
} }
@@ -1543,6 +1957,8 @@ var Screen = (function () {
/** Handle connections */ /** Handle connections */
var Conn = (function() { var Conn = (function() {
var ws; var ws;
var heartbeatTout;
var pingIv;
function onOpen(evt) { function onOpen(evt) {
console.log("CONNECTED"); console.log("CONNECTED");
@@ -1559,9 +1975,13 @@ var Conn = (function() {
function onMessage(evt) { function onMessage(evt) {
try { try {
//console.log("RX: ", evt.data); // . = heartbeat
// Assume all our messages are screen updates if (evt.data != '.') {
Screen.load(evt.data); //console.log("RX: ", evt.data);
// Assume all our messages are screen updates
Screen.load(evt.data);
}
heartbeat();
} catch(e) { } catch(e) {
console.error(e); console.error(e);
} }
@@ -1569,6 +1989,7 @@ var Conn = (function() {
function doSend(message) { function doSend(message) {
console.log("TX: ", message); console.log("TX: ", message);
if (!ws) return; // for dry testing if (!ws) return; // for dry testing
if (ws.readyState != 1) { if (ws.readyState != 1) {
console.error("Socket not ready"); console.error("Socket not ready");
@@ -1581,6 +2002,8 @@ var Conn = (function() {
} }
function init() { function init() {
heartbeat();
ws = new WebSocket("ws://"+_root+"/term/update.ws"); ws = new WebSocket("ws://"+_root+"/term/update.ws");
ws.onopen = onOpen; ws.onopen = onOpen;
ws.onclose = onClose; ws.onclose = onClose;
@@ -1593,11 +2016,33 @@ var Conn = (function() {
if (status !== 200) location.reload(true); if (status !== 200) location.reload(true);
console.log("Data received!"); console.log("Data received!");
Screen.load(resp); Screen.load(resp);
heartbeat();
showPage(); showPage();
}); });
} }
function heartbeat() {
clearTimeout(heartbeatTout);
heartbeatTout = setTimeout(heartbeatFail, 2000);
}
function heartbeatFail() {
console.error("Heartbeat lost, probing server...");
pingIv = setInterval(function() {
console.log("> ping");
$.get('http://'+_root+'/system/ping', function(resp, status) {
if (status == 200) {
clearInterval(pingIv);
console.info("Server ready, reloading page...");
location.reload();
}
}, {
timeout: 100,
});
}, 500);
}
return { return {
ws: null, ws: null,
init: init, init: init,
@@ -1605,57 +2050,228 @@ var Conn = (function() {
}; };
})(); })();
/** User input */ /**
* User input
*
* --- Rx messages: ---
* S - screen content (binary encoding of the entire screen with simple compression)
* T - text labels - Title and buttons, \0x01-separated
* B - beep
* . - heartbeat
*
* --- Tx messages ---
* s - string
* b - action button
* p - mb press
* r - mb release
* m - mouse move
*/
var Input = (function() { var Input = (function() {
function sendStrMsg(str) { var opts = {
Conn.send("STR:"+str); np_alt: false,
} cu_alt: false,
fn_alt: false,
};
function sendPosMsg(y, x) { function sendStrMsg(str) {
Conn.send("TAP:"+y+','+x); Conn.send("s"+str);
} }
function sendBtnMsg(n) { function sendBtnMsg(n) {
Conn.send("BTN:"+n); Conn.send("b"+Chr(n));
} }
function fa(alt, normal) {
return opts.fn_alt ? alt : normal;
}
function ca(alt, normal) {
return opts.cu_alt ? alt : normal;
}
function na(alt, normal) {
return opts.np_alt ? alt : normal;
}
function _bindFnKeys() {
var keymap = {
'tab': '\x09',
'backspace': '\x08',
'enter': '\x0d',
'ctrl+enter': '\x0a',
'esc': '\x1b',
'up': ca('\x1bOA', '\x1b[A'),
'down': ca('\x1bOB', '\x1b[B'),
'right': ca('\x1bOC', '\x1b[C'),
'left': ca('\x1bOD', '\x1b[D'),
'home': ca('\x1bOH', fa('\x1b[H', '\x1b[1~')),
'insert': '\x1b[2~',
'delete': '\x1b[3~',
'end': ca('\x1bOF', fa('\x1b[F', '\x1b[4~')),
'pageup': '\x1b[5~',
'pagedown': '\x1b[6~',
'f1': fa('\x1bOP', '\x1b[11~'),
'f2': fa('\x1bOQ', '\x1b[12~'),
'f3': fa('\x1bOR', '\x1b[13~'),
'f4': fa('\x1bOS', '\x1b[14~'),
'f5': '\x1b[15~', // note the disconnect
'f6': '\x1b[17~',
'f7': '\x1b[18~',
'f8': '\x1b[19~',
'f9': '\x1b[20~',
'f10': '\x1b[21~', // note the disconnect
'f11': '\x1b[23~',
'f12': '\x1b[24~',
'shift+f1': fa('\x1bO1;2P', '\x1b[25~'),
'shift+f2': fa('\x1bO1;2Q', '\x1b[26~'), // note the disconnect
'shift+f3': fa('\x1bO1;2R', '\x1b[28~'),
'shift+f4': fa('\x1bO1;2S', '\x1b[29~'), // note the disconnect
'shift+f5': fa('\x1b[15;2~', '\x1b[31~'),
'shift+f6': fa('\x1b[17;2~', '\x1b[32~'),
'shift+f7': fa('\x1b[18;2~', '\x1b[33~'),
'shift+f8': fa('\x1b[19;2~', '\x1b[34~'),
'shift+f9': fa('\x1b[20;2~', '\x1b[35~'), // 35-38 are not standard - but what is?
'shift+f10': fa('\x1b[21;2~', '\x1b[36~'),
'shift+f11': fa('\x1b[22;2~', '\x1b[37~'),
'shift+f12': fa('\x1b[23;2~', '\x1b[38~'),
'np_0': na('\x1bOp', '0'),
'np_1': na('\x1bOq', '1'),
'np_2': na('\x1bOr', '2'),
'np_3': na('\x1bOs', '3'),
'np_4': na('\x1bOt', '4'),
'np_5': na('\x1bOu', '5'),
'np_6': na('\x1bOv', '6'),
'np_7': na('\x1bOw', '7'),
'np_8': na('\x1bOx', '8'),
'np_9': na('\x1bOy', '9'),
'np_mul': na('\x1bOR', '*'),
'np_add': na('\x1bOl', '+'),
'np_sub': na('\x1bOS', '-'),
'np_point': na('\x1bOn', '.'),
'np_div': na('\x1bOQ', '/'),
// we don't implement numlock key (should change in numpad_alt mode, but it's even more useless than the rest)
};
for (var k in keymap) {
if (keymap.hasOwnProperty(k)) {
bind(k, keymap[k]);
}
}
}
function bind(combo, str) {
// mac fix - allow also cmd
if (combo.indexOf('ctrl+') !== -1) {
combo += ',' + combo.replace('ctrl', 'command');
}
// unbind possible old binding
key.unbind(combo);
key(combo, function (e) {
e.preventDefault();
sendStrMsg(str)
});
}
function _initKeys() {
// This takes care of text characters typed
window.addEventListener('keypress', function(evt) {
var str = '';
if (evt.key) str = evt.key;
else if (evt.which) str = String.fromCodePoint(evt.which);
if (str.length>0 && str.charCodeAt(0) >= 32) {
// console.log("Typed ", str);
sendStrMsg(str);
}
});
// ctrl-letter codes are sent as simple low ASCII codes
for (var i = 1; i<=26;i++) {
bind('ctrl+' + String.fromCharCode(96+i), String.fromCharCode(i));
}
bind('ctrl+]', '\x1b'); // alternate way to enter ESC
bind('ctrl+\\', '\x1c');
bind('ctrl+[', '\x1d');
bind('ctrl+^', '\x1e');
bind('ctrl+_', '\x1f');
_bindFnKeys();
}
var mb1 = 0;
var mb2 = 0;
var mb3 = 0;
function init() { function init() {
window.addEventListener('keypress', function(e) { _initKeys();
var code = +e.which;
if (code >= 32 && code < 127) {
var ch = String.fromCharCode(code);
//console.log("Typed ", ch, "code", code, e);
sendStrMsg(ch);
}
});
window.addEventListener('keydown', function(e) {
var code = e.keyCode;
//console.log("Down ", code, e);
switch(code) {
case 8: sendStrMsg('\x08'); break;
case 9: sendStrMsg('\x09'); break;
case 10:
case 13: sendStrMsg('\x0d\x0a'); break;
case 27: sendStrMsg('\x1b'); break; // this allows to directly enter control sequences
case 37: sendStrMsg('\x1b[D'); break;
case 38: sendStrMsg('\x1b[A'); break;
case 39: sendStrMsg('\x1b[C'); break;
case 40: sendStrMsg('\x1b[B'); break;
}
});
// Button presses
qsa('#buttons button').forEach(function(s) { qsa('#buttons button').forEach(function(s) {
s.addEventListener('click', function() { s.addEventListener('click', function() {
sendBtnMsg(+this.dataset['n']); sendBtnMsg(+this.dataset['n']);
}); });
}); });
window.addEventListener('mousedown', function(evt) {
if (evt.button == 0) mb1 = 1;
if (evt.button == 1) mb2 = 1;
if (evt.button == 2) mb3 = 1;
});
window.addEventListener('mouseup', function(evt) {
if (evt.button == 0) mb1 = 0;
if (evt.button == 1) mb2 = 0;
if (evt.button == 2) mb3 = 0;
});
}
function packModifiersForMouse() {
return (key.isModifier('ctrl')?1:0) |
(key.isModifier('shift')?2:0) |
(key.isModifier('alt')?4:0) |
(key.isModifier('meta')?8:0);
} }
return { return {
init: init, init: init,
onTap: sendPosMsg, // onTap: sendPosMsg,
sendString: sendStrMsg, sendString: sendStrMsg,
setAlts: function(cu, np, fn) {
if (opts.cu_alt != cu || opts.np_alt != np || opts.fn_alt != fn) {
opts.cu_alt = cu;
opts.np_alt = np;
opts.fn_alt = fn;
// rebind keys - codes have changed
_bindFnKeys();
}
},
onMouseMove: function (x, y) {
var b = mb1 ? 1 : mb2 ? 2 : mb3 ? 3 : 0;
var m = packModifiersForMouse();
Conn.send("m" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
},
onMouseDown: function (x, y, b) {
if (b > 3 || b < 1) return;
var m = packModifiersForMouse();
Conn.send("p" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
console.log("B ",b," M ",m);
},
onMouseUp: function (x, y, b) {
if (b > 3 || b < 1) return;
var m = packModifiersForMouse();
Conn.send("r" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
console.log("B ",b," M ",m);
},
onMouseWheel: function (x, y, dir) {
// -1 ... btn 4 (away from user)
// +1 ... btn 5 (towards user)
var m = packModifiersForMouse();
var b = (dir < 0 ? 4 : 5);
Conn.send("p" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
console.log("B ",b," M ",m);
},
}; };
})(); })();
+1 -1
View File
@@ -16,7 +16,7 @@ $.ready(function () {
}); });
// Expanding boxes on mobile // Expanding boxes on mobile
$('.Box.mobcol').forEach(function(x) { $('.Box.mobcol,.Box.fold').forEach(function(x) {
var h = x.querySelector('h2'); var h = x.querySelector('h2');
var hdl = function() { var hdl = function() {
+310
View File
@@ -0,0 +1,310 @@
// keymaster.js
// (c) 2011-2013 Thomas Fuchs
// keymaster.js may be freely distributed under the MIT license.
;(function(global){
var k,
_handlers = {},
_mods = { 16: false, 18: false, 17: false, 91: false },
_scope = 'all',
// modifier keys
_MODIFIERS = {
'⇧': 16, shift: 16,
'⌥': 18, alt: 18, option: 18,
'⌃': 17, ctrl: 17, control: 17,
'⌘': 91, command: 91
},
// special keys
_MAP = {
backspace: 8, tab: 9, clear: 12,
enter: 13, 'return': 13,
esc: 27, escape: 27, space: 32,
left: 37, up: 38,
right: 39, down: 40,
del: 46, 'delete': 46,
home: 36, end: 35,
pageup: 33, pagedown: 34,
',': 188, '.': 190, '/': 191,
'`': 192, '-': 189, '=': 187,
';': 186, '\'': 222,
'[': 219, ']': 221, '\\': 220,
// added:
insert: 45,
np_0: 96, np_1: 97, np_2: 98, np_3: 99, np_4: 100, np_5: 101,
np_6: 102, np_7: 103, np_8: 104, np_9: 105, np_mul: 106,
np_add: 107, np_sub: 109, np_point: 110, np_div: 111, numlock: 144,
},
code = function(x){
return _MAP[x] || x.toUpperCase().charCodeAt(0);
},
_downKeys = [];
for(k=1;k<20;k++) _MAP['f'+k] = 111+k;
// IE doesn't support Array#indexOf, so have a simple replacement
function index(array, item){
var i = array.length;
while(i--) if(array[i]===item) return i;
return -1;
}
// for comparing mods before unassignment
function compareArray(a1, a2) {
if (a1.length != a2.length) return false;
for (var i = 0; i < a1.length; i++) {
if (a1[i] !== a2[i]) return false;
}
return true;
}
var modifierMap = {
16:'shiftKey',
18:'altKey',
17:'ctrlKey',
91:'metaKey'
};
function updateModifierKey(event) {
for(k in _mods) _mods[k] = event[modifierMap[k]];
};
function isModifierPressed(mod) {
if (mod=='control'||mod=='ctrl') return _mods[17];
if (mod=='shift') return _mods[16];
if (mod=='meta') return _mods[91];
if (mod=='alt') return _mods[18];
return false;
}
// handle keydown event
function dispatch(event) {
var key, handler, k, i, modifiersMatch, scope;
key = event.keyCode;
if (index(_downKeys, key) == -1) {
_downKeys.push(key);
}
// if a modifier key, set the key.<modifierkeyname> property to true and return
if(key == 93 || key == 224) key = 91; // right command on webkit, command on Gecko
if(key in _mods) {
_mods[key] = true;
// 'assignKey' from inside this closure is exported to window.key
for(k in _MODIFIERS) if(_MODIFIERS[k] == key) assignKey[k] = true;
return;
}
updateModifierKey(event);
// see if we need to ignore the keypress (filter() can can be overridden)
// by default ignore key presses if a select, textarea, or input is focused
if(!assignKey.filter.call(this, event)) return;
// abort if no potentially matching shortcuts found
if (!(key in _handlers)) return;
scope = getScope();
// for each potential shortcut
for (i = 0; i < _handlers[key].length; i++) {
handler = _handlers[key][i];
// see if it's in the current scope
if(handler.scope == scope || handler.scope == 'all'){
// check if modifiers match if any
modifiersMatch = handler.mods.length > 0;
for(k in _mods)
if((!_mods[k] && index(handler.mods, +k) > -1) ||
(_mods[k] && index(handler.mods, +k) == -1)) modifiersMatch = false;
// call the handler and stop the event if neccessary
if((handler.mods.length == 0 && !_mods[16] && !_mods[18] && !_mods[17] && !_mods[91]) || modifiersMatch){
if(handler.method(event, handler)===false){
if(event.preventDefault) event.preventDefault();
else event.returnValue = false;
if(event.stopPropagation) event.stopPropagation();
if(event.cancelBubble) event.cancelBubble = true;
}
}
}
}
};
// unset modifier keys on keyup
function clearModifier(event){
var key = event.keyCode, k,
i = index(_downKeys, key);
// remove key from _downKeys
if (i >= 0) {
_downKeys.splice(i, 1);
}
if(key == 93 || key == 224) key = 91;
if(key in _mods) {
_mods[key] = false;
for(k in _MODIFIERS) if(_MODIFIERS[k] == key) assignKey[k] = false;
}
};
function resetModifiers() {
for(k in _mods) _mods[k] = false;
for(k in _MODIFIERS) assignKey[k] = false;
};
// parse and assign shortcut
function assignKey(key, scope, method){
var keys, mods;
keys = getKeys(key);
if (method === undefined) {
method = scope;
scope = 'all';
}
// for each shortcut
for (var i = 0; i < keys.length; i++) {
// set modifier keys if any
mods = [];
key = keys[i].split('+');
if (key.length > 1){
mods = getMods(key);
key = [key[key.length-1]];
}
// convert to keycode and...
key = key[0]
key = code(key);
// ...store handler
if (!(key in _handlers)) _handlers[key] = [];
_handlers[key].push({ shortcut: keys[i], scope: scope, method: method, key: keys[i], mods: mods });
}
};
// unbind all handlers for given key in current scope
function unbindKey(key, scope) {
var multipleKeys, keys,
mods = [],
i, j, obj;
multipleKeys = getKeys(key);
for (j = 0; j < multipleKeys.length; j++) {
keys = multipleKeys[j].split('+');
if (keys.length > 1) {
mods = getMods(keys);
}
key = keys[keys.length - 1];
key = code(key);
if (scope === undefined) {
scope = getScope();
}
if (!_handlers[key]) {
return;
}
for (i = 0; i < _handlers[key].length; i++) {
obj = _handlers[key][i];
// only clear handlers if correct scope and mods match
if (obj.scope === scope && compareArray(obj.mods, mods)) {
_handlers[key][i] = {};
}
}
}
};
// Returns true if the key with code 'keyCode' is currently down
// Converts strings into key codes.
function isPressed(keyCode) {
if (typeof(keyCode)=='string') {
keyCode = code(keyCode);
}
return index(_downKeys, keyCode) != -1;
}
function getPressedKeyCodes() {
return _downKeys.slice(0);
}
function filter(event){
var tagName = (event.target || event.srcElement).tagName;
// ignore keypressed in any elements that support keyboard data input
return !(tagName == 'INPUT' || tagName == 'SELECT' || tagName == 'TEXTAREA');
}
// initialize key.<modifier> to false
for(k in _MODIFIERS) assignKey[k] = false;
// set current scope (default 'all')
function setScope(scope){ _scope = scope || 'all' };
function getScope(){ return _scope || 'all' };
// delete all handlers for a given scope
function deleteScope(scope){
var key, handlers, i;
for (key in _handlers) {
handlers = _handlers[key];
for (i = 0; i < handlers.length; ) {
if (handlers[i].scope === scope) handlers.splice(i, 1);
else i++;
}
}
};
// abstract key logic for assign and unassign
function getKeys(key) {
var keys;
key = key.replace(/\s/g, '');
keys = key.split(',');
if ((keys[keys.length - 1]) == '') {
keys[keys.length - 2] += ',';
}
return keys;
}
// abstract mods logic for assign and unassign
function getMods(key) {
var mods = key.slice(0, key.length - 1);
for (var mi = 0; mi < mods.length; mi++)
mods[mi] = _MODIFIERS[mods[mi]];
return mods;
}
// cross-browser events
function addEvent(object, event, method) {
if (object.addEventListener)
object.addEventListener(event, method, false);
else if(object.attachEvent)
object.attachEvent('on'+event, function(){ method(window.event) });
};
// set the handlers globally on document
addEvent(document, 'keydown', function(event) { dispatch(event) }); // Passing _scope to a callback to ensure it remains the same by execution. Fixes #48
addEvent(document, 'keyup', clearModifier);
// reset modifiers to false whenever the window is (re)focused.
addEvent(window, 'focus', resetModifiers);
// store previously defined key
var previousKey = global.key;
// restore previously defined key and return reference to our key object
function noConflict() {
var k = global.key;
global.key = previousKey;
return k;
}
// set window.key and window.key.set/get/deleteScope, and the default filter
global.key = assignKey;
global.key.setScope = setScope;
global.key.getScope = getScope;
global.key.deleteScope = deleteScope;
global.key.filter = filter;
global.key.isPressed = isPressed;
global.key.isModifier = isModifierPressed;
global.key.getPressedKeyCodes = getPressedKeyCodes;
global.key.noConflict = noConflict;
global.key.unbind = unbindKey;
if(typeof module !== 'undefined') module.exports = assignKey;
})(this);
+365 -59
View File
@@ -1,3 +1,38 @@
/** Decode two-byte number */
function parse2B(s, i) {
return (s.charCodeAt(i++) - 1) + (s.charCodeAt(i) - 1) * 127;
}
/** Decode three-byte number */
function parse3B(s, i) {
return (s.charCodeAt(i) - 1) + (s.charCodeAt(i+1) - 1) * 127 + (s.charCodeAt(i+2) - 1) * 127 * 127;
}
function Chr(n) {
return String.fromCharCode(n);
}
function encode2B(n) {
var lsb, msb;
lsb = (n % 127);
n = ((n - lsb) / 127);
lsb += 1;
msb = (n + 1);
return Chr(lsb) + Chr(msb);
}
function encode3B(n) {
var lsb, msb, xsb;
lsb = (n % 127);
n = (n - lsb) / 127;
lsb += 1;
msb = (n % 127);
n = (n - msb) / 127;
msb += 1;
xsb = (n + 1);
return Chr(lsb) + Chr(msb) + Chr(xsb);
}
var Screen = (function () { var Screen = (function () {
var W = 0, H = 0; // dimensions var W = 0, H = 0; // dimensions
var inited = false; var inited = false;
@@ -10,11 +45,14 @@ var Screen = (function () {
bg: 0, bg: 0,
attrs: 0, attrs: 0,
suppress: false, // do not turn on in blink interval (for safe moving) suppress: false, // do not turn on in blink interval (for safe moving)
hidden: false // do not show forceOn: false,
hidden: false, // do not show
hanging: false, // xenl
}; };
var screen = []; var screen = [];
var blinkIval; var blinkIval;
var cursorFlashStartIval;
var frakturExceptions = { var frakturExceptions = {
'C': '\u212d', 'C': '\u212d',
@@ -24,6 +62,14 @@ var Screen = (function () {
'Z': '\u2128', 'Z': '\u2128',
}; };
// for BEL
var audioCtx = null;
try {
audioCtx = new (window.AudioContext || window.audioContext || window.webkitAudioContext)();
} catch (er) {
console.error("Browser does not support AudioContext, can't beep.", er);
}
/** Get cell under cursor */ /** Get cell under cursor */
function _curCell() { function _curCell() {
return screen[cursor.y*W + cursor.x]; return screen[cursor.y*W + cursor.x];
@@ -43,6 +89,7 @@ var Screen = (function () {
/** Update cell on display. inv = invert (for cursor) */ /** Update cell on display. inv = invert (for cursor) */
function _draw(cell, inv) { function _draw(cell, inv) {
if (!cell) return;
if (typeof inv == 'undefined') { if (typeof inv == 'undefined') {
inv = cursor.a && cursor.x == cell.x && cursor.y == cell.y; inv = cursor.a && cursor.x == cell.x && cursor.y == cell.y;
} }
@@ -112,8 +159,21 @@ var Screen = (function () {
(function() { (function() {
var x = i % W; var x = i % W;
var y = Math.floor(i / W); var y = Math.floor(i / W);
e.addEventListener('click', function () { e.addEventListener('mouseenter', function (evt) {
Input.onTap(y, x); Input.onMouseMove(x, y);
});
e.addEventListener('mousedown', function (evt) {
Input.onMouseDown(x, y, evt.button+1);
});
e.addEventListener('mouseup', function (evt) {
Input.onMouseUp(x, y, evt.button+1);
});
e.addEventListener('contextmenu', function (evt) {
evt.preventDefault();
});
e.addEventListener('mousewheel', function (evt) {
Input.onMouseWheel(x, y, evt.deltaY>0?1:-1);
return false;
}); });
})(); })();
@@ -126,8 +186,8 @@ var Screen = (function () {
cell = { cell = {
t: ' ', t: ' ',
fg: cursor.fg, fg: 7,
bg: cursor.bg, bg: 0, // the colors will be replaced immediately as we receive data (user won't see this)
attrs: 0, attrs: 0,
e: e, e: e,
x: i % W, x: i % W,
@@ -144,19 +204,20 @@ var Screen = (function () {
clearInterval(blinkIval); clearInterval(blinkIval);
blinkIval = setInterval(function () { blinkIval = setInterval(function () {
cursor.a = !cursor.a; cursor.a = !cursor.a;
if (cursor.hidden) { // TODO try to invent a new way to indicate "hanging" - this is copied from gtkterm
if (cursor.hidden || cursor.hanging) {
cursor.a = false; cursor.a = false;
} }
if (!cursor.suppress) { if (!cursor.suppress) {
_draw(_curCell(), cursor.a); _draw(_curCell(), cursor.forceOn || cursor.a);
} }
}, 500); }, 500);
// blink attribute // blink attribute
setInterval(function () { setInterval(function () {
$('#screen').removeClass('blink-hide'); $('#screen').removeClass('blink-hide');
setTimeout(function() { setTimeout(function () {
$('#screen').addClass('blink-hide'); $('#screen').addClass('blink-hide');
}, 800); // 200 ms ON }, 800); // 200 ms ON
}, 1000); }, 1000);
@@ -164,16 +225,6 @@ var Screen = (function () {
inited = true; inited = true;
} }
/** Decode two-byte number */
function parse2B(s, i) {
return (s.charCodeAt(i++) - 1) + (s.charCodeAt(i) - 1) * 127;
}
/** Decode three-byte number */
function parse3B(s, i) {
return (s.charCodeAt(i) - 1) + (s.charCodeAt(i+1) - 1) * 127 + (s.charCodeAt(i+2) - 1) * 127 * 127;
}
var SEQ_SET_COLOR_ATTR = 1; var SEQ_SET_COLOR_ATTR = 1;
var SEQ_REPEAT = 2; var SEQ_REPEAT = 2;
var SEQ_SET_COLOR = 3; var SEQ_SET_COLOR = 3;
@@ -184,6 +235,8 @@ var Screen = (function () {
if (!inited) _init(); if (!inited) _init();
var cursorMoved;
// Set size // Set size
num = parse2B(str, i); i += 2; // height num = parse2B(str, i); i += 2; // height
num2 = parse2B(str, i); i += 2; // width num2 = parse2B(str, i); i += 2; // width
@@ -195,17 +248,24 @@ var Screen = (function () {
// Cursor position // Cursor position
num = parse2B(str, i); i += 2; // row num = parse2B(str, i); i += 2; // row
num2 = parse2B(str, i); i += 2; // col num2 = parse2B(str, i); i += 2; // col
cursorMoved = (cursor.x != num2 || cursor.y != num);
cursorSet(num, num2); cursorSet(num, num2);
// console.log("Cursor at ",num, num2); // console.log("Cursor at ",num, num2);
// Attributes // Attributes
num = parse2B(str, i); i += 2; // fg bg bold hidden num = parse2B(str, i); i += 2; // fg bg bold hidden
cursor.fg = num & 0x0F; cursor.hidden = !(num & 0x0001);
cursor.bg = (num & 0xF0) >> 4; cursor.hanging = !!(num & 0x0002);
cursor.hidden = !(num & 0x100); // console.log("Attributes word ",num.toString(16)+'h');
fg = cursor.fg; Input.setAlts(
bg = cursor.bg; !!(num & 0x0004), // cu
!!(num & 0x0008), // np
!!(num & 0x0010) // fn
);
fg = 7;
bg = 0;
attrs = 0; attrs = 0;
// Here come the content // Here come the content
@@ -251,6 +311,19 @@ var Screen = (function () {
} }
_drawAll(); _drawAll();
// if (!cursor.hidden || cursor.hanging || !cursor.suppress) {
// // hide cursor asap
// _draw(_curCell(), false);
// }
if (cursorMoved) {
cursor.forceOn = true;
cursorFlashStartIval = setTimeout(function() {
cursor.forceOn = false;
}, 1200);
_draw(_curCell(), true);
}
} }
function _load_labels(str) { function _load_labels(str) {
@@ -259,11 +332,39 @@ var Screen = (function () {
qsa('#buttons button').forEach(function(x, i) { qsa('#buttons button').forEach(function(x, i) {
var s = pieces[i+1].trim(); var s = pieces[i+1].trim();
// if empty string, use the "dim" effect and put nbsp instead to stretch the btn vertically // if empty string, use the "dim" effect and put nbsp instead to stretch the btn vertically
x.innerHTML = s.length >0 ? e(s) : "&nbsp;"; x.innerHTML = s.length > 0 ? e(s) : "&nbsp;";
x.style.opacity = s.length > 0 ? 1 : 0.2; x.style.opacity = s.length > 0 ? 1 : 0.2;
}); });
} }
function _beep()
{
var osc, gain;
if (!audioCtx) return;
// Main beep
osc = audioCtx.createOscillator();
gain = audioCtx.createGain();
osc.connect(gain);
gain.connect(audioCtx.destination);
gain.gain.value = 0.5;
osc.frequency.value = 750;
osc.type = 'sine';
osc.start();
osc.stop(audioCtx.currentTime+0.05);
// Surrogate beep (making it sound like 'oops')
osc = audioCtx.createOscillator();
gain = audioCtx.createGain();
osc.connect(gain);
gain.connect(audioCtx.destination);
gain.gain.value = 0.2;
osc.frequency.value = 400;
osc.type = 'sine';
osc.start(audioCtx.currentTime+0.05);
osc.stop(audioCtx.currentTime+0.08);
}
/** Load screen content from a binary sequence (new) */ /** Load screen content from a binary sequence (new) */
function load(str) { function load(str) {
var content = str.substr(1); var content = str.substr(1);
@@ -274,6 +375,9 @@ var Screen = (function () {
case 'T': case 'T':
_load_labels(content); _load_labels(content);
break; break;
case 'B':
_beep();
break;
default: default:
console.warn("Bad data message type, ignoring."); console.warn("Bad data message type, ignoring.");
} }
@@ -287,6 +391,8 @@ var Screen = (function () {
/** Handle connections */ /** Handle connections */
var Conn = (function() { var Conn = (function() {
var ws; var ws;
var heartbeatTout;
var pingIv;
function onOpen(evt) { function onOpen(evt) {
console.log("CONNECTED"); console.log("CONNECTED");
@@ -303,9 +409,13 @@ var Conn = (function() {
function onMessage(evt) { function onMessage(evt) {
try { try {
//console.log("RX: ", evt.data); // . = heartbeat
// Assume all our messages are screen updates if (evt.data != '.') {
Screen.load(evt.data); //console.log("RX: ", evt.data);
// Assume all our messages are screen updates
Screen.load(evt.data);
}
heartbeat();
} catch(e) { } catch(e) {
console.error(e); console.error(e);
} }
@@ -313,6 +423,7 @@ var Conn = (function() {
function doSend(message) { function doSend(message) {
console.log("TX: ", message); console.log("TX: ", message);
if (!ws) return; // for dry testing if (!ws) return; // for dry testing
if (ws.readyState != 1) { if (ws.readyState != 1) {
console.error("Socket not ready"); console.error("Socket not ready");
@@ -325,6 +436,8 @@ var Conn = (function() {
} }
function init() { function init() {
heartbeat();
ws = new WebSocket("ws://"+_root+"/term/update.ws"); ws = new WebSocket("ws://"+_root+"/term/update.ws");
ws.onopen = onOpen; ws.onopen = onOpen;
ws.onclose = onClose; ws.onclose = onClose;
@@ -337,11 +450,33 @@ var Conn = (function() {
if (status !== 200) location.reload(true); if (status !== 200) location.reload(true);
console.log("Data received!"); console.log("Data received!");
Screen.load(resp); Screen.load(resp);
heartbeat();
showPage(); showPage();
}); });
} }
function heartbeat() {
clearTimeout(heartbeatTout);
heartbeatTout = setTimeout(heartbeatFail, 2000);
}
function heartbeatFail() {
console.error("Heartbeat lost, probing server...");
pingIv = setInterval(function() {
console.log("> ping");
$.get('http://'+_root+'/system/ping', function(resp, status) {
if (status == 200) {
clearInterval(pingIv);
console.info("Server ready, reloading page...");
location.reload();
}
}, {
timeout: 100,
});
}, 500);
}
return { return {
ws: null, ws: null,
init: init, init: init,
@@ -349,57 +484,228 @@ var Conn = (function() {
}; };
})(); })();
/** User input */ /**
* User input
*
* --- Rx messages: ---
* S - screen content (binary encoding of the entire screen with simple compression)
* T - text labels - Title and buttons, \0x01-separated
* B - beep
* . - heartbeat
*
* --- Tx messages ---
* s - string
* b - action button
* p - mb press
* r - mb release
* m - mouse move
*/
var Input = (function() { var Input = (function() {
function sendStrMsg(str) { var opts = {
Conn.send("STR:"+str); np_alt: false,
} cu_alt: false,
fn_alt: false,
};
function sendPosMsg(y, x) { function sendStrMsg(str) {
Conn.send("TAP:"+y+','+x); Conn.send("s"+str);
} }
function sendBtnMsg(n) { function sendBtnMsg(n) {
Conn.send("BTN:"+n); Conn.send("b"+Chr(n));
} }
function fa(alt, normal) {
return opts.fn_alt ? alt : normal;
}
function ca(alt, normal) {
return opts.cu_alt ? alt : normal;
}
function na(alt, normal) {
return opts.np_alt ? alt : normal;
}
function _bindFnKeys() {
var keymap = {
'tab': '\x09',
'backspace': '\x08',
'enter': '\x0d',
'ctrl+enter': '\x0a',
'esc': '\x1b',
'up': ca('\x1bOA', '\x1b[A'),
'down': ca('\x1bOB', '\x1b[B'),
'right': ca('\x1bOC', '\x1b[C'),
'left': ca('\x1bOD', '\x1b[D'),
'home': ca('\x1bOH', fa('\x1b[H', '\x1b[1~')),
'insert': '\x1b[2~',
'delete': '\x1b[3~',
'end': ca('\x1bOF', fa('\x1b[F', '\x1b[4~')),
'pageup': '\x1b[5~',
'pagedown': '\x1b[6~',
'f1': fa('\x1bOP', '\x1b[11~'),
'f2': fa('\x1bOQ', '\x1b[12~'),
'f3': fa('\x1bOR', '\x1b[13~'),
'f4': fa('\x1bOS', '\x1b[14~'),
'f5': '\x1b[15~', // note the disconnect
'f6': '\x1b[17~',
'f7': '\x1b[18~',
'f8': '\x1b[19~',
'f9': '\x1b[20~',
'f10': '\x1b[21~', // note the disconnect
'f11': '\x1b[23~',
'f12': '\x1b[24~',
'shift+f1': fa('\x1bO1;2P', '\x1b[25~'),
'shift+f2': fa('\x1bO1;2Q', '\x1b[26~'), // note the disconnect
'shift+f3': fa('\x1bO1;2R', '\x1b[28~'),
'shift+f4': fa('\x1bO1;2S', '\x1b[29~'), // note the disconnect
'shift+f5': fa('\x1b[15;2~', '\x1b[31~'),
'shift+f6': fa('\x1b[17;2~', '\x1b[32~'),
'shift+f7': fa('\x1b[18;2~', '\x1b[33~'),
'shift+f8': fa('\x1b[19;2~', '\x1b[34~'),
'shift+f9': fa('\x1b[20;2~', '\x1b[35~'), // 35-38 are not standard - but what is?
'shift+f10': fa('\x1b[21;2~', '\x1b[36~'),
'shift+f11': fa('\x1b[22;2~', '\x1b[37~'),
'shift+f12': fa('\x1b[23;2~', '\x1b[38~'),
'np_0': na('\x1bOp', '0'),
'np_1': na('\x1bOq', '1'),
'np_2': na('\x1bOr', '2'),
'np_3': na('\x1bOs', '3'),
'np_4': na('\x1bOt', '4'),
'np_5': na('\x1bOu', '5'),
'np_6': na('\x1bOv', '6'),
'np_7': na('\x1bOw', '7'),
'np_8': na('\x1bOx', '8'),
'np_9': na('\x1bOy', '9'),
'np_mul': na('\x1bOR', '*'),
'np_add': na('\x1bOl', '+'),
'np_sub': na('\x1bOS', '-'),
'np_point': na('\x1bOn', '.'),
'np_div': na('\x1bOQ', '/'),
// we don't implement numlock key (should change in numpad_alt mode, but it's even more useless than the rest)
};
for (var k in keymap) {
if (keymap.hasOwnProperty(k)) {
bind(k, keymap[k]);
}
}
}
function bind(combo, str) {
// mac fix - allow also cmd
if (combo.indexOf('ctrl+') !== -1) {
combo += ',' + combo.replace('ctrl', 'command');
}
// unbind possible old binding
key.unbind(combo);
key(combo, function (e) {
e.preventDefault();
sendStrMsg(str)
});
}
function _initKeys() {
// This takes care of text characters typed
window.addEventListener('keypress', function(evt) {
var str = '';
if (evt.key) str = evt.key;
else if (evt.which) str = String.fromCodePoint(evt.which);
if (str.length>0 && str.charCodeAt(0) >= 32) {
// console.log("Typed ", str);
sendStrMsg(str);
}
});
// ctrl-letter codes are sent as simple low ASCII codes
for (var i = 1; i<=26;i++) {
bind('ctrl+' + String.fromCharCode(96+i), String.fromCharCode(i));
}
bind('ctrl+]', '\x1b'); // alternate way to enter ESC
bind('ctrl+\\', '\x1c');
bind('ctrl+[', '\x1d');
bind('ctrl+^', '\x1e');
bind('ctrl+_', '\x1f');
_bindFnKeys();
}
var mb1 = 0;
var mb2 = 0;
var mb3 = 0;
function init() { function init() {
window.addEventListener('keypress', function(e) { _initKeys();
var code = +e.which;
if (code >= 32 && code < 127) {
var ch = String.fromCharCode(code);
//console.log("Typed ", ch, "code", code, e);
sendStrMsg(ch);
}
});
window.addEventListener('keydown', function(e) {
var code = e.keyCode;
//console.log("Down ", code, e);
switch(code) {
case 8: sendStrMsg('\x08'); break;
case 9: sendStrMsg('\x09'); break;
case 10:
case 13: sendStrMsg('\x0d\x0a'); break;
case 27: sendStrMsg('\x1b'); break; // this allows to directly enter control sequences
case 37: sendStrMsg('\x1b[D'); break;
case 38: sendStrMsg('\x1b[A'); break;
case 39: sendStrMsg('\x1b[C'); break;
case 40: sendStrMsg('\x1b[B'); break;
}
});
// Button presses
qsa('#buttons button').forEach(function(s) { qsa('#buttons button').forEach(function(s) {
s.addEventListener('click', function() { s.addEventListener('click', function() {
sendBtnMsg(+this.dataset['n']); sendBtnMsg(+this.dataset['n']);
}); });
}); });
window.addEventListener('mousedown', function(evt) {
if (evt.button == 0) mb1 = 1;
if (evt.button == 1) mb2 = 1;
if (evt.button == 2) mb3 = 1;
});
window.addEventListener('mouseup', function(evt) {
if (evt.button == 0) mb1 = 0;
if (evt.button == 1) mb2 = 0;
if (evt.button == 2) mb3 = 0;
});
}
function packModifiersForMouse() {
return (key.isModifier('ctrl')?1:0) |
(key.isModifier('shift')?2:0) |
(key.isModifier('alt')?4:0) |
(key.isModifier('meta')?8:0);
} }
return { return {
init: init, init: init,
onTap: sendPosMsg, // onTap: sendPosMsg,
sendString: sendStrMsg, sendString: sendStrMsg,
setAlts: function(cu, np, fn) {
if (opts.cu_alt != cu || opts.np_alt != np || opts.fn_alt != fn) {
opts.cu_alt = cu;
opts.np_alt = np;
opts.fn_alt = fn;
// rebind keys - codes have changed
_bindFnKeys();
}
},
onMouseMove: function (x, y) {
var b = mb1 ? 1 : mb2 ? 2 : mb3 ? 3 : 0;
var m = packModifiersForMouse();
Conn.send("m" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
},
onMouseDown: function (x, y, b) {
if (b > 3 || b < 1) return;
var m = packModifiersForMouse();
Conn.send("p" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
console.log("B ",b," M ",m);
},
onMouseUp: function (x, y, b) {
if (b > 3 || b < 1) return;
var m = packModifiersForMouse();
Conn.send("r" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
console.log("B ",b," M ",m);
},
onMouseWheel: function (x, y, dir) {
// -1 ... btn 4 (away from user)
// +1 ... btn 5 (towards user)
var m = packModifiersForMouse();
var b = (dir < 0 ? 4 : 5);
Conn.send("p" + encode2B(y) + encode2B(x) + encode2B(b) + encode2B(m));
console.log("B ",b," M ",m);
},
}; };
})(); })();
+3
View File
@@ -42,6 +42,9 @@ return [
'term.buttons' => 'Button labels', 'term.buttons' => 'Button labels',
'term.theme' => 'Color scheme', 'term.theme' => 'Color scheme',
'term.parser_tout_ms' => 'Parser timeout', 'term.parser_tout_ms' => 'Parser timeout',
'term.display_tout_ms' => 'Redraw delay',
'term.display_cooldown_ms' => 'Redraw cooldown',
'term.fn_alt_mode' => 'SS3 Fn keys',
// terminal color labels // terminal color labels
'color.0' => 'Black', 'color.0' => 'Black',
+1
View File
@@ -3,6 +3,7 @@
echo "Packing js..." echo "Packing js..."
cat jssrc/chibi.js \ cat jssrc/chibi.js \
jssrc/keymaster.js \
jssrc/utils.js \ jssrc/utils.js \
jssrc/modal.js \ jssrc/modal.js \
jssrc/notif.js \ jssrc/notif.js \
+18
View File
@@ -110,6 +110,24 @@
<span class="mq-no-phone">&nbsp;ms</span> <span class="mq-no-phone">&nbsp;ms</span>
</div> </div>
<div class="Row">
<label for="display_tout_ms"><?= tr('term.display_tout_ms') ?><span class="mq-phone">&nbsp;(ms)</span></label>
<input type="number" step=1 min=0 name="display_tout_ms" id="display_tout_ms" value="%display_tout_ms%" required>
<span class="mq-no-phone">&nbsp;ms</span>
</div>
<div class="Row">
<label for="display_cooldown_ms"><?= tr('term.display_cooldown_ms') ?><span class="mq-phone">&nbsp;(ms)</span></label>
<input type="number" step=1 min=0 name="display_cooldown_ms" id="display_cooldown_ms" value="%display_cooldown_ms%" required>
<span class="mq-no-phone">&nbsp;ms</span>
</div>
<div class="Row checkbox" >
<label><?= tr('term.fn_alt_mode') ?></label><!--
--><span class="box" tabindex=0 role=checkbox></span>
<input type="hidden" id="fn_alt_mode" name="fn_alt_mode" value="%fn_alt_mode%">
</div>
<div class="Row buttons"> <div class="Row buttons">
<a class="button icn-ok" href="#" onclick="qs('#form-1').submit()"><?= tr('apply') ?></a> <a class="button icn-ok" href="#" onclick="qs('#form-1').submit()"><?= tr('apply') ?></a>
</div> </div>
+563 -324
View File
@@ -1,361 +1,600 @@
<div class="Box"> <div class="Box fold">
<h2>Troubleshooting</h2> <h2>Tips & Troubleshooting</h2>
<ul> <div class="Row v">
<li>ESPTerm communicates with external µC via UART on pins <b>Rx</b> and <b>Tx</b>. <img src="/img/adapter.jpg" class="aside" alt="ESPTerm v2">
It can be configured in <a href="<?= url('cfg_system') ?>">System Settings</a>. <ul>
Make sure you're using the correct baud rate and other settings on the other side. <li><b>Communication UART (Rx, Tx)</b> can be configured in the <a href="<?= url('cfg_system') ?>">System Settings</a>.
<li>Boot log and debug messages are available on pin <b>GPIO2</b> (P2) at 115200\,bps, 1 stop bit, no parity. <li><b>Boot log and debug messages</b> are available on pin <b>GPIO2</b> (P2) at 115200\,baud, 1 stop bit, no parity.
Those messages may be disabled through compile flags.
<li>ESPTerm uses 3.3\,V logic. For communication with 5\,V logic (eg. Aurdino), 470\,R <li><b>Loopback test</b>: Connect the Rx and Tx pins with a piece of wire. Anything you type in the browser should
protection resistors are recommended. The ESPTerm breakout board already includes those resistors. appear on the screen. Set Parser Timeout = 0 in <a href="<?= url('cfg_term') ?>">Terminal Settings</a>
to be able to manually enter escape sequences.
<li>If the Low Voltage Detector ("LVD") LED on the ESPTerm breakout lights up, your power connections have too high <li><b>For best performance</b>, use the module in Client mode (connected to external network) and minimize the number
resistance or the power supply is insufficient. ESP8266 can consume in short spikes up to 500\,A and of simultaneous connections. Enabling AP consumes extra RAM and strains the processor.
the supply voltage on the module must not drop below about 2.7\,V. Avoid needless breadboard jumpers and too thin wires.
<li>Connect Rx and Tx with a piece of wire to verify that the terminal works correctly; you should then immediately <li>In AP mode, <b>check that the WiFi channel used is clear</b>; interference may cause flaky connection.
see what you type in the browser. <i>This won't work if your ESP8266 board has a built-in USB-serial A good mobile app to use for this is
converter connected to those pins.</i> <a href="https://play.google.com/store/apps/details?id=com.farproc.wifi.analyzer">WiFi Analyzer (Google Play)</a>.
Adjust the hotspot strength and range using the Tx Power setting.
<li>For best performance, use the module in Client mode (connected to external network). Enabling AP mode consumes <li>Hold the BOOT button (GPIO0 to GND) for ~1 second to force enable AP. Hold it for ~6 seconds to restore default settings.
extra RAM and cycles, since the captive portal DNS server and DHCP server are be loaded. (This is indicated by the blue LED rapidly flashing). Default settings can be overwritten in the
<a href="<?= url('cfg_system') ?>">System Settings</a>.
<li>In AP mode, check that the channel used by ESPTerm is clear; interference may cause flaky connection. A good mobile app to use for this is <a href="https://play.google.com/store/apps/details?id=com.farproc.wifi.analyzer">WiFi Analyzer (Google Play)</a> </ul>
</div>
<li>The terminal browser display needs WebSockets for the real-time updating to work.
It will not work with some old browsers (Android < 4.4, IE < 10, Opera Mini)
- see the <a href="https://caniuse.com/websockets/embed/">compatibility chart</a>.
<li>At most 4 clients can be connected to the AP at the same time. This is a limitation of the ESP8266 SDK.
</ul>
</div> </div>
<div class="Box"> <div class="Box fold">
<h2>Screen</h2> <h2>Escape Sequences Intro</h2>
<ul> <div class="Row v">
<li>Most ANSI escape sequences are supported. <img src="/img/vt100.jpg" class="aside" alt="VT102">
<li>The initial screen size and other terminal options can be configured in <p>ESPTerm emulates VT102 (pictured) with some additions from later VT models and <code>xterm</code>.
<a href="<?= url('cfg_term') ?>">Terminal Settings</a> All commonly used attributes and commands are supported.
ESPTerm is capable of displaying ncurses applications such as <i>Midnight Commander</i> using <i>agetty</i>.</p>
<li>Display updates are sent to the browser after 20 ms of inactivity on the communication UART. <p>
This is to avoid hogging the server with tiny updates during large screen repaints. ESPTerm accepts UTF-8 characters received on the communication UART and displays them on the screen,
</ul> interpreting some codes as Control Characters. Those are e.g. Carriage Return (13), Line Feed (10), Tab (9), Backspace (8) and Bell (7).
Escape sequences start with the control character ESC (27), followed by any number of ASCII characters
forming the body of the command. On this page, we'll use <code>\e</code> to indicate ESC.
</p>
<p>
Escape sequences can be divided based on their first character and structure. Most common types are:
</p>
<ul>
<li>CSI commands: <code>\e[</code> followed by 1 optional leading character, multiple numbers divided by
semicolons, and one or two trailing characters. Those control the cursor, set attributes and manipulate screen content. E.g. <code>\e[?7;10h</code>, <code>\e[2J</code></li>
<li>SGR commands: CSI terminated by <code>m</code>. Those set text attributes and colors. E.g. <code>\e[</code></li>
<li>OSC commands: <code>\e]</code> followed by any number of UTF-8 characters (ESPTerm supports up to 64)
terminated by <code>\e\\</code> (ESC and backslash) or Bell (7). Those are used to exchange text strings.</li>
<li>There are a few other commands that don't follow this pattern, such as <code>\e7</code> or
<code>\e#8</code>, mostly for historical reasons.</li>
</ul>
<p>A list of the most important escape sequences is presented in the following sections.</p>
</div>
</div> </div>
<div class="Box theme-0"> <div class="Box fold">
<h2>Color Reference</h2> <h2>Screen Behavior</h2>
<p>Color is set using <code>\e[&lt;c&gt;m</code> where <code>&lt;c&gt;</code> are numbers separated by semicolons <div class="Row v">
(and <code>\e</code> is ESC, code 27). The actual color representation depends on a color theme which <p>The initial screen size, title text and button labels can be configured in <a href="<?= url('cfg_term') ?>">Terminal Settings</a>.</p>
can be selected in <a href="<?= url('cfg_term') ?>">Terminal Settings</a>.</p>
<b>Foreground</b> <p>
Screen updates are sent to the browser through a WebSocket after some time of inactivity on the communication UART
<div class="colorprev"> (called "Redraw Delay"). After an update is sent, at least a time of "Redraw Cooldown" must elapse before the next
<span class="bg7 fg0">30</span> update can be sent. Those delays are used is to avoid burdening the server with tiny updates during a large screen
<span class="bg0 fg1">31</span> repaint. If you experience issues (broken image due to dropped bytes), try adjusting those config options. It may also
<span class="bg0 fg2">32</span> be useful to try different baud rates.
<span class="bg0 fg3">33</span> </p>
<span class="bg0 fg4">34</span>
<span class="bg0 fg5">35</span>
<span class="bg0 fg6">36</span>
<span class="bg0 fg7">37</span>
</div> </div>
<div class="colorprev">
<span class="bg0 fg8">90</span>
<span class="bg0 fg9">91</span>
<span class="bg0 fg10">92</span>
<span class="bg0 fg11">93</span>
<span class="bg0 fg12">94</span>
<span class="bg0 fg13">95</span>
<span class="bg0 fg14">96</span>
<span class="bg0 fg15">97</span>
</div>
<b>Background</b>
<div class="colorprev">
<span class="bg0 fg15">40</span>
<span class="bg1 fg15">41</span>
<span class="bg2 fg15">42</span>
<span class="bg3 fg0">43</span>
<span class="bg4 fg15">44</span>
<span class="bg5 fg15">45</span>
<span class="bg6 fg15">46</span>
<span class="bg7 fg0">47</span>
</div>
<div class="colorprev">
<span class="bg8 fg15">100</span>
<span class="bg9 fg0">101</span>
<span class="bg10 fg0">102</span>
<span class="bg11 fg0">103</span>
<span class="bg12 fg0">104</span>
<span class="bg13 fg0">105</span>
<span class="bg14 fg0">106</span>
<span class="bg15 fg0">107</span>
</div>
<p>To make the text bold, use the "bold" attribute (eg. <code>\e[31;40;1m</code> for
<span style="padding: 2px;" class="bg0 fg1 bold">bold red on black</span>).</p>
<p>The colors are reset to default using <code>\e[0m</code>. For more info, see the tables below.</p>
</div> </div>
<div class="Box"> <div class="Box fold">
<h2>Text Attributes</h2>
<div class="Row v">
<p>
All text attributes are set using SGR commands like <code>\e[10;20;30m</code>, with up to 10 numbers separated by semicolons.
To restore all attributes to their default states, use SGR 0: <code>\e[0m</code> or <code>\e[m</code>.
</p>
<p>Those are the supported text attributes SGR codes:</p>
<table>
<thead><tr><th>Style</th><th>Enable</th><th>Disable</th></tr></thead>
<tbody>
<tr><td><b>Bold</b></td><td>1</td><td>21, 22</td></tr>
<tr><td style="opacity:.6">Faint</td><td>2</td><td>22</td></tr>
<tr><td><i>Italic</i></td><td>3</td><td>23</td></tr>
<tr><td><u>Underlined</u></td><td>4</td><td>24</td></tr>
<tr><td>Blink</td><td>5</td><td>25</td></tr>
<tr><td><span style="color:black;background:#ccc;">Inverse</span></td><td>7</td><td>27</td></tr>
<tr><td><s>Striked</s></td><td>9</td><td>29</td></tr>
<tr><td>𝔉𝔯𝔞𝔨𝔱𝔲𝔯</td><td>20</td><td>23</td></tr>
</tbody>
</table>
</div>
</div>
<div class="Box fold theme-0">
<h2>Colors</h2>
<div class="Row v">
<p>Colors are set using SGR commands (like <code>\e[10;20;30m</code>). The following tables list the SGR codes to use.
Selected colors are used for any new text entered, as well as for empty space when using line and screen clearing commands.
The configured default colors can be restored using SGR 39 for foreground and SGR 49 for background.</p>
<p>The actual color representation depends on a color theme which
can be selected in <a href="<?= url('cfg_term') ?>">Terminal Settings</a>.</p>
<h3>Foreground colors</h3>
<div class="colorprev">
<span class="bg7 fg0">30</span>
<span class="bg0 fg1">31</span>
<span class="bg0 fg2">32</span>
<span class="bg0 fg3">33</span>
<span class="bg0 fg4">34</span>
<span class="bg0 fg5">35</span>
<span class="bg0 fg6">36</span>
<span class="bg0 fg7">37</span>
</div>
<div class="colorprev">
<span class="bg0 fg8">90</span>
<span class="bg0 fg9">91</span>
<span class="bg0 fg10">92</span>
<span class="bg0 fg11">93</span>
<span class="bg0 fg12">94</span>
<span class="bg0 fg13">95</span>
<span class="bg0 fg14">96</span>
<span class="bg0 fg15">97</span>
</div>
<h3>Background colors</h3>
<div class="colorprev">
<span class="bg0 fg15">40</span>
<span class="bg1 fg15">41</span>
<span class="bg2 fg15">42</span>
<span class="bg3 fg0">43</span>
<span class="bg4 fg15">44</span>
<span class="bg5 fg15">45</span>
<span class="bg6 fg15">46</span>
<span class="bg7 fg0">47</span>
</div>
<div class="colorprev">
<span class="bg8 fg15">100</span>
<span class="bg9 fg0">101</span>
<span class="bg10 fg0">102</span>
<span class="bg11 fg0">103</span>
<span class="bg12 fg0">104</span>
<span class="bg13 fg0">105</span>
<span class="bg14 fg0">106</span>
<span class="bg15 fg0">107</span>
</div>
</div>
</div>
<div class="Box fold">
<h2>User Input</h2> <h2>User Input</h2>
<p> <div class="Row v">
All the user types on their keyboard is sent as-is to the UART, including ESC, ANSI sequences for arrow keys and CR-LF for Enter. <h3>Keyboard</h3>
</p>
<p>The buttons under the screen send ASCII codes 1, 2, 3, 4, 5. This choice was made to make their parsing as simple as possible.</p> <p>
The user can input text using their keyboard, or on Android, using the on-screen keyboard which is open using
a button beneath the screen. Supported are all printable characters, as well as many control keys, such as arrows, Ctrl+letters
and function keys. Sequences sent by function keys are based on VT102 and xterm.
</p>
<p> <p>
Mouse input (click/tap) is sent as <code>\e[&lt;y&gt;;&lt;x&gt;M</code>. You can use this for virtual on-screen buttons. The codes sent by Home, End, F1-F4 and cursor keys are affected by various keyboard modes (Application Cursor Keys,
</p> Application Numpad Mode, SS3 Fn Keys Mode).
Some can be set in the <a href="<?= url('cfg_term') ?>">Terminal Settings</a>, others via commands.
</p>
<p>
Here are some examples of control key codes:
</p>
<table>
<thead><tr><th>Key</th><th>Code</th><th>Key</th><th>Code</th></tr></thead>
<tr>
<td>🡑</td>
<td><code>\e[A</code></td>
<td>F1</td>
<td><code>\eOP</code></td>
</tr>
<tr>
<td>🡓</td>
<td><code>\e[B</code></td>
<td>F2</td>
<td><code>\eOQ</code></td>
</tr>
<tr>
<td>🡒</td>
<td><code>\e[C</code></td>
<td>F3</td>
<td><code>\eOR</code></td>
</tr>
<tr>
<td>🡐</td>
<td><code>\e[D</code></td>
<td>F4</td>
<td><code>\eOS</code></td>
</tr>
<tr>
<td>Home</td>
<td><code>\eOH</code></td>
<td>F5</td>
<td><code>\e[15~</code></td>
</tr>
<tr>
<td>End</td>
<td><code>\eOF</code></td>
<td>F6</td>
<td><code>\e[17~</code></td>
</tr>
<tr>
<td>Insert</td>
<td><code>\e[2~</code></td>
<td>F7</td>
<td><code>\e[18~</code></td>
</tr>
<tr>
<td>Delete</td>
<td><code>\e[3~</code></td>
<td>F8</td>
<td><code>\e[19~</code></td>
</tr>
<tr>
<td>Page Up</td>
<td><code>\e[5~</code></td>
<td>F9</td>
<td><code>\e[20~</code></td>
</tr>
<tr>
<td>Page Down</td>
<td><code>\e[6~</code></td>
<td>F10</td>
<td><code>\e[21~</code></td>
</tr>
<tr>
<td>Enter</td>
<td><code>CR (13)</code></td>
<td>F11</td>
<td><code>\e[23~</code></td>
</tr>
<tr>
<td>Ctrl+Enter</td>
<td><code>LF (10)</code></td>
<td>F12</td>
<td><code>\e[24~</code></td>
</tr>
<tr>
<td>Tab</td>
<td><code>TAB (9)</code></td>
<td>ESC</td>
<td><code>ESC (27)</code></td>
</tr>
<tr>
<td>Backspace</td>
<td><code>BS (8)</code></td>
<td>Ctrl+A..Z</td>
<td><code>ASCII 1-26</code></td>
</tr>
</table>
<h3>Action buttons</h3>
<p>
The blue buttons under the screen send ASCII codes 1, 2, 3, 4, 5, which incidentally correspond to Ctrl+A,B,C,D,E.
This choice was made to make button press parsing as simple as possible.
</p>
<h3>Mouse</h3>
<p>
ESPTerm in the current version does not implement standard mouse input. Instead, clicks/taps produce CSI sequences
<code>\e[<i>r</i>;<i>c</i>M</code> (row, column). You can use this for virtual on-screen buttons.
</p>
</div>
</div> </div>
<div class="Box"> <div class="Box fold">
<h2>Supported ANSI Escape Sequences</h2> <h2>Cursor Commands</h2>
<p>Sequences are started by ASCII code 27 (ESC, <code>\e</code>, <code>\x1b</code>, <code>\033</code>)</p> <div class="Row v">
<p>
The coordinates are 1-based, origin is top left. The cursor can move within the entire screen,
or in the active Scrolling Region if Origin Mode is enabled.
</p>
<p>Instead of <code>\a</code> (BELL, ASCII 7) in the commands, you can use `\e\` (ESC + backslash). It's the Text Separator code.</p> <p>After writing a character, the cursor advances to the right. If it has reached the end of the row,
it stays on the same line, but writing the next character makes it jump to the start of the next
line first, scrolling up if needed. If Auto-wrap mode is disabled, the cursor never wraps or scrolls
the screen.
</p>
<h3>Text Attributes</h3> <p>
<b>Legend:</b>
Italic letters such as <i>n</i> are ASCII numbers that serve as arguments, separated with a semicolon.
If an argument is left out, it's treated as 0 or 1, depending on what makes sense for the command.
</p>
<p> <h3>Movement</h3>
All text attributes are set using <code>\e[...m</code> where the dots are numbers separated by semicolons.
You can combine up to 3 attributes in a single command.
</p>
<table class="ansiref"> <table class="ansiref w100">
<thead> <thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<tr> <tbody>
<th>Attribute</th> <tr>
<th>Meaning</th> <td>
</tr> \e[<i>n</i>A<br>
</thead> \e[<i>n</i>B<br>
<tbody> \e[<i>n</i>C<br>
<tr> \e[<i>n</i>D
<td>0</td> </td>
<td>Reset text attributes to default</td> <td>Move cursor up (A), down (B), right (C), left (D)</td>
</tr> </tr>
<tr> <tr>
<td>1</td> <td>
<td>Bold</td> \e[<i>n</i>F<br>
</tr> \e[<i>n</i>E
<tr> </td>
<td>21 or 22</td> <td>Go <i>n</i> lines up (F) or down (E), start of line</td>
<td>Bold off</td> </tr>
</tr> <tr>
<tr> <td>
<td>7</td> \e[<i>r</i>d<br>
<td>Inverse (fg/bg swap when printing)</td> \e[<i>c</i>G<br>
</tr> \e[<i>r</i>;<i>c</i>H
<tr> </td>
<td>27</td> <td>
<td>Inverse OFF</td> Go to absolute position - row (d), column (G), or both (H). Use <code>\e[H</code> to go to 1,1.
</tr> </td>
<tr> </tr>
<td>30-37, 90-97</td> <tr>
<td>Foreground color, normal and bright</td> <td>\e[6n</td>
</tr> <td>Query cursor position. Sent back as <code>\e[<i>r</i>;<i>c</i>R</code>.</td>
<tr> </tr>
<td>40-47, 100-107</td> </tbody>
<td>Background color, normal and bright</td> </table>
</tr>
</tbody>
</table>
<h3>Cursor</h3> <h3>Save / restore</h3>
<p>Movement commands scroll the screen if needed. The coordinates are 1-based, origin top left.</p> <table class="ansiref w100">
<thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<tbody>
<tr>
<td>\e[s<br>\e[u</td>
<td>Save (s) or restore (u) cursor position</td>
</tr>
<tr>
<td>\e7<br>\e8</td>
<td>Save (7) or restore (8) cursor position and attributes</td>
</tr>
</tbody>
</table>
<table class="ansiref w100"> <h3>Scrolling Region</h3>
<thead>
<tr>
<th>Code</th>
<th>Params</th>
<th>Meaning</th>
</tr>
</thead>
<tbody>
<tr>
<td>\e[&lt;n&gt;A</td>
<td>[count]</td>
<td>Move cursor up</td>
</tr>
<tr>
<td>\e[&lt;n&gt;B</td>
<td>[count]</td>
<td>Move cursor down</td>
</tr>
<tr>
<td>\e[&lt;n&gt;C</td>
<td>[count]</td>
<td>Move cursor forward (right)</td>
</tr>
<tr>
<td>\e[&lt;n&gt;D</td>
<td>[count]</td>
<td>Move cursor backward (left)</td>
</tr>
<tr>
<td>\e[&lt;n&gt;E</td>
<td>[count]</td>
<td>Go N lines down, start of line</td>
</tr>
<tr>
<td>\e[&lt;n&gt;F</td>
<td>[count]</td>
<td>Go N lines up, start of line</td>
</tr>
<tr>
<td>\e[&lt;n&gt;G</td>
<td>column</td>
<td>Go to column</td>
</tr>
<tr>
<td>\e[&lt;y&gt;;&lt;x&gt;G</td>
<td>[row=1];[col=1]</td>
<td>Go to row and column</td>
</tr>
<tr>
<td>\e[6n</td>
<td>--</td>
<td>Query cursor position. Position is sent back as <code>\e[?;?R</code> with row;column.</td>
</tr>
<tr>
<td>\e[s</td>
<td>--</td>
<td>Store position</td>
</tr>
<tr>
<td>\e[u</td>
<td>--</td>
<td>Restore position</td>
</tr>
<tr>
<td>\e7</td>
<td>--</td>
<td>Store position & attributes</td>
</tr>
<tr>
<td>\e8</td>
<td>--</td>
<td>Restore position & attributes</td>
</tr>
<tr>
<td>\e[?25l</td>
<td>--</td>
<td>Hide cursor</td>
</tr>
<tr>
<td>\e[?25h</td>
<td>--</td>
<td>Show cursor</td>
</tr>
<tr>
<td>\e[?7l</td>
<td>--</td>
<td>Disable cursor auto-wrap & auto-scroll at end of screen</td>
</tr>
<tr>
<td>\e[?7h</td>
<td>--</td>
<td>Enable cursor auto-wrap & auto-scroll at end of screen</td>
</tr>
</tbody>
</table>
<h3>Screen</h3> <table class="ansiref w100">
<thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<tbody>
<tr>
<td>\e[<i>a</i>;<i>b</i>r</td>
<td>Set scrolling region to rows <i>a</i> through <i>b</i> and go to 1,1. By default, the
scrolling region spans the entire screen height. The cursor can leave the region using
absolute position commands, unless Origin Mode (see below) is active.</td>
</tr>
<tr>
<td>\e[?6h<br>\e[?6l</td>
<td>Enable (h) or disable (l) Origin Mode and go to 1,1. In Origin Mode, all coordinates
are relative to the Scrolling Region and the cursor can't leave the region.</td>
</tr>
<tr>
<td>
\e[<i>n</i>S<br>
\e[<i>n</i>T
</td>
<td>Move contents of the Scrolling Region up (S) or down (T), pad with empty lines of the current background color.</td>
</tr>
</tbody>
</table>
<table class="ansiref w100"> <h3>Tab stops</h3>
<thead>
<tr>
<th>Code</th>
<th>Params</th>
<th>Meaning</th>
</tr>
</thead>
<tbody>
<tr>
<td>\e[&lt;m&gt;J</td>
<td>[mode=0]</td>
<td>Clear screen. Mode: 0 - from cursor, 1 - to cursor, 2 - all</td>
</tr>
<tr>
<td>\e[&lt;m&gt;K</td>
<td>[mode=0]</td>
<td>Erase line. Mode: 0 - from cursor, 1 - to cursor, 2 - all</td>
</tr>
<tr>
<td>\e[&lt;n&gt;S</td>
<td>[lines]</td>
<td>Scroll screen content up, add empty line at the bottom</td>
</tr>
<tr>
<td>\e[&lt;n&gt;T</td>
<td>[lines]</td>
<td>Scroll screen content down, add empty line at the top</td>
</tr>
<tr>
<td>\e]W&lt;r&gt;;&lt;c&gt;\a</td>
<td>rows;cols</td>
<td>Set screen size (max ~ 80x30). This also clears the screen. This is a custom ESPTerm OSC command.</td>
</tr>
</tbody>
</table>
<h3>System Commands</h3> <table class="ansiref w100">
<thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<tbody>
<tr>
<td>\eH</td>
<td>Set tab stop at the current column. There are, by default, tabs every 8 columns.</td>
</tr>
<tr>
<td>
\e[<i>n</i>I<br>
\e[<i>n</i>Z
</td>
<td>Advance (I) or go back (Z) <i>n</i> tab stops or end/start of line. ASCII TAB (9) is equivalent to <code>\e[1I</code></td>
</tr>
<tr>
<td>
\e[0g<br>
\e[3g<br>
</td>
<td>Clear tab stop at the current column (0), or all columns (3).</td>
</tr>
</tbody>
</table>
<table class="ansiref w100"> <h3>Other options</h3>
<thead>
<tr> <table class="ansiref w100">
<th>Code</th> <thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<th>Params</th> <tbody>
<th>Meaning</th> <tr>
</tr> <td>\e[?7h<br>\e[?7l</td>
</thead> <td>Enable (h) or disable (l) cursor auto-wrap and screen auto-scroll</td>
<tbody> </tr>
<tr> <tr>
<td>\ec</td> <td>\e[?25h<br>\e[?25l</td>
<td>--</td> <td>Show (h) or hide (l) the cursor</td>
<td> </tr>
"Device Reset" - clear screen, reset attributes, show cursor & move it to 1,1. </tbody>
The screen size and WiFi settings stay unchanged. </table>
</td> </div>
</tr> </div>
<tr>
<td>\e[5n</td> <div class="Box fold">
<td>--</td> <h2>Screen Content Manipulation</h2>
<td>Query device status, replies with <code>\e[0n</code> "device is OK". Can be used to check if the UART works.</td>
</tr> <div class="Row v">
<tr> <p>
<td>\e]TITLE=…\a</td> <b>Legend:</b>
<td>Title text</td> Italic letters such as <i>n</i> are ASCII numbers that serve as arguments, separated with a semicolon.
<td>Set terminal title. This is a custom ESPTerm OSC command.</td> If an argument is left out, it's treated as 0 or 1, depending on what makes sense for the command.
</tr> </p>
<tr>
<td>\e]BTNn=…\a</td> <table class="ansiref w100">
<td>1-5, label</td> <thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<td>Set button label. This is a custom ESPTerm OSC command.</td> <tbody>
</tr> <tr>
<tr> <td>\e[<i>m</i>J</td>
<td>ASCII 24 (18h)</td> <td>Clear part of screen. <i>m</i>: 0 - from cursor, 1 - to cursor, 2 - all</td>
<td></td> </tr>
<td>This symbol is sent by ESPTerm when it becomes ready to receive commands. It can be used to wait before it becomes <tr>
ready on power-up, or to detect a spontaneous ESPTerm restart - that could happen due to RAM exhaustion due <td>\e[<i>m</i>K</td>
to a memory leak, or perhaps a power outage. <td>Erase part of line. <i>m</i>: 0 - from cursor, 1 - to cursor, 2 - all</td>
</td> </tr>
</tr> <tr>
</tbody> <td>
</table> \e[<i>n</i>X
</td>
<td>Erase <i>n</i> characters in line.</td>
</tr>
<tr>
<td>
\e[<i>n</i>L<br>
\e[<i>n</i>M
</td>
<td>Insert (L) or delete (M) <i>n</i> lines. Following lines are pulled up or pushed down.</td>
</tr>
<tr>
<td>
\e[<i>n</i>@<br>
\e[<i>nP
</td>
<td>Insert (@) or delete (P) <i>n</i> characters. The rest of the line is pulled left or pushed right.
Characters going past the end of line are lost.</td>
</tr>
</tbody>
</table>
</div>
</div>
<div class="Box fold">
<h2>Alternate Character Sets</h2>
<div class="Row v">
<p>
ESPTerm implements Alternate Character Sets as a way to print box drawing characters
and special symbols. A character set can change what each received ASCII character
is printed as on the screen (eg. "{" is "π" in codepage 0). The implementation is based
on the original VT devices.
Since ESPTerm also fully supports UTF-8, you can probably ignore this feature and use
Unicode directly. It's added for compatibility with some programs that use this.
</p>
<p>The following codepages are implemented:</p>
<ul>
<li>B - US ASCII (default)</li>
<li>A - UK ASCII: # replaced with £</li>
<li>0 - Symbols and basic line drawing (standard DEC alternate character set)</li>
<li>1 - Symbols and advanced line drawing (based on DOS codepage 437)</li>
</ul>
<p>To see what character maps to which symbol, look in the source code or try it. All codepages use codes 32-127, 32 being space.</p>
<p>
There are two character set slots, G0 and G1.
Those slots are selected as active using ASCII codes Shift In and Shift Out (those originally served for shifting
a red-black typewriter tape). Each slot (G0 and G1) can have a different codepage assigned. G0 and G1 and the active slot number are
saved and restored with the cursor and cleared with a screen reset (<code>\ec</code>).
</p>
<p>The following commands are used:</p>
<table class="ansiref w100">
<thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<tbody>
<tr>
<td>\e(<i>x</i></td>
<td>Set G0 = codepage <i>x</i></td>
</tr>
<tr>
<td>\e)<i>x</i></td>
<td>Set G1 = codepage <i>x</i></td>
</tr>
<tr>
<td>SO (14)</td>
<td>Activate G0</td>
</tr>
<tr>
<td>SI (15)</td>
<td>Activate G1</td>
</tr>
</table>
</div>
</div>
<div class="Box fold">
<h2>System Commands</h2>
<div class="Row v">
<p>
It's possible to dynamically change the screen title text and action button labels.
Setting an empty label to a button makes it look disabled. The buttons send ASCII 1-5 when clicked.
Those changes are not retained after restart.
</p>
<table class="ansiref w100">
<thead><tr><th>Code</th><th>Meaning</th></tr></thead>
<tbody>
<tr>
<td>\ec</td>
<td>
Clear screen, reset attributes and cursor.
The screen size, title and button labels remain unchanged.
</td>
</tr>
<tr>
<td>\e[5n</td>
<td>
Query device status, ESPTerm replies with <code>\e[0n</code> "device is OK".
Can be used to check if the terminal has booted up and is ready to receive commands.</td>
</tr>
<tr>
<td>CAN (24)</td>
<td>
This ASCII code is not a command, but is sent by ESPTerm when it becomes ready to receive commands.
When this code is received on the UART, it means ESPTerm has restarted and is ready. Use this to detect
spontaneous restarts which require a full screen repaint.
</td>
</tr>
<tr>
<td>\e]0;<i>title</i>\a</td>
<td>Set screen title (this is a standard OSC command)</td>
</tr>
<tr>
<td>
\e]<i>81</i>;<i>btn1</i>\a<br>
\e]<i>82</i>;<i>btn2</i>\a<br>
\e]<i>83</i>;<i>btn3</i>\a<br>
\e]<i>84</i>;<i>btn4</i>\a<br>
\e]<i>85</i>;<i>btn5</i>\a<br>
</td>
<td>Set button 1-5 label - eg. <code>\e]81;Yes\a</code>
sets the first button text to "Yes".</td>
</tr>
<tr>
<td>\e[8;<i>r</i>;<i>c</i>t</td>
<td>Set screen size (this is a command borrowed from xterm)</td>
</tr>
</tbody>
</table>
</div>
</div> </div>
+14
View File
@@ -29,6 +29,20 @@ form { @include naked(); }
margin-bottom: 0; margin-bottom: 0;
} }
&.v {
display: block;
}
.aside {
float: right;
margin-left: 5px;
margin-bottom: 5px;
@include media($phone) {
margin: 0; float: none;
}
}
.spacer { .spacer {
width: $form-label-w; width: $form-label-w;
+7 -2
View File
@@ -31,6 +31,11 @@ a:hover {
} }
ul > * { ul > * {
padding-top: .2em; padding-top: .3em;
padding-bottom: .2em; padding-bottom: .3em;
}
ul {
margin-top: 0;
margin-bottom: 0;
} }
+47 -22
View File
@@ -103,44 +103,69 @@
} }
} }
@mixin mobcol-base {
h2 {
position: relative;
cursor: pointer;
padding: 2px 1.3rem 2px 5px;
margin: 0 -5px 0 -5px;
&::after {
position: absolute;
right: 4px;
content: '';
top:50%;
font-size: 120%;
font-weight: bold;
transform: translate(0,-50%) rotate(90deg);
}
}
&.expanded h2::after {
transform: translate(-25%,-50%) rotate(-90deg);
margin-bottom: dist(0);
}
.Row {
display: none;
}
&.expanded {
.Row {
display: flex;
&.v {
display: block;
}
}
}
}
.Box.fold {
@include mobcol-base;
}
@include media($phone) { @include media($phone) {
.Box.mobcol { .Box.fold, .Box.mobcol {
h2 { h2 {
position: relative;
cursor: pointer;
padding: 2px 1.3rem 2px 5px; padding: 2px 1.3rem 2px 5px;
margin: 0 -5px 0 -5px; margin: 0 -5px 0 -5px;
&::after {
position: absolute;
right: 4px;
content: '';
top:50%;
font-size: 120%;
font-weight: bold;
transform: translate(0,-50%) rotate(90deg);
}
} }
&.expanded h2::after { &.expanded h2::after {
transform: translate(-25%,-50%) rotate(-90deg);
margin-bottom: dist(0); margin-bottom: dist(0);
} }
}
.Row { .Box.mobcol {
display: none; @include mobcol-base;
}
#ap-box { #ap-box {
display: none; display: none;
} }
&.expanded { &.expanded {
.Row {
display: flex;
}
#ap-box { #ap-box {
display: block; display: block;
} }
+4 -6
View File
@@ -33,7 +33,7 @@
} }
} }
.ansiref { .Row table {
&,td,th{ &,td,th{
border: 1px solid #666; border: 1px solid #666;
} }
@@ -45,7 +45,9 @@
th { th {
background-color: rgba(255,255,255,.1); background-color: rgba(255,255,255,.1);
} }
}
.ansiref {
td:nth-child(1) { td:nth-child(1) {
font-family: monospace; font-family: monospace;
} }
@@ -54,11 +56,7 @@
width: 100%; width: 100%;
td:nth-child(1) { td:nth-child(1) {
width: 9em; width: 6em;
}
td:nth-child(2) {
width: 8em;
} }
} }
} }
+6 -7
View File
@@ -17,7 +17,7 @@ body.term {
#screen { #screen {
@include noselect(); @include noselect();
font-family: monospace; font-family: monospace;
font-size: 16pt; font-size: 20px;//16pt; - 16pt causes vertical breaks in line drawing characters??
white-space: nowrap; white-space: nowrap;
background: #111213; background: #111213;
padding: 6px; padding: 6px;
@@ -27,12 +27,11 @@ body.term {
span { span {
white-space: pre; white-space: pre;
cursor: pointer; cursor: pointer;
&:hover {
outline: 1px solid rgba(#ffffff, 0.4); display: inline-block;
@include media($phone) { line-height: 1.15em; // this adjusts the spacing
outline: 0 none; width: 0.6em; // horizontal spacing, estimated to be about right
} overflow: visible;
}
} }
} }
+279 -375
View File
@@ -2,63 +2,67 @@
/* #line 1 "user/ansi_parser.rl" */ /* #line 1 "user/ansi_parser.rl" */
#include <esp8266.h> #include <esp8266.h>
#include "ansi_parser.h" #include "ansi_parser.h"
#include "screen.h" #include "ansi_parser_callbacks.h"
#include "ascii.h"
#include "apars_logging.h"
/* Ragel constants block */ /* Ragel constants block */
/* #line 10 "user/ansi_parser.c" */ /* #line 12 "user/ansi_parser.c" */
static const char _ansi_actions[] = { static const char _ansi_actions[] = {
0, 1, 0, 1, 1, 1, 2, 1, 0, 1, 0, 1, 1, 1, 2, 1,
3, 1, 4, 1, 5, 1, 6, 1, 3, 1, 4, 1, 5, 1, 6, 1,
7, 1, 8, 1, 9, 1, 10, 1, 7, 1, 8, 1, 9, 1, 10, 1,
11, 1, 12, 1, 13, 1, 14, 1, 11, 1, 12, 1, 13, 1, 14, 2,
15, 1, 16, 1, 17, 2, 2, 5, 3, 6
2, 10, 11, 2, 10, 12
}; };
static const char _ansi_eof_actions[] = { static const char _ansi_eof_actions[] = {
0, 13, 13, 13, 13, 13, 13, 13, 0, 1, 1, 1, 1, 1, 1, 1,
13, 13, 13, 13, 13, 13, 13, 13, 1, 1, 0, 0, 0, 0, 0
13, 13, 13, 13, 13, 13, 13, 13,
13, 13, 13, 13, 13, 13, 0, 0,
0, 0, 0, 0, 0, 0, 0
}; };
static const int ansi_start = 1; static const int ansi_start = 1;
static const int ansi_first_final = 30; static const int ansi_first_final = 10;
static const int ansi_error = 0; static const int ansi_error = 0;
static const int ansi_en_CSI_body = 5; static const int ansi_en_CSI_body = 5;
static const int ansi_en_OSC_body = 7; static const int ansi_en_STRCMD_body = 7;
static const int ansi_en_TITLE_body = 27; static const int ansi_en_charsetcmd_body = 9;
static const int ansi_en_charsetcmd_body = 29;
static const int ansi_en_main = 1; static const int ansi_en_main = 1;
/* #line 9 "user/ansi_parser.rl" */ /* #line 11 "user/ansi_parser.rl" */
// Max nr of CSI parameters
#define CSI_N_MAX 10
#define STR_CHAR_MAX 64
static volatile int cs = -1; static volatile int cs = -1;
static volatile bool inside_string = false;
static ETSTimer resetTim; // public
volatile u32 ansi_parser_char_cnt = 0;
static void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
resetParserCb(void *arg) { ansi_parser_reset(void) {
if (cs != ansi_start) { if (cs != ansi_start) {
cs = ansi_start; cs = ansi_start;
inside_string = false;
apars_reset_utf8buffer(); apars_reset_utf8buffer();
ansi_warn("Parser timeout, state reset"); ansi_warn("Parser timeout, state reset");
} }
} }
#define HISTORY_LEN 16 #define HISTORY_LEN 10
#if DEBUG_ANSI #if DEBUG_ANSI
static char history[HISTORY_LEN + 1]; static char history[HISTORY_LEN + 1];
#endif #endif
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
apars_handle_badseq(void) apars_show_context(void)
{ {
#if DEBUG_ANSI #if DEBUG_ANSI
char buf1[HISTORY_LEN*3+2]; char buf1[HISTORY_LEN*3+2];
@@ -93,56 +97,115 @@ apars_handle_badseq(void)
* \param len - length of the newdata buffer * \param len - length of the newdata buffer
*/ */
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
ansi_parser(const char *newdata, size_t len) ansi_parser(char newchar)
{ {
// The CSI code is built here // The CSI code is built here
static char csi_leading; //!< Leading char, 0 if none static char leadchar;
static int csi_ni; //!< Number of the active digit static int arg_ni;
static int csi_cnt; //!< Digit count static int arg_cnt;
static int csi_n[CSI_N_MAX]; //!< Param digits static int arg[CSI_N_MAX];
static char csi_char; //!< CSI action char (end) static char string_buffer[STR_CHAR_MAX];
static char osc_buffer[OSC_CHAR_MAX]; static int str_ni;
static int osc_bi;
if (len == 0) len = strlen(newdata); // This is used to detect timeout delay (time since last rx char)
ansi_parser_char_cnt++;
// Load new data to Ragel vars
const char *p = newdata;
const char *eof = NULL;
const char *pe = newdata + len;
// Init Ragel on the first run // Init Ragel on the first run
if (cs == -1) { if (cs == -1) {
/* #line 118 "user/ansi_parser.c" */ /* #line 117 "user/ansi_parser.c" */
{ {
cs = ansi_start; cs = ansi_start;
} }
/* #line 87 "user/ansi_parser.rl" */ /* #line 91 "user/ansi_parser.rl" */
#if DEBUG_ANSI #if DEBUG_ANSI
memset(history, 0, sizeof(history)); memset(history, 0, sizeof(history));
#endif #endif
} }
// schedule state reset after idle timeout #if DEBUG_ANSI
if (termconf->parser_tout_ms > 0) { for(int i=1; i<HISTORY_LEN; i++) {
os_timer_disarm(&resetTim); history[i-1] = history[i];
os_timer_setfn(&resetTim, resetParserCb, NULL); }
os_timer_arm(&resetTim, termconf->parser_tout_ms, 0); history[HISTORY_LEN-1] = newchar;
} #endif
#if DEBUG_ANSI // Handle simple characters immediately (bypass parser)
for(int i=len; i<HISTORY_LEN; i++) { if (newchar < ' ') {
history[i-len] = history[i]; switch (newchar) {
case ESC:
if (!inside_string) {
// Reset state
cs = ansi_start;
// now the ESC will be processed by the parser
}
break; // proceed to parser
// Literally passed
case FF:
case VT:
newchar = LF; // translate to LF, like VT100 / xterm do
case CR:
case LF:
case BS:
apars_handle_plainchar(newchar);
return;
case TAB:
apars_handle_tab();
return;
// Select G0 or G1
case SI:
apars_handle_chs_switch(0);
return;
case SO:
apars_handle_chs_switch(1);
return;
case BEL:
// bel is also used to terminate OSC
if (!inside_string) {
apars_handle_bel();
return;
}
break;
case ENQ:
apars_handle_enq();
return;
// Cancel the active sequence
case CAN:
case SUB:
cs = ansi_start;
return;
default:
// Discard all others
return;
}
} else {
// >= ' '
// bypass the parser for simple characters (speed-up)
if (cs == ansi_start) {
apars_handle_plainchar(newchar);
return;
}
} }
strcpy(&history[HISTORY_LEN-len], newdata);
#endif // Load new data to Ragel vars
const char *p = &newchar;
const char *eof = NULL;
const char *pe = &newchar + 1;
// The parser // The parser
/* #line 146 "user/ansi_parser.c" */ /* #line 209 "user/ansi_parser.c" */
{ {
const char *_acts; const char *_acts;
unsigned int _nacts; unsigned int _nacts;
@@ -154,454 +217,296 @@ ansi_parser(const char *newdata, size_t len)
_resume: _resume:
switch ( cs ) { switch ( cs ) {
case 1: case 1:
if ( (*p) == 27 ) switch( (*p) ) {
goto tr1; case 7: goto tr1;
case 27: goto tr2;
}
goto tr0; goto tr0;
case 0:
goto _out;
case 2: case 2:
switch( (*p) ) { switch( (*p) ) {
case 32: goto tr3; case 32: goto tr3;
case 35: goto tr4; case 35: goto tr4;
case 91: goto tr7; case 37: goto tr5;
case 93: goto tr8; case 80: goto tr7;
case 107: goto tr9; case 88: goto tr7;
case 91: goto tr8;
case 107: goto tr7;
} }
if ( (*p) < 60 ) { if ( (*p) < 64 ) {
if ( (*p) > 47 ) { if ( (*p) < 48 ) {
if ( 48 <= (*p) && (*p) <= 57 ) if ( 40 <= (*p) && (*p) <= 47 )
goto tr5;
} else if ( (*p) > 57 ) {
if ( 60 <= (*p) && (*p) <= 62 )
goto tr6; goto tr6;
} else if ( (*p) >= 40 ) } else
goto tr5; goto tr6;
} else if ( (*p) > 62 ) { } else if ( (*p) > 92 ) {
if ( (*p) > 90 ) { if ( (*p) < 97 ) {
if ( 97 <= (*p) && (*p) <= 122 ) if ( 93 <= (*p) && (*p) <= 95 )
goto tr7;
} else if ( (*p) > 122 ) {
if ( 124 <= (*p) && (*p) <= 126 )
goto tr6; goto tr6;
} else if ( (*p) >= 65 ) } else
goto tr6; goto tr6;
} else } else
goto tr6; goto tr6;
goto tr2; goto tr1;
case 0:
goto _out;
case 3: case 3:
if ( 70 <= (*p) && (*p) <= 71 ) if ( (*p) > 71 ) {
goto tr10; if ( 76 <= (*p) && (*p) <= 78 )
goto tr2; goto tr9;
case 30: } else if ( (*p) >= 70 )
if ( (*p) == 27 ) goto tr9;
goto tr1; goto tr1;
case 10:
switch( (*p) ) {
case 7: goto tr1;
case 27: goto tr2;
}
goto tr0; goto tr0;
case 4: case 4:
if ( 48 <= (*p) && (*p) <= 57 ) if ( 48 <= (*p) && (*p) <= 57 )
goto tr11; goto tr10;
goto tr2; goto tr1;
case 5: case 5:
switch( (*p) ) { switch( (*p) ) {
case 59: goto tr14; case 59: goto tr13;
case 64: goto tr15; case 64: goto tr14;
} }
if ( (*p) < 60 ) { if ( (*p) < 60 ) {
if ( (*p) > 47 ) { if ( (*p) > 47 ) {
if ( 48 <= (*p) && (*p) <= 57 ) if ( 48 <= (*p) && (*p) <= 57 )
goto tr13; goto tr12;
} else if ( (*p) >= 32 ) } else if ( (*p) >= 32 )
goto tr12; goto tr11;
} else if ( (*p) > 63 ) { } else if ( (*p) > 63 ) {
if ( (*p) > 90 ) { if ( (*p) > 90 ) {
if ( 96 <= (*p) && (*p) <= 122 ) if ( 96 <= (*p) && (*p) <= 122 )
goto tr16; goto tr15;
} else if ( (*p) >= 65 ) } else if ( (*p) >= 65 )
goto tr16; goto tr15;
} else } else
goto tr12; goto tr11;
goto tr2; goto tr1;
case 6: case 6:
if ( (*p) == 59 ) if ( (*p) == 59 )
goto tr14; goto tr13;
if ( (*p) < 64 ) { if ( (*p) < 64 ) {
if ( 48 <= (*p) && (*p) <= 57 ) if ( 48 <= (*p) && (*p) <= 57 )
goto tr13; goto tr12;
} else if ( (*p) > 90 ) { } else if ( (*p) > 90 ) {
if ( 96 <= (*p) && (*p) <= 122 ) if ( 96 <= (*p) && (*p) <= 122 )
goto tr16; goto tr15;
} else } else
goto tr16; goto tr15;
goto tr2; goto tr1;
case 31: case 11:
goto tr2; goto tr1;
case 32: case 12:
if ( (*p) == 59 ) if ( (*p) == 59 )
goto tr14; goto tr13;
if ( (*p) < 64 ) { if ( (*p) < 64 ) {
if ( 48 <= (*p) && (*p) <= 57 ) if ( 48 <= (*p) && (*p) <= 57 )
goto tr13; goto tr12;
} else if ( (*p) > 90 ) { } else if ( (*p) > 90 ) {
if ( 96 <= (*p) && (*p) <= 122 ) if ( 96 <= (*p) && (*p) <= 122 )
goto tr16; goto tr15;
} else } else
goto tr16; goto tr15;
goto tr2; goto tr1;
case 7: case 7:
switch( (*p) ) { switch( (*p) ) {
case 48: goto tr17; case 7: goto tr17;
case 66: goto tr18; case 27: goto tr18;
case 84: goto tr19;
case 87: goto tr20;
} }
goto tr2; goto tr16;
case 13:
goto tr1;
case 8: case 8:
if ( (*p) == 59 ) if ( (*p) == 92 )
goto tr21; goto tr17;
goto tr2; goto tr1;
case 9: case 9:
switch( (*p) ) { switch( (*p) ) {
case 7: goto tr23; case 7: goto tr1;
case 27: goto tr24; case 27: goto tr1;
} }
goto tr22; goto tr19;
case 33:
switch( (*p) ) {
case 7: goto tr23;
case 27: goto tr24;
}
goto tr22;
case 10:
if ( (*p) == 92 )
goto tr25;
goto tr2;
case 34:
goto tr2;
case 11:
if ( (*p) == 84 )
goto tr26;
goto tr2;
case 12:
if ( (*p) == 78 )
goto tr27;
goto tr2;
case 13:
if ( 48 <= (*p) && (*p) <= 57 )
goto tr28;
goto tr2;
case 14: case 14:
if ( (*p) == 61 ) goto tr1;
goto tr29;
goto tr2;
case 15:
switch( (*p) ) {
case 7: goto tr31;
case 27: goto tr32;
}
goto tr30;
case 35:
switch( (*p) ) {
case 7: goto tr31;
case 27: goto tr32;
}
goto tr30;
case 16:
if ( (*p) == 92 )
goto tr33;
goto tr2;
case 17:
if ( (*p) == 73 )
goto tr34;
goto tr2;
case 18:
if ( (*p) == 84 )
goto tr35;
goto tr2;
case 19:
if ( (*p) == 76 )
goto tr36;
goto tr2;
case 20:
if ( (*p) == 69 )
goto tr37;
goto tr2;
case 21:
if ( (*p) == 61 )
goto tr38;
goto tr2;
case 22:
if ( 48 <= (*p) && (*p) <= 57 )
goto tr39;
goto tr2;
case 23:
if ( (*p) == 59 )
goto tr40;
if ( 48 <= (*p) && (*p) <= 57 )
goto tr39;
goto tr2;
case 24:
if ( 48 <= (*p) && (*p) <= 57 )
goto tr41;
goto tr2;
case 25:
switch( (*p) ) {
case 7: goto tr42;
case 27: goto tr43;
}
if ( 48 <= (*p) && (*p) <= 57 )
goto tr41;
goto tr2;
case 26:
if ( (*p) == 92 )
goto tr42;
goto tr2;
case 27:
switch( (*p) ) {
case 7: goto tr45;
case 27: goto tr46;
}
goto tr44;
case 36:
switch( (*p) ) {
case 7: goto tr45;
case 27: goto tr46;
}
goto tr44;
case 28:
if ( (*p) == 92 )
goto tr47;
goto tr2;
case 37:
goto tr2;
case 29:
goto tr48;
case 38:
goto tr2;
} }
tr2: cs = 0; goto f0; tr1: cs = 0; goto f0;
tr0: cs = 1; goto f1; tr0: cs = 1; goto f1;
tr1: cs = 2; goto _again; tr2: cs = 2; goto _again;
tr3: cs = 3; goto _again; tr3: cs = 3; goto _again;
tr4: cs = 4; goto _again; tr4: cs = 4; goto _again;
tr11: cs = 6; goto f8;
tr12: cs = 6; goto f9; tr12: cs = 6; goto f9;
tr13: cs = 6; goto f10; tr13: cs = 6; goto f10;
tr14: cs = 6; goto f11; tr16: cs = 7; goto f13;
tr17: cs = 8; goto _again; tr18: cs = 8; goto _again;
tr21: cs = 9; goto _again; tr5: cs = 10; goto f2;
tr22: cs = 9; goto f14; tr6: cs = 10; goto f3;
tr24: cs = 10; goto _again; tr7: cs = 10; goto f4;
tr18: cs = 11; goto _again; tr8: cs = 10; goto f5;
tr26: cs = 12; goto _again; tr9: cs = 10; goto f6;
tr27: cs = 13; goto _again; tr10: cs = 10; goto f7;
tr28: cs = 14; goto f10; tr15: cs = 11; goto f12;
tr29: cs = 15; goto _again; tr14: cs = 12; goto f11;
tr30: cs = 15; goto f14; tr17: cs = 13; goto f14;
tr32: cs = 16; goto _again; tr19: cs = 14; goto f15;
tr19: cs = 17; goto _again;
tr34: cs = 18; goto _again;
tr35: cs = 19; goto _again;
tr36: cs = 20; goto _again;
tr37: cs = 21; goto _again;
tr20: cs = 22; goto _again;
tr39: cs = 23; goto f10;
tr40: cs = 24; goto f11;
tr41: cs = 25; goto f10;
tr43: cs = 26; goto _again;
tr44: cs = 27; goto f14;
tr46: cs = 28; goto _again;
tr5: cs = 30; goto f2;
tr6: cs = 30; goto f3;
tr7: cs = 30; goto f4;
tr8: cs = 30; goto f5;
tr9: cs = 30; goto f6;
tr10: cs = 30; goto f7;
tr11: cs = 30; goto f8;
tr16: cs = 31; goto f13;
tr15: cs = 32; goto f12;
tr23: cs = 33; goto f15;
tr38: cs = 34; goto f6;
tr25: cs = 34; goto f16;
tr33: cs = 34; goto f18;
tr42: cs = 34; goto f19;
tr31: cs = 35; goto f17;
tr45: cs = 36; goto f15;
tr47: cs = 37; goto f16;
tr48: cs = 38; goto f20;
f1: _acts = _ansi_actions + 1; goto execFuncs; f0: _acts = _ansi_actions + 1; goto execFuncs;
f4: _acts = _ansi_actions + 3; goto execFuncs; f1: _acts = _ansi_actions + 3; goto execFuncs;
f9: _acts = _ansi_actions + 5; goto execFuncs; f5: _acts = _ansi_actions + 5; goto execFuncs;
f10: _acts = _ansi_actions + 7; goto execFuncs; f8: _acts = _ansi_actions + 7; goto execFuncs;
f11: _acts = _ansi_actions + 9; goto execFuncs; f9: _acts = _ansi_actions + 9; goto execFuncs;
f13: _acts = _ansi_actions + 11; goto execFuncs; f10: _acts = _ansi_actions + 11; goto execFuncs;
f0: _acts = _ansi_actions + 13; goto execFuncs; f12: _acts = _ansi_actions + 13; goto execFuncs;
f5: _acts = _ansi_actions + 15; goto execFuncs; f4: _acts = _ansi_actions + 15; goto execFuncs;
f6: _acts = _ansi_actions + 17; goto execFuncs; f13: _acts = _ansi_actions + 17; goto execFuncs;
f19: _acts = _ansi_actions + 19; goto execFuncs; f14: _acts = _ansi_actions + 19; goto execFuncs;
f14: _acts = _ansi_actions + 21; goto execFuncs; f7: _acts = _ansi_actions + 21; goto execFuncs;
f16: _acts = _ansi_actions + 23; goto execFuncs; f3: _acts = _ansi_actions + 23; goto execFuncs;
f18: _acts = _ansi_actions + 25; goto execFuncs; f6: _acts = _ansi_actions + 25; goto execFuncs;
f8: _acts = _ansi_actions + 27; goto execFuncs; f2: _acts = _ansi_actions + 27; goto execFuncs;
f3: _acts = _ansi_actions + 29; goto execFuncs; f15: _acts = _ansi_actions + 29; goto execFuncs;
f7: _acts = _ansi_actions + 31; goto execFuncs; f11: _acts = _ansi_actions + 31; goto execFuncs;
f2: _acts = _ansi_actions + 33; goto execFuncs;
f20: _acts = _ansi_actions + 35; goto execFuncs;
f12: _acts = _ansi_actions + 37; goto execFuncs;
f15: _acts = _ansi_actions + 40; goto execFuncs;
f17: _acts = _ansi_actions + 43; goto execFuncs;
execFuncs: execFuncs:
_nacts = *_acts++; _nacts = *_acts++;
while ( _nacts-- > 0 ) { while ( _nacts-- > 0 ) {
switch ( *_acts++ ) { switch ( *_acts++ ) {
case 0: case 0:
/* #line 117 "user/ansi_parser.rl" */ /* #line 185 "user/ansi_parser.rl" */
{
ansi_warn("Parser error.");
apars_show_context();
inside_string = false; // no longer in string, for sure
{cs = 1;goto _again;}
}
break;
case 1:
/* #line 194 "user/ansi_parser.rl" */
{ {
if ((*p) != 0) { if ((*p) != 0) {
apars_handle_plainchar((*p)); apars_handle_plainchar((*p));
} }
} }
break; break;
case 1: case 2:
/* #line 126 "user/ansi_parser.rl" */ /* #line 202 "user/ansi_parser.rl" */
{ {
// Reset the CSI builder // Reset the CSI builder
csi_leading = csi_char = 0; leadchar = NUL;
csi_ni = 0; arg_ni = 0;
csi_cnt = 0; arg_cnt = 0;
// Zero out digits // Zero out digits
for(int i = 0; i < CSI_N_MAX; i++) { for(int i = 0; i < CSI_N_MAX; i++) {
csi_n[i] = 0; arg[i] = 0;
} }
{cs = 5;goto _again;} {cs = 5;goto _again;}
} }
break; break;
case 2:
/* #line 140 "user/ansi_parser.rl" */
{
csi_leading = (*p);
}
break;
case 3: case 3:
/* #line 144 "user/ansi_parser.rl" */ /* #line 216 "user/ansi_parser.rl" */
{ {
if (csi_cnt == 0) csi_cnt = 1; leadchar = (*p);
// x10 + digit
if (csi_ni < CSI_N_MAX) {
csi_n[csi_ni] = csi_n[csi_ni]*10 + ((*p) - '0');
}
} }
break; break;
case 4: case 4:
/* #line 152 "user/ansi_parser.rl" */ /* #line 220 "user/ansi_parser.rl" */
{ {
if (csi_cnt == 0) csi_cnt = 1; // handle case when first arg is empty if (arg_cnt == 0) arg_cnt = 1;
csi_cnt++; // x10 + digit
csi_ni++; if (arg_ni < CSI_N_MAX) {
arg[arg_ni] = arg[arg_ni]*10 + ((*p) - '0');
}
} }
break; break;
case 5: case 5:
/* #line 158 "user/ansi_parser.rl" */ /* #line 228 "user/ansi_parser.rl" */
{ {
csi_char = (*p); if (arg_cnt == 0) arg_cnt = 1; // handle case when first arg is empty
apars_handle_CSI(csi_leading, csi_n, csi_cnt, csi_char); arg_cnt++;
{cs = 1;goto _again;} arg_ni++;
} }
break; break;
case 6: case 6:
/* #line 164 "user/ansi_parser.rl" */ /* #line 234 "user/ansi_parser.rl" */
{ {
ansi_warn("Invalid escape sequence discarded."); apars_handle_csi(leadchar, arg, arg_cnt, (*p));
apars_handle_badseq();
{cs = 1;goto _again;} {cs = 1;goto _again;}
} }
break; break;
case 7: case 7:
/* #line 182 "user/ansi_parser.rl" */ /* #line 245 "user/ansi_parser.rl" */
{ {
csi_ni = 0; leadchar = (*p);
str_ni = 0;
// we reuse the CSI numeric buffer string_buffer[0] = '\0';
for(int i = 0; i < CSI_N_MAX; i++) { inside_string = true;
csi_n[i] = 0;
}
osc_bi = 0;
osc_buffer[0] = '\0';
{cs = 7;goto _again;} {cs = 7;goto _again;}
} }
break; break;
case 8: case 8:
/* #line 197 "user/ansi_parser.rl" */ /* #line 253 "user/ansi_parser.rl" */
{ {
osc_bi = 0; string_buffer[str_ni++] = (*p);
osc_buffer[0] = '\0';
{cs = 27;goto _again;}
} }
break; break;
case 9: case 9:
/* #line 203 "user/ansi_parser.rl" */ /* #line 257 "user/ansi_parser.rl" */
{ {
apars_handle_OSC_SetScreenSize(csi_n[0], csi_n[1]); inside_string = false;
string_buffer[str_ni++] = '\0';
apars_handle_string_cmd(leadchar, string_buffer);
{cs = 1;goto _again;} {cs = 1;goto _again;}
} }
break; break;
case 10: case 10:
/* #line 208 "user/ansi_parser.rl" */ /* #line 270 "user/ansi_parser.rl" */
{ {
osc_buffer[osc_bi++] = (*p); apars_handle_hash_cmd((*p));
{cs = 1;goto _again;}
} }
break; break;
case 11: case 11:
/* #line 212 "user/ansi_parser.rl" */ /* #line 275 "user/ansi_parser.rl" */
{ {
osc_buffer[osc_bi++] = '\0'; apars_handle_short_cmd((*p));
apars_handle_OSC_SetTitle(osc_buffer);
{cs = 1;goto _again;} {cs = 1;goto _again;}
} }
break; break;
case 12: case 12:
/* #line 218 "user/ansi_parser.rl" */ /* #line 280 "user/ansi_parser.rl" */
{ {
osc_buffer[osc_bi++] = '\0'; apars_handle_space_cmd((*p));
apars_handle_OSC_SetButton(csi_n[0], osc_buffer);
{cs = 1;goto _again;} {cs = 1;goto _again;}
} }
break; break;
case 13: case 13:
/* #line 250 "user/ansi_parser.rl" */ /* #line 287 "user/ansi_parser.rl" */
{ {
apars_handle_hashCode((*p)); leadchar = (*p);
{cs = 1;goto _again;} {cs = 9;goto _again;}
} }
break; break;
case 14: case 14:
/* #line 255 "user/ansi_parser.rl" */ /* #line 292 "user/ansi_parser.rl" */
{ {
apars_handle_shortCode((*p)); apars_handle_chs_designate(leadchar, (*p));
{cs = 1;goto _again;} {cs = 1;goto _again;}
} }
break; break;
case 15: /* #line 510 "user/ansi_parser.c" */
/* #line 260 "user/ansi_parser.rl" */
{
apars_handle_setXCtrls((*p));
{cs = 1;goto _again;}
}
break;
case 16:
/* #line 265 "user/ansi_parser.rl" */
{
// abuse the buffer for storing the leading char
osc_buffer[0] = (*p);
{cs = 29;goto _again;}
}
break;
case 17:
/* #line 271 "user/ansi_parser.rl" */
{
apars_handle_characterSet(osc_buffer[0], (*p));
{cs = 1;goto _again;}
}
break;
/* #line 605 "user/ansi_parser.c" */
} }
} }
goto _again; goto _again;
@@ -618,17 +523,18 @@ _again:
unsigned int __nacts = (unsigned int) *__acts++; unsigned int __nacts = (unsigned int) *__acts++;
while ( __nacts-- > 0 ) { while ( __nacts-- > 0 ) {
switch ( *__acts++ ) { switch ( *__acts++ ) {
case 6: case 0:
/* #line 164 "user/ansi_parser.rl" */ /* #line 185 "user/ansi_parser.rl" */
{ {
ansi_warn("Invalid escape sequence discarded."); ansi_warn("Parser error.");
apars_handle_badseq(); apars_show_context();
inside_string = false; // no longer in string, for sure
{cs = 1; if ( p == pe ) {cs = 1; if ( p == pe )
goto _test_eof; goto _test_eof;
goto _again;} goto _again;}
} }
break; break;
/* #line 632 "user/ansi_parser.c" */ /* #line 538 "user/ansi_parser.c" */
} }
} }
} }
@@ -636,8 +542,6 @@ goto _again;}
_out: {} _out: {}
} }
/* #line 295 "user/ansi_parser.rl" */ /* #line 315 "user/ansi_parser.rl" */
} }
// 'ESC k blah OSC_end' is a shortcut for setting title (k is defined in GNU screen as Title Definition String)
+5 -28
View File
@@ -2,32 +2,10 @@
#define ANSI_PARSER_H #define ANSI_PARSER_H
#include <stdlib.h> #include <stdlib.h>
#include <screen.h>
// Max nr of CSI parameters void ansi_parser_reset(void);
#define CSI_N_MAX 10
#define OSC_CHAR_MAX TERM_TITLE_LEN
extern void apars_handle_plainchar(char c);
extern void apars_handle_CSI(char leadchar, int *params, int count, char keychar);
extern void apars_handle_OSC_SetScreenSize(int rows, int cols);
extern void apars_handle_OSC_SetButton(int num, const char *buffer);
extern void apars_handle_OSC_SetTitle(const char *buffer);
extern void apars_handle_shortCode(char c);
extern void apars_handle_hashCode(char c);
extern void apars_handle_characterSet(char leadchar, char c);
extern void apars_handle_setXCtrls(char c);
extern void apars_reset_utf8buffer(void);
// defined in the makefile
#if DEBUG_ANSI
#define ansi_warn warn
#define ansi_dbg dbg
#else
#define ansi_warn(...)
#define ansi_dbg(...)
#endif
extern volatile u32 ansi_parser_char_cnt;
/** /**
* \brief Linear ANSI chars stream parser * \brief Linear ANSI chars stream parser
@@ -39,12 +17,11 @@ extern void apars_reset_utf8buffer(void);
* \attention -> but always check the Ragel output for 'p--' * \attention -> but always check the Ragel output for 'p--'
* or 'p -=', that means trouble. * or 'p -=', that means trouble.
* *
* \param newdata - array of new chars to process * \param newchar - received char
* \param len - length of the newdata buffer
*/ */
void ansi_parser(const char *newdata, size_t len); void ansi_parser(char newchar);
/** This shows a short error message and prints the history (if any) */ /** This shows a short error message and prints the history (if any) */
void apars_handle_badseq(void); void apars_show_context(void);
#endif // ANSI_PARSER_H #endif // ANSI_PARSER_H
+156 -138
View File
@@ -1,6 +1,8 @@
#include <esp8266.h> #include <esp8266.h>
#include "ansi_parser.h" #include "ansi_parser.h"
#include "screen.h" #include "ansi_parser_callbacks.h"
#include "ascii.h"
#include "apars_logging.h"
/* Ragel constants block */ /* Ragel constants block */
%%{ %%{
@@ -8,27 +10,34 @@
write data; write data;
}%% }%%
// Max nr of CSI parameters
#define CSI_N_MAX 10
#define STR_CHAR_MAX 64
static volatile int cs = -1; static volatile int cs = -1;
static volatile bool inside_string = false;
static ETSTimer resetTim; // public
volatile u32 ansi_parser_char_cnt = 0;
static void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
resetParserCb(void *arg) { ansi_parser_reset(void) {
if (cs != ansi_start) { if (cs != ansi_start) {
cs = ansi_start; cs = ansi_start;
inside_string = false;
apars_reset_utf8buffer(); apars_reset_utf8buffer();
ansi_warn("Parser timeout, state reset"); ansi_warn("Parser timeout, state reset");
} }
} }
#define HISTORY_LEN 16 #define HISTORY_LEN 10
#if DEBUG_ANSI #if DEBUG_ANSI
static char history[HISTORY_LEN + 1]; static char history[HISTORY_LEN + 1];
#endif #endif
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
apars_handle_badseq(void) apars_show_context(void)
{ {
#if DEBUG_ANSI #if DEBUG_ANSI
char buf1[HISTORY_LEN*3+2]; char buf1[HISTORY_LEN*3+2];
@@ -63,54 +72,122 @@ apars_handle_badseq(void)
* \param len - length of the newdata buffer * \param len - length of the newdata buffer
*/ */
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
ansi_parser(const char *newdata, size_t len) ansi_parser(char newchar)
{ {
// The CSI code is built here // The CSI code is built here
static char csi_leading; //!< Leading char, 0 if none static char leadchar;
static int csi_ni; //!< Number of the active digit static int arg_ni;
static int csi_cnt; //!< Digit count static int arg_cnt;
static int csi_n[CSI_N_MAX]; //!< Param digits static int arg[CSI_N_MAX];
static char csi_char; //!< CSI action char (end) static char string_buffer[STR_CHAR_MAX];
static char osc_buffer[OSC_CHAR_MAX]; static int str_ni;
static int osc_bi;
if (len == 0) len = strlen(newdata); // This is used to detect timeout delay (time since last rx char)
ansi_parser_char_cnt++;
// Load new data to Ragel vars
const char *p = newdata;
const char *eof = NULL;
const char *pe = newdata + len;
// Init Ragel on the first run // Init Ragel on the first run
if (cs == -1) { if (cs == -1) {
%% write init; %% write init;
#if DEBUG_ANSI #if DEBUG_ANSI
memset(history, 0, sizeof(history)); memset(history, 0, sizeof(history));
#endif #endif
} }
// schedule state reset after idle timeout #if DEBUG_ANSI
if (termconf->parser_tout_ms > 0) { for(int i=1; i<HISTORY_LEN; i++) {
os_timer_disarm(&resetTim); history[i-1] = history[i];
os_timer_setfn(&resetTim, resetParserCb, NULL); }
os_timer_arm(&resetTim, termconf->parser_tout_ms, 0); history[HISTORY_LEN-1] = newchar;
} #endif
#if DEBUG_ANSI // Handle simple characters immediately (bypass parser)
for(int i=len; i<HISTORY_LEN; i++) { if (newchar < ' ') {
history[i-len] = history[i]; switch (newchar) {
case ESC:
if (!inside_string) {
// Reset state
cs = ansi_start;
// now the ESC will be processed by the parser
}
break; // proceed to parser
// Literally passed
case FF:
case VT:
newchar = LF; // translate to LF, like VT100 / xterm do
case CR:
case LF:
case BS:
apars_handle_plainchar(newchar);
return;
case TAB:
apars_handle_tab();
return;
// Select G0 or G1
case SI:
apars_handle_chs_switch(0);
return;
case SO:
apars_handle_chs_switch(1);
return;
case BEL:
// bel is also used to terminate OSC
if (!inside_string) {
apars_handle_bel();
return;
}
break;
case ENQ:
apars_handle_enq();
return;
// Cancel the active sequence
case CAN:
case SUB:
cs = ansi_start;
return;
default:
// Discard all others
return;
}
} else {
// >= ' '
// bypass the parser for simple characters (speed-up)
if (cs == ansi_start) {
apars_handle_plainchar(newchar);
return;
}
} }
strcpy(&history[HISTORY_LEN-len], newdata);
#endif // Load new data to Ragel vars
const char *p = &newchar;
const char *eof = NULL;
const char *pe = &newchar + 1;
// The parser // The parser
%%{ %%{
#/* #/*
ESC = 27; ESC = 27;
NOESC = (any - ESC); NOESC = (any - ESC - 7);
TOK_ST = ESC '\\'; # String terminator - used for OSC commands TOK_ST = ESC '\\'; # String terminator - used for OSC commands
OSC_END = ('\a' | ESC '\\'); STR_END = (7 | TOK_ST);
# --- Error handler ---
action errBadSeq {
ansi_warn("Parser error.");
apars_show_context();
inside_string = false; // no longer in string, for sure
fgoto main;
}
# --- Regular characters to be printed --- # --- Regular characters to be printed ---
@@ -120,54 +197,42 @@ ansi_parser(const char *newdata, size_t len)
} }
} }
# --- CSI CSI commands (Select Graphic Rendition) --- # --- CSI commands ---
# Text color & style
action CSI_start { action CSI_start {
// Reset the CSI builder // Reset the CSI builder
csi_leading = csi_char = 0; leadchar = NUL;
csi_ni = 0; arg_ni = 0;
csi_cnt = 0; arg_cnt = 0;
// Zero out digits // Zero out digits
for(int i = 0; i < CSI_N_MAX; i++) { for(int i = 0; i < CSI_N_MAX; i++) {
csi_n[i] = 0; arg[i] = 0;
} }
fgoto CSI_body; fgoto CSI_body;
} }
action CSI_leading { action CSI_leading {
csi_leading = fc; leadchar = fc;
} }
action CSI_digit { action CSI_digit {
if (csi_cnt == 0) csi_cnt = 1; if (arg_cnt == 0) arg_cnt = 1;
// x10 + digit // x10 + digit
if (csi_ni < CSI_N_MAX) { if (arg_ni < CSI_N_MAX) {
csi_n[csi_ni] = csi_n[csi_ni]*10 + (fc - '0'); arg[arg_ni] = arg[arg_ni]*10 + (fc - '0');
} }
} }
action CSI_semi { action CSI_semi {
if (csi_cnt == 0) csi_cnt = 1; // handle case when first arg is empty if (arg_cnt == 0) arg_cnt = 1; // handle case when first arg is empty
csi_cnt++; arg_cnt++;
csi_ni++; arg_ni++;
} }
action CSI_end { action CSI_end {
csi_char = fc; apars_handle_csi(leadchar, arg, arg_cnt, fc);
apars_handle_CSI(csi_leading, csi_n, csi_cnt, csi_char);
fgoto main;
}
action errBadSeq {
ansi_warn("Invalid escape sequence discarded.");
apars_handle_badseq();
fgoto main;
}
action back2main {
fgoto main; fgoto main;
} }
@@ -175,105 +240,61 @@ ansi_parser(const char *newdata, size_t len)
((digit @CSI_digit)* ';' @CSI_semi)* ((digit @CSI_digit)* ';' @CSI_semi)*
(digit @CSI_digit)* (alpha|'`'|'@') @CSI_end $!errBadSeq; (digit @CSI_digit)* (alpha|'`'|'@') @CSI_end $!errBadSeq;
# --- String commands ---
# --- OSC commands (Operating System Commands) --- action StrCmd_start {
# Module parametrisation leadchar = fc;
str_ni = 0;
action OSC_start { string_buffer[0] = '\0';
csi_ni = 0; inside_string = true;
fgoto STRCMD_body;
// we reuse the CSI numeric buffer
for(int i = 0; i < CSI_N_MAX; i++) {
csi_n[i] = 0;
}
osc_bi = 0;
osc_buffer[0] = '\0';
fgoto OSC_body;
} }
# collecting title string; this can also be entered by ESC k action StrCmd_char {
action SetTitle_start { string_buffer[str_ni++] = fc;
osc_bi = 0;
osc_buffer[0] = '\0';
fgoto TITLE_body;
} }
action OSC_resize { action StrCmd_end {
apars_handle_OSC_SetScreenSize(csi_n[0], csi_n[1]); inside_string = false;
string_buffer[str_ni++] = '\0';
apars_handle_string_cmd(leadchar, string_buffer);
fgoto main; fgoto main;
} }
action OSC_text_char { # According to the spec, ESC should be allowed inside the string sequence.
osc_buffer[osc_bi++] = fc; # We disallow ESC for simplicity, as it's hardly ever used.
} STRCMD_body := ((NOESC @StrCmd_char)* STR_END @StrCmd_end) $!errBadSeq;
action OSC_title { # --- Single character ESC ---
osc_buffer[osc_bi++] = '\0';
apars_handle_OSC_SetTitle(osc_buffer);
fgoto main;
}
action OSC_button {
osc_buffer[osc_bi++] = '\0';
apars_handle_OSC_SetButton(csi_n[0], osc_buffer);
fgoto main;
}
# 0; is xterm title hack
OSC_body := (
("BTN" digit @CSI_digit '=' (NOESC @OSC_text_char)* OSC_END @OSC_button) |
("TITLE=" @SetTitle_start) |
("0;" (NOESC @OSC_text_char)* OSC_END @OSC_title) |
('W' (digit @CSI_digit)+ ';' @CSI_semi (digit @CSI_digit)+ OSC_END @OSC_resize)
) $!errBadSeq;
TITLE_body := (NOESC @OSC_text_char)* OSC_END @OSC_title $!errBadSeq;
action RESET_cmd {
// Reset screen
apars_handle_RESET_cmd();
fgoto main;
}
action CSI_SaveCursorAttrs {
apars_handle_saveCursorAttrs();
fgoto main;
}
action CSI_RestoreCursorAttrs {
apars_handle_restoreCursorAttrs();
fgoto main;
}
action HASH_code { action HASH_code {
apars_handle_hashCode(fc); apars_handle_hash_cmd(fc);
fgoto main; fgoto main;
} }
action SHORT_code { action SHORT_code {
apars_handle_shortCode(fc); apars_handle_short_cmd(fc);
fgoto main; fgoto main;
} }
action SetXCtrls { action SPACE_cmd {
apars_handle_setXCtrls(fc); apars_handle_space_cmd(fc);
fgoto main; fgoto main;
} }
# --- Charset selection ---
action CharsetCmd_start { action CharsetCmd_start {
// abuse the buffer for storing the leading char leadchar = fc;
osc_buffer[0] = fc;
fgoto charsetcmd_body; fgoto charsetcmd_body;
} }
action CharsetCmd_end { action CharsetCmd_end {
apars_handle_characterSet(osc_buffer[0], fc); apars_handle_chs_designate(leadchar, fc);
fgoto main; fgoto main;
} }
charsetcmd_body := (any @CharsetCmd_end) $!errBadSeq; charsetcmd_body := (NOESC @CharsetCmd_end) $!errBadSeq;
# --- Main parser loop --- # --- Main parser loop ---
@@ -281,12 +302,11 @@ ansi_parser(const char *newdata, size_t len)
( (
(NOESC @plain_char)* ESC ( (NOESC @plain_char)* ESC (
('[' @CSI_start) | ('[' @CSI_start) |
(']' @OSC_start) | ([_\]Pk\^X] @StrCmd_start) |
('#' digit @HASH_code) | ('#' digit @HASH_code) |
('k' @SetTitle_start) | (([a-zA-Z0-9=<>~}|@\\] - [PXk]) @SHORT_code) |
([a-jl-zA-Z0-9=<>] @SHORT_code) | ([()*+-./%] @CharsetCmd_start) |
([()*+-./] @CharsetCmd_start) | (' ' [FGLMN] @SPACE_cmd)
(' ' [FG] @SetXCtrls)
) )
)+ $!errBadSeq; )+ $!errBadSeq;
@@ -294,5 +314,3 @@ ansi_parser(const char *newdata, size_t len)
#*/ #*/
}%% }%%
} }
// 'ESC k blah OSC_end' is a shortcut for setting title (k is defined in GNU screen as Title Definition String)
+18 -465
View File
@@ -5,492 +5,45 @@
*/ */
#include <esp8266.h> #include <esp8266.h>
#include <helpers.h>
#include "ansi_parser_callbacks.h" #include "ansi_parser_callbacks.h"
#include "screen.h"
#include "ansi_parser.h"
#include "uart_driver.h" #include "uart_driver.h"
#include "cgi_sockets.h"
// screen manpage - https://www.gnu.org/software/screen/manual/html_node/Control-Sequences.html #include "version.h"
#include "uart_buffer.h"
static char utf_collect[4];
static int utf_i = 0;
static int utf_j = 0;
/** /**
* Handle a received plain character * Send a response to UART0
* @param str
*/ */
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
apars_handle_plainchar(char c) apars_respond(const char *str)
{ {
if (c == 7) return; // BELL - beep (TODO play beep in browser) UART_SendAsync(str, -1);
//UART_WriteString(UART0, str, UART_TIMEOUT_US);
// collecting unicode glyphs...
if (c & 0x80) {
if (utf_i == 0) {
// start
if (c == 192 || c == 193 || c >= 245) {
// forbidden codes
goto fail;
}
if ((c & 0xE0) == 0xC0) {
utf_i = 2;
}
else if ((c & 0xF0) == 0xE0) {
utf_i = 3;
}
else if ((c & 0xF8) == 0xF0) {
utf_i = 4;
}
else {
// chars over 127 that don't start unicode sequences
goto fail;
}
utf_collect[0] = c;
utf_j = 1;
}
else {
if ((c & 0xC0) != 0x80) {
goto fail;
}
else {
utf_collect[utf_j++] = c;
if (utf_j >= utf_i) {
screen_putchar(utf_collect);
apars_reset_utf8buffer();
}
}
}
}
else {
if (c == 14) {
screen_set_charset_n(1);
return;
}
if (c == 15) {
screen_set_charset_n(0);
return;
}
utf_collect[0] = c;
utf_collect[1] = 0; // just to make sure it's closed...
screen_putchar(utf_collect);
}
return;
fail:
ansi_warn("Bad UTF-8");
apars_reset_utf8buffer();
}
void ICACHE_FLASH_ATTR
apars_reset_utf8buffer(void)
{
utf_i = 0;
utf_j = 0;
memset(utf_collect, 0, 4);
}
void ICACHE_FLASH_ATTR
apars_handle_characterSet(char leadchar, char c)
{
if (leadchar == '(') screen_set_charset(0, c);
else if (leadchar == ')') screen_set_charset(1, c);
}
void ICACHE_FLASH_ATTR
apars_handle_setXCtrls(char c)
{
// this does not seem to do anything, sent by some unix programs
// ansi_warn("NOIMPL Select %cbit ctrls", c=='F'? '7':'8');
} }
/** /**
* \brief Handle fully received CSI ANSI sequence * Beep at the user.
* \param leadchar - private range leading character, 0 if none
* \param params - array of CSI_N_MAX ints holding the numeric arguments
* \param keychar - the char terminating the sequence
*/ */
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
apars_handle_CSI(char leadchar, int *params, int count, char keychar) apars_handle_bel(void)
{ {
int n1 = params[0]; send_beep();
int n2 = params[1];
int n3 = params[2];
static char buf[20];
// defaults
switch (keychar) {
case 'A': // move
case 'B':
case 'C':
case 'D':
case 'E':
case 'F':
case 'G': // set X
case '`':
case 'S': // scrolling
case 'T':
case 'X': // clear in line
case 'd': // set Y
case 'L':
case 'M':
case '@':
case 'P':
if (n1 == 0) n1 = 1;
break;
case 'H':
case 'f':
if (n1 == 0) n1 = 1;
if (n2 == 0) n2 = 1;
break;
case 'J':
case 'K':
if (n1 > 2) n1 = 0;
break;
}
switch (keychar) {
// CUU CUD CUF CUB
case 'A': screen_cursor_move(-n1, 0, false); break;
case 'B': screen_cursor_move(n1, 0, false); break;
case 'C': screen_cursor_move(0, n1, false); break;
case 'D': screen_cursor_move(0, -n1, false); break;
case 'E': // CNL - Cursor Next Line
screen_cursor_move(n1, 0, false);
screen_cursor_set_x(0);
break;
case 'F': // CPL - Cursor Prev Line
screen_cursor_move(-n1, 0, false);
screen_cursor_set_x(0);
break;
// Set X
case 'G':
case '`': // alternate code
screen_cursor_set_x(n1 - 1);
break; // 1-based
// Set Y
case 'd':
screen_cursor_set_y(n1 - 1);
break; // 1-based
// clear in line
case 'X':
screen_clear_in_line(n1);
break; // 1-based
// SU, SD - scroll up/down
case 'S': screen_scroll_up(n1); break;
case 'T': screen_scroll_down(n1); break;
// CUP,HVP - set position
case 'H':
case 'f':
screen_cursor_set(n1-1, n2-1);
break; // 1-based
case 'J': // ED - clear screen
if (n1 == 0) {
screen_clear(CLEAR_FROM_CURSOR);
} else if (n1 == 1) {
screen_clear(CLEAR_TO_CURSOR);
} else {
screen_clear(CLEAR_ALL);
screen_cursor_set(0, 0);
}
break;
case 'K': // EL - clear line
if (n1 == 0) {
screen_clear_line(CLEAR_FROM_CURSOR);
} else if (n1 == 1) {
screen_clear_line(CLEAR_TO_CURSOR);
} else {
screen_clear_line(CLEAR_ALL);
}
break;
// SCP, RCP - save/restore position
case 's': screen_cursor_save(0); break;
case 'u': screen_cursor_restore(0); break;
case 'n': // queries
if (n1 == 6) {
// Query cursor position
char buf[20];
int x, y;
screen_cursor_get(&y, &x);
sprintf(buf, "\033[%d;%dR", y+1, x+1);
UART_WriteString(UART0, buf, UART_TIMEOUT_US);
}
else if (n1 == 5) {
// Query device status - reply "Device is OK"
UART_WriteString(UART0, "\033[0n", UART_TIMEOUT_US);
}
else {
ansi_warn("NOIMPL query %d", n1);
}
break;
// DECTCEM feature enable / disable
case 'h': // feature enable
if (leadchar == '?') {
if (n1 == 25) screen_cursor_enable(1);
else if (n1 == 7) screen_wrap_enable(1);
else if (n1 == 1) {
// TODO something with arrow keys??
}
else {
ansi_warn("NOIMPL DEC opt %d", n1);
}
}
else {
if (n1 == 4) {
// TODO insert mode, i think this is to suppress user input
}
else {
ansi_warn("NOIMPL flag %d", n1);
}
}
break;
case 'l': // feature disable
if (leadchar == '?') {
if (n1 == 25) screen_cursor_enable(0);
else if (n1 == 7) screen_wrap_enable(0);
else if (n1 == 1) {
// TODO see above
}
else {
ansi_warn("NOIMPL DEC opt %d", n1);
}
}
else {
if (n1 == 4) {
// TODO see above
}
else {
ansi_warn("NOIMPL flag %d", n1);
}
}
break;
case 'm': // SGR - graphics rendition aka attributes
if (count == 0) {
count = 1; // this makes it work as 0 (reset)
}
// iterate arguments
for (int i = 0; i < count; i++) {
int n = params[i];
if (n == 0) { // reset SGR
screen_reset_cursor(); // resets colors, inverse and bold.
}
else if (n >= 30 && n <= 37) screen_set_fg((Color) (n - 30)); // ANSI normal fg
else if (n >= 40 && n <= 47) screen_set_bg((Color) (n - 40)); // ANSI normal bg
else if (n == 39) screen_set_fg(termconf_scratch.default_fg); // default fg
else if (n == 49) screen_set_bg(termconf_scratch.default_bg); // default bg
else if (n == 1) screen_attr_enable(ATTR_BOLD);
else if (n == 2) screen_attr_enable(ATTR_FAINT);
else if (n == 3) screen_attr_enable(ATTR_ITALIC);
else if (n == 4) screen_attr_enable(ATTR_UNDERLINE);
else if (n == 5 || n == 6) screen_attr_enable(ATTR_BLINK); // 6 - rapid blink, not supported
else if (n == 7) screen_inverse_enable(true);
else if (n == 9) screen_attr_enable(ATTR_STRIKE);
else if (n == 20) screen_attr_enable(ATTR_FRAKTUR);
else if (n == 21) screen_attr_disable(ATTR_BOLD);
else if (n == 22) screen_attr_disable(ATTR_FAINT);
else if (n == 23) screen_attr_disable(ATTR_ITALIC|ATTR_FRAKTUR);
else if (n == 24) screen_attr_disable(ATTR_UNDERLINE);
else if (n == 25) screen_attr_disable(ATTR_BLINK);
else if (n == 27) screen_inverse_enable(false);
else if (n == 29) screen_attr_disable(ATTR_STRIKE);
else if (n >= 90 && n <= 97) screen_set_fg((Color) (n - 90 + 8)); // AIX bright fg
else if (n >= 100 && n <= 107) screen_set_bg((Color) (n - 100 + 8)); // AIX bright bg
else {
ansi_warn("NOIMPL SGR attr %d", n);
}
}
break;
case 't': // xterm hacks
switch(n1) {
case 8: // set size
screen_resize(n2, n3);
break;
case 18: // report size
printf(buf, "\033[8;%d;%dt", termconf_scratch.height, termconf_scratch.width);
UART_WriteString(UART0, buf, UART_TIMEOUT_US);
break;
case 11: // Report iconified -> is not iconified
UART_WriteString(UART0, "\033[1t", UART_TIMEOUT_US);
break;
case 21: // Report title
UART_WriteString(UART0, "\033]L", UART_TIMEOUT_US);
UART_WriteString(UART0, termconf_scratch.title, UART_TIMEOUT_US);
UART_WriteString(UART0, "\033\\", UART_TIMEOUT_US);
break;
case 24: // Set Height only
screen_resize(n2, termconf_scratch.width);
break;
}
break;
case 'L':
screen_insert_lines(n1);
break;
case 'M':
screen_delete_lines(n1);
break;
case '@':
screen_insert_characters(n1);
break;
case 'P':
screen_delete_characters(n1);
break;
case 'r':
// TODO scrolling region
// ansi_warn("NOIMPL scrolling region");
break;
case 'g':
// TODO clear tab
ansi_warn("NOIMPL clear tab");
break;
case 'Z':
// TODO back tab
ansi_warn("NOIMPL cursor back tab");
break;
case 'q':
// TODO setmode (??)
ansi_warn("NOIMPL CSI setmode %d", n1);
break;
case 'p':
if (leadchar == '!') {
info("SOFT RESET!");
system_restart();
}
break;
case 'c':
// report capabilities (pretend we're vt4xx)
UART_WriteString(UART0, "\033[?64;22;c", UART_TIMEOUT_US);
break;
default:
ansi_warn("Unknown CSI: %c", keychar);
apars_handle_badseq();
}
}
/** codes in the format ESC # n */
void ICACHE_FLASH_ATTR apars_handle_hashCode(char c)
{
switch(c) {
case '8':
screen_fill_with_E();
break;
default:
ansi_warn("Unknown # sequence: %c", c);
}
}
/** those are single-character escape codes (ESC x) */
void ICACHE_FLASH_ATTR apars_handle_shortCode(char c)
{
switch(c) {
case 'c': // screen reset
screen_reset();
break;
case '7': // save cursor + attrs
screen_cursor_save(true);
break;
case '8': // restore cursor + attrs
screen_cursor_restore(true);
break;
case 'E': // same as CR LF
screen_cursor_move(1, 0, false);
screen_cursor_set_x(0);
break;
case 'D': // move cursor down, scroll screen up if needed
screen_cursor_move(1, 0, true);
break;
case 'M': // move cursor up, scroll screen down if needed
screen_cursor_move(-1, 0, true);
break;
case 'H':
// TODO set tab
// ansi_warn("NOIMPL set tab");
break;
// TODO those don't seem to do anything
case '>':
// ansi_warn("NOIMPL NUMKP");
break;
case '<':
// ansi_warn("NOIMPL SETANSI");
break;
case '=':
// ansi_warn("NOIMPL ALTKP");
break;
default:
ansi_warn("Unknown 1-char seq %c", c);
}
} }
/** /**
* Handle a screen resize request * Send to uart the answerback message
*/ */
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
apars_handle_OSC_SetScreenSize(int rows, int cols) apars_handle_enq(void)
{ {
info("OSC: Set screen size to %d x %d", rows, cols); // version encased in SOS and ST
apars_respond("\x1bXESPTerm " FIRMWARE_VERSION "\x1b\\");
screen_resize(rows, cols);
}
void ICACHE_FLASH_ATTR
apars_handle_OSC_SetButton(int num, const char *buffer)
{
strncpy(termconf_scratch.btn[num-1], buffer, TERM_BTN_LEN);
info("OSC: Set BTN%d = %s", num, buffer);
screen_notifyChange(CHANGE_LABELS);
} }
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
apars_handle_OSC_SetTitle(const char *buffer) apars_handle_tab(void)
{ {
strncpy(termconf_scratch.title, buffer, TERM_TITLE_LEN); screen_tab_forward(1);
info("OSC: Set TITLE = %s", buffer);
screen_notifyChange(CHANGE_LABELS);
} }
+14 -10
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@@ -1,15 +1,19 @@
#ifndef ANSI_PARSER_CALLBACKS_H #ifndef ANSI_PARSER_CALLBACKS_H
#define ANSI_PARSER_CALLBACKS_H #define ANSI_PARSER_CALLBACKS_H
void apars_handle_plainchar(char c); #include "apars_csi.h"
void apars_handle_CSI(char leadchar, int *params, int count, char keychar); #include "apars_dcs.h"
void apars_handle_OSC_SetScreenSize(int rows, int cols); #include "apars_osc.h"
void apars_handle_OSC_SetButton(int num, const char *buffer); #include "apars_string.h"
void apars_handle_OSC_SetTitle(const char *buffer); #include "apars_short.h"
void apars_handle_shortCode(char c); #include "apars_utf8.h"
void apars_handle_hashCode(char c);
void apars_handle_characterSet(char leadchar, char c); void apars_respond(const char *str);
void apars_handle_setXCtrls(char c);
void apars_reset_utf8buffer(void); void apars_handle_bel(void);
void apars_handle_enq(void);
void apars_handle_tab(void);
extern void apars_show_context(void);
#endif //ESP_VT100_FIRMWARE_ANSI_PARSER_CALLBACKS_H #endif //ESP_VT100_FIRMWARE_ANSI_PARSER_CALLBACKS_H
+681
View File
@@ -0,0 +1,681 @@
//
// Created by MightyPork on 2017/08/20.
//
// Handle CSI sequences
// CSI <symbol?> Pm <symbol?> <char>
// (CSI = ESC [)
//
// Example of those are cursor manipulation sequences and SGR.
//
// For details, see:
// http://invisible-island.net/xterm/ctlseqs/ctlseqs.html#h2-Functions-using-CSI-_-ordered-by-the-final-character_s_
//
// Note:
// not all sequences listed in the xterm manual are implemented, notably sequences with the trailing symbol,
// graphic mode sequences, mouse reporting and complex multi-argument sequences that operate on regions.
//
// The screen size can be set using the xterm sequence: CSI Py ; Px t
//
#include <esp8266.h>
#include "apars_csi.h"
#include "screen.h"
#include "apars_logging.h"
#include "ansi_parser.h"
#include "ascii.h"
#include "ansi_parser_callbacks.h"
#include "uart_driver.h"
#include "sgr.h"
#include "version.h"
#include "syscfg.h"
// TODO simplify file - split to subroutines
static void warn_bad_csi()
{
ansi_noimpl_r("Unknown CSI");
apars_show_context();
}
typedef struct {
char lead;
const int *n;
int count;
char aug; // augmenting
char key;
} CSI_Data;
static void do_csi_privattr(CSI_Data *opts);
static void do_csi_sgr(CSI_Data *opts);
static void do_csi_decreqtparm(CSI_Data *opts);
/**
* Handle fully received CSI ANSI sequence
* @param leadchar - private range leading character, 0 if none
* @param params - array of CSI_N_MAX ints holding the numeric arguments
* @param keychar - the char terminating the sequence
*/
void ICACHE_FLASH_ATTR
apars_handle_csi(char leadchar, const int *params, int count, char keychar)
{
CSI_Data opts = {leadchar, params, count, NUL, keychar};
char buf[32];
bool yn = false; // for ? l h
int n1 = params[0];
int n2 = params[1];
int n3 = params[2];
// defaults - FIXME this may inadvertently affect some variants that should be left unchanged
switch (keychar) {
case 'A': // move
case 'a':
case 'e':
case 'B':
case 'C':
case 'D':
case 'b':
case 'E':
case 'F':
case 'G': // set X
case '`':
case 'S': // scrolling
case 'T':
case 'X': // clear in line
case 'd': // set Y
case 'L':
case 'M':
case '@':
case 'P':
case 'I':
case 'Z':
if (n1 == 0) n1 = 1;
break;
case 'H':
case 'f':
if (n1 == 0) n1 = 1;
if (n2 == 0) n2 = 1;
break;
case 'J':
case 'K':
if (n1 > 2) n1 = 0;
break;
default:
// leave as is
break;
}
switch (keychar) {
// CUU CUD CUF CUB
case 'A': // Up
screen_cursor_move(-n1, 0, false);
break;
case 'e':
case 'B': // Down
screen_cursor_move(n1, 0, false);
break;
case 'a': // some archaic form of "Go Right"
case 'C': // Right (forward)
screen_cursor_move(0, n1, false);
break;
case 'D': // Left (backward)
screen_cursor_move(0, -n1, false);
break;
case 'E': // CNL - Cursor Next Line
screen_cursor_move(n1, 0, false);
screen_cursor_set_x(0);
break;
case 'F': // CPL - Cursor Prev Line
screen_cursor_move(-n1, 0, false);
screen_cursor_set_x(0);
break;
case 'b':
// TODO repeat preceding graphic character n1 times
ansi_noimpl("Repeat char");
return;
// Set X
case 'G':
case '`': // alternate code
screen_cursor_set_x(n1 - 1);
break; // 1-based
// Set Y
case 'd':
screen_cursor_set_y(n1 - 1);
break; // 1-based
// Clear in line
case 'X':
screen_clear_in_line(n1);
break; // 1-based
// SU, SD - scroll up/down
case 'S':
if (leadchar == NUL && count <= 1) {
screen_scroll_up(n1);
}
else {
// other:
// CSI ? Pi; Pa; Pv S (sixel)
warn_bad_csi();
}
break;
case 'T':
if (leadchar == NUL && count <= 1) {
// CSI Ps T
screen_scroll_down(n1);
}
else {
// other:
// CSI Ps ; Ps ; Ps ; Ps ; Ps T
// CSI > Ps; Ps T
warn_bad_csi();
}
break;
case 't': // xterm window commands
if (leadchar == NUL && count <= 2) {
// CSI Ps ; Ps ; Ps t
switch (n1) {
case 8: // set size
screen_resize(n2, n3);
break;
case 18: // report size
printf(buf, "\033[8;%d;%dt", termconf_scratch.height, termconf_scratch.width);
apars_respond(buf);
break;
case 21: // Report title
apars_respond("\033]L");
apars_respond(termconf_scratch.title);
apars_respond("\033\\");
break;
case 24: // Set Height only
screen_resize(n2, termconf_scratch.width);
break;
default:
ansi_noimpl("CSI %d t", n1);
break;
}
}
else {
// other:
// CSI > Ps; Ps t
// CSI Ps SP t,
warn_bad_csi();
}
break;
// CUP,HVP - set position
case 'H':
case 'f':
screen_cursor_set(n1-1, n2-1);
break; // 1-based
case 'J': // Erase screen
if (leadchar == '?') {
// TODO selective erase
ansi_noimpl("Selective erase");
}
if (n1 == 0) {
screen_clear(CLEAR_FROM_CURSOR);
} else if (n1 == 1) {
screen_clear(CLEAR_TO_CURSOR);
} else {
screen_clear(CLEAR_ALL);
screen_cursor_set(0, 0);
}
break;
case 'K': // Erase lines
if (leadchar == '?') {
// TODO selective erase
ansi_noimpl("Selective erase");
}
if (n1 == 0) {
screen_clear_line(CLEAR_FROM_CURSOR);
} else if (n1 == 1) {
screen_clear_line(CLEAR_TO_CURSOR);
} else {
screen_clear_line(CLEAR_ALL);
}
break;
// SCP, RCP - save/restore position
case 's':
if (leadchar == NUL && count == 0) {
screen_cursor_save(0);
}
else if (leadchar == '?') {
// Save private attributes (CSI ? Pm h/l)
ansi_noimpl("Save private attrs");
}
else {
// other:
// CSI ? Pm s
// CSI Pl; Pr s
warn_bad_csi();
}
break;
case 'r':
if (leadchar == NUL && (count == 2 || count == 0)) {
screen_set_scrolling_region(n1-1, n2-1);
}
else if (leadchar == '?') {
// Restore private attributes (CSI ? Pm h/l)
ansi_noimpl("Restore private attrs");
}
else {
// other:
// CSI ? Pm r
// CSI Pt; Pl; Pb; Pr; Ps$ r
warn_bad_csi();
}
break;
case 'u':
if (leadchar == NUL && count == 0) {
screen_cursor_restore(0);
}
else {
warn_bad_csi();
}
break;
case 'h': // DEC feature enable
case 'l': // DEC feature disable
do_csi_privattr(&opts);
break;
case 'm': // SGR - set graphics rendition
do_csi_sgr(&opts);
break;
case 'L': // Insert lines (shove down)
screen_insert_lines(n1);
break;
case 'M': // Delete lines (pull up)
screen_delete_lines(n1);
break;
case '@': // Insert in line (shove right)
screen_insert_characters(n1);
break;
case 'P': // Delete in line (pull left)
screen_delete_characters(n1);
break;
case 'g': // Clear tabs
if (n1 == 3) {
screen_clear_all_tabs();
}
else if (n1 == 0) {
screen_clear_tab();
}
break;
case 'Z': // Tab backward
screen_tab_reverse(n1);
break;
case 'I': // Tab forward
screen_tab_forward(n1);
break;
case 'p':
if (leadchar == '!') { // RIS
/* On real VT there are differences between soft and hard reset, we treat both equally */
screen_reset();
}
else {
warn_bad_csi();
}
break;
case 'n': // Queries
if (leadchar == '>') {
// some xterm garbage - discard
// CSI > Ps n
ansi_noimpl("CSI > %d n", n1);
break;
}
if (leadchar == NUL) {
if (n1 == 6) {
// Query cursor position
int x, y;
screen_cursor_get(&y, &x);
sprintf(buf, "\033[%d;%dR", y + 1, x + 1);
apars_respond(buf);
}
else if (n1 == 5) {
// Query device status - reply "Device is OK"
apars_respond("\033[0n");
}
else {
warn_bad_csi();
}
}
else {
warn_bad_csi();
}
break;
case 'c': // CSI-c - report capabilities
if (leadchar == NUL) {
apars_respond("\033[?64;9c"); // pretend we're vt400 with national character sets
}
else if (leadchar == '>') {
// 41 - we're "VT400", 0 - ROM cartridge number
sprintf(buf, "\033[>41;%d;0c", FIRMWARE_VERSION_NUM);
apars_respond(buf);
}
else {
warn_bad_csi();
}
break;
case 'x': // DECREQTPARM -> DECREPTPARM
do_csi_decreqtparm(&opts);
break;
default:
warn_bad_csi();
}
}
/**
* CSI [?] Pm {h|l}
* @param opts
*/
static void ICACHE_FLASH_ATTR do_csi_privattr(CSI_Data *opts)
{
bool yn = (opts->key == 'h');
if (opts->lead == '?') {
// --- DEC private attributes ---
for (int i = 0; i < opts->count; i++) {
int n = opts->n[i];
if (n == 1) {
screen_set_cursors_alt_mode(yn);
}
else if (n == 2) {
// should reset all Gx to USASCII and reset to VT100 (which we use always)
screen_set_charset(0, 'B');
screen_set_charset(1, 'B');
}
else if (n == 3) {
// DECCOLM 132 column mode - not implemented due to RAM demands
ansi_noimpl("132col");
// DECCOLM side effects as per
// https://www.chiark.greenend.org.uk/~sgtatham/putty/wishlist/deccolm-cls.html
screen_clear(CLEAR_ALL);
screen_set_scrolling_region(0, 0);
screen_cursor_set(0, 0);
}
else if (n == 4) {
// Smooth scroll - not implemented
}
else if (n == 5) {
screen_set_reverse_video(yn);
}
else if (n == 6) {
screen_set_origin_mode(yn);
}
else if (n == 7) {
screen_wrap_enable(yn);
}
else if (n == 8) {
// Key auto-repeat
// We don't implement this currently, but it could be added
// - discard repeated keypress events between keydown and keyup.
ansi_noimpl("Auto-repeat toggle");
}
else if (n == 9 || (n >= 1000 && n <= 1006) || n == 1015) {
// 9 - X10 tracking
// 1000 - X11 mouse - Send Mouse X & Y on button press and release.
// 1001 - Hilite mouse tracking - not impl
// 1002 - Cell Motion Mouse Tracking
// 1003 - All Motion Mouse Tracking
// 1004 - Send FocusIn/FocusOut events
// 1005 - Enable UTF-8 Mouse Mode - we implement this as an alias to X10 mode
// 1006 - SGR mouse mode
if (n == 9) mouse_tracking.mode = yn ? MTM_X10 : MTM_NONE;
else if (n == 1000) mouse_tracking.mode = yn ? MTM_NORMAL : MTM_NONE;
else if (n == 1002) mouse_tracking.mode = yn ? MTM_BUTTON_MOTION : MTM_NONE;
else if (n == 1003) mouse_tracking.mode = yn ? MTM_ANY_MOTION : MTM_NONE;
else if (n == 1004) mouse_tracking.focus_tracking = yn;
else if (n == 1005) mouse_tracking.encoding = yn ? MTE_UTF8 : MTE_SIMPLE;
else if (n == 1006) mouse_tracking.encoding = yn ? MTE_SGR : MTE_SIMPLE;
else if (n == 1015) mouse_tracking.encoding = yn ? MTE_URXVT : MTE_SIMPLE;
}
else if (n == 12) {
// TODO Cursor blink on/off
ansi_noimpl("Cursor blink toggle");
}
else if (n == 40) {
// allow/disallow 80->132 mode
// not implemented because of RAM demands
ansi_noimpl("132col enable");
}
else if (n == 45) {
// reverse wrap-around
ansi_noimpl("Reverse Wraparound");
}
else if (n == 69) {
// horizontal margins
ansi_noimpl("Left/right margin");
}
else if (n == 47 || n == 1047) {
// Switch to/from alternate screen
// - not implemented fully due to RAM demands
screen_swap_state(yn);
}
else if (n == 1048) {
// same as DECSC - save/restore cursor with attributes
if (yn) {
screen_cursor_save(true);
}
else {
screen_cursor_restore(true);
}
}
else if (n == 1049) {
// save/restore cursor and screen and clear it
if (yn) {
screen_cursor_save(true);
screen_swap_state(true); // this should save the screen - can't because of RAM size
screen_clear(CLEAR_ALL);
}
else {
screen_clear(CLEAR_ALL);
screen_swap_state(false); // this should restore the screen - can't because of RAM size
screen_cursor_restore(true);
}
}
else if (n >= 1050 && n <= 1053) {
// TODO Different kinds of function key emulation ?
// (In practice this seems hardly ever used)
// Ps = 1 0 5 0 -> Set terminfo/termcap function-key mode.
// Ps = 1 0 5 1 -> Set Sun function-key mode.
// Ps = 1 0 5 2 -> Set HP function-key mode.
// Ps = 1 0 5 3 -> Set SCO function-key mode.
ansi_noimpl("FN key emul type");
}
else if (n == 2004) {
// Bracketed paste mode
// Discard, we don't implement this
}
else if (n == 25) {
screen_set_cursor_visible(yn);
}
else {
ansi_noimpl("CSI ? %d %c", n, opts->key);
}
}
}
else {
// --- DEC standard attributes ---
for (int i = 0; i < opts->count; i++) {
int n = opts->n[i];
if (n == 4) {
screen_set_insert_mode(yn);
}
else if (n == 20) {
screen_set_newline_mode(yn);
}
else {
ansi_noimpl("CSI %d %c", n, opts->key);
}
}
}
}
/**
* CSI [ Pm m
* @param opts
*/
static void ICACHE_FLASH_ATTR do_csi_sgr(CSI_Data *opts)
{
int count = opts->count;
if (count == 0) {
count = 1; // this makes it work as 0 (reset)
}
if (opts->lead != NUL) {
// some xterm garbage - discard
// CSI > Ps; Ps m
return;
}
// iterate arguments
for (int i = 0; i < count; i++) {
int n = opts->n[i];
if (n == SGR_RESET) screen_reset_sgr();
// -- set color --
else if (n >= SGR_FG_START && n <= SGR_FG_END) screen_set_fg((Color) (n - SGR_FG_START)); // ANSI normal fg
else if (n >= SGR_BG_START && n <= SGR_BG_END) screen_set_bg((Color) (n - SGR_BG_START)); // ANSI normal bg
else if (n == SGR_FG_DEFAULT) screen_set_fg(termconf_scratch.default_fg); // default fg
else if (n == SGR_BG_DEFAULT) screen_set_bg(termconf_scratch.default_bg); // default bg
// -- set attr --
else if (n == SGR_BOLD) screen_set_sgr(ATTR_BOLD, 1);
else if (n == SGR_FAINT) screen_set_sgr(ATTR_FAINT, 1);
else if (n == SGR_ITALIC) screen_set_sgr(ATTR_ITALIC, 1);
else if (n == SGR_UNDERLINE) screen_set_sgr(ATTR_UNDERLINE, 1);
else if (n == SGR_BLINK || n == SGR_BLINK_FAST) screen_set_sgr(ATTR_BLINK, 1); // 6 - rapid blink, not supported
else if (n == SGR_STRIKE) screen_set_sgr(ATTR_STRIKE, 1);
else if (n == SGR_FRAKTUR) screen_set_sgr(ATTR_FRAKTUR, 1);
else if (n == SGR_INVERSE) screen_set_sgr_inverse(1);
// -- clear attr --
else if (n == SGR_OFF(SGR_BOLD)) screen_set_sgr(ATTR_BOLD, 0); // can also mean "Double Underline"
else if (n == SGR_OFF(SGR_FAINT)) screen_set_sgr(ATTR_FAINT | ATTR_BOLD, 0); // "normal"
else if (n == SGR_OFF(SGR_ITALIC)) screen_set_sgr(ATTR_ITALIC | ATTR_FRAKTUR, 0); // there is no dedicated OFF code for Fraktur
else if (n == SGR_OFF(SGR_UNDERLINE)) screen_set_sgr(ATTR_UNDERLINE, 0);
else if (n == SGR_OFF(SGR_BLINK)) screen_set_sgr(ATTR_BLINK, 0);
else if (n == SGR_OFF(SGR_STRIKE)) screen_set_sgr(ATTR_STRIKE, 0);
else if (n == SGR_OFF(SGR_INVERSE)) screen_set_sgr_inverse(0);
// -- AIX bright colors --
else if (n >= SGR_FG_BRT_START && n <= SGR_FG_BRT_END) screen_set_fg((Color) ((n - SGR_FG_BRT_START) + 8)); // AIX bright fg
else if (n >= SGR_BG_BRT_START && n <= SGR_BG_BRT_END) screen_set_bg((Color) ((n - SGR_BG_BRT_START) + 8)); // AIX bright bg
else {
ansi_noimpl("SGR %d", n);
}
}
}
// data tables for the DECREPTPARM command response
struct DECREPTPARM_parity { int parity; const char * msg; };
static const struct DECREPTPARM_parity DECREPTPARM_parity_arr[] = {
{PARITY_NONE, "1"},
{PARITY_ODD, "4"},
{PARITY_EVEN, "5"},
{-1, 0}
};
struct DECREPTPARM_baud { int baud; const char * msg; };
static const struct DECREPTPARM_baud DECREPTPARM_baud_arr[] = {
{BIT_RATE_300, "48"},
{BIT_RATE_600, "56"},
{BIT_RATE_1200, "64"},
{BIT_RATE_2400, "88"},
{BIT_RATE_4800, "96"},
{BIT_RATE_9600 , "104"},
{BIT_RATE_19200 , "112"},
{BIT_RATE_38400 , "120"},
{BIT_RATE_57600 , "128"}, // this is the last in the spec, follow +8
{BIT_RATE_74880 , "136"},
{BIT_RATE_115200, "144"},
{BIT_RATE_230400, "152"},
{BIT_RATE_460800, "160"},
{BIT_RATE_921600, "168"},
{BIT_RATE_1843200, "176"},
{BIT_RATE_3686400, "184"},
{-1, 0}
};
/**
* CSI [ Ps x
* @param opts
*/
static void ICACHE_FLASH_ATTR do_csi_decreqtparm(CSI_Data *opts)
{
const int n1 = opts->n[0];
// reference http://vt100.net/docs/vt100-ug/chapter3.html - search DECREPTPARM
if (n1 <= 1) {
apars_respond("\033["); // this is a response on request (2 would be gratuitous)
apars_respond(n1 == 0 ? "2;" : "3;");
// Parity
for(const struct DECREPTPARM_parity *p = DECREPTPARM_parity_arr; p->parity != -1; p++) {
if (p->parity == sysconf->uart_parity) {
apars_respond(p->msg);
break;
}
}
// bits per character (uart byte) - 1 = 8, 2 = 7
apars_respond(";1;");
// Baud rate
for(const struct DECREPTPARM_baud *p = DECREPTPARM_baud_arr; p->baud != -1; p++) {
if (p->baud == sysconf->uart_baudrate) {
apars_respond(p->msg);
apars_respond(";");
apars_respond(p->msg);
break;
}
}
// multiplier 1, flags 0
apars_respond(";1;0x"); // ROM cartridge number ??
}
}
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//
// Created by MightyPork on 2017/08/20.
//
#ifndef ESP_VT100_FIRMWARE_APARS_CSI_H
#define ESP_VT100_FIRMWARE_APARS_CSI_H
void apars_handle_csi(char leadchar, const int *params, int count, char keychar);
#endif //ESP_VT100_FIRMWARE_APARS_CSI_H
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//
// Created by MightyPork on 2017/08/20.
//
// Handle DCS sequences (Device Control String)
// DCS Pt ST
// (DCS = ESC P)
//
// Those are used for terminal status queries.
//
// Pt =
// $ q " p .... read conformance level
// $ q " q .... read character protection attribute
// $ q r ...... read scrolling region extents
// $ q s ...... read horizontal margins extents
// $ q m ...... read SGR in a format that would restore them exactly when run as a CSI Pm m
// $ q SP q ... read cursor style
//
// For details, see
// http://invisible-island.net/xterm/ctlseqs/ctlseqs.html#h2-Device-Control-functions
//
#include <esp8266.h>
#include "apars_dcs.h"
#include "ansi_parser_callbacks.h"
#include "screen.h"
#include "apars_logging.h"
/**
* Helper function to parse incoming DCS (Device Control String)
* @param buffer - the DCS body (after DCS and before ST)
*/
void ICACHE_FLASH_ATTR
apars_handle_dcs(const char *buffer)
{
char buf[64]; // just about big enough for full-house SGR
size_t len = strlen(buffer);
if ((len == 3 || len == 4) && strneq(buffer, "$q", 2)) {
// DECRQSS - Request Status String
if (strneq(buffer+2, "\"p", 2)) {
// DECSCL - Select Conformance Level
apars_respond("\033P1$r64;1\"p\033\\"); // 64;1 - Pretend we are VT400 with 7-bit characters
}
else if (strneq(buffer+2, "\"q", 2)) {
// DECSCA - Select character protection attribute
sprintf(buf, "\033P1$r%d\"q\033\\", 0); // 0 - Can erase - TODO real protection status if implemented
apars_respond(buf);
}
else if (buffer[2] == 'r') {
// DECSTBM - Query scrolling region
sprintf(buf, "\033P1$r%d;%dr\033\\", 1, termconf_scratch.height); // 1-80 TODO real extent of scrolling region
apars_respond(buf);
}
else if (buffer[2] == 's') {
// DECSLRM - Query horizontal margins
sprintf(buf, "\033P1$r%d;%ds\033\\", 1, termconf_scratch.width); // Can erase - TODO real extent of horiz margins if implemented
apars_respond(buf);
}
else if (buffer[2] == 'm') {
// SGR - query SGR
apars_respond("\033P1$r");
screen_report_sgr(buf);
apars_respond(buf);
apars_respond("m\033\\");
}
else if (strneq(buffer+2, " q", 2)) {
// DECSCUSR - Query cursor style
sprintf(buf, "\033P1$r%d q\033\\", 1);
/*
Ps = 0 -> blinking block.
Ps = 1 -> blinking block (default).
Ps = 2 -> steady block.
Ps = 3 -> blinking underline.
Ps = 4 -> steady underline.
Ps = 5 -> blinking bar (xterm).
Ps = 6 -> steady bar (xterm).
*/
apars_respond(buf);
}
else {
// invalid query
ansi_noimpl("DCS %s ST", buffer);
sprintf(buf, "\033P0$r%s\033\\", buffer+2);
}
}
else {
ansi_warn("Bad DCS: %s", buffer);
apars_show_context();
}
}
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//
// Created by MightyPork on 2017/08/20.
//
#ifndef ESP_VT100_FIRMWARE_APARS_DCS_H
#define ESP_VT100_FIRMWARE_APARS_DCS_H
void apars_handle_dcs(const char *buffer);
#endif //ESP_VT100_FIRMWARE_APARS_DCS_H
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//
// Created by MightyPork on 2017/08/20.
//
// Logging functions for the parser, can be switched off with a compile flag
//
#ifndef ESP_VT100_FIRMWARE_APARS_LOGGING_H
#define ESP_VT100_FIRMWARE_APARS_LOGGING_H
#include <esp8266.h>
#ifndef DEBUG_ANSI
#define DEBUG_ANSI 0
#endif
#ifndef DEBUG_ANSI_NOIMPL
#define DEBUG_ANSI_NOIMPL 0
#endif
// defined in the makefile
#if DEBUG_ANSI
#define ansi_warn warn
#define ansi_dbg dbg
#else
#define ansi_warn(fmt, ...)
#define ansi_dbg(fmt, ...)
#endif
#if DEBUG_ANSI_NOIMPL
#define ansi_noimpl(fmt, ...) warn("NOIMPL: " fmt, ##__VA_ARGS__)
#define ansi_noimpl_r(fmt, ...) warn(fmt, ##__VA_ARGS__)
#else
#define ansi_noimpl(fmt, ...)
#define ansi_noimpl_r(fmt, ...)
#endif
#endif //ESP_VT100_FIRMWARE_APARS_LOGGING_H
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//
// Created by MightyPork on 2017/08/20.
//
// Handle OSC commands (Operating System Command)
// ESC ] Ps ; Pt ST
//
// Those are used to pass various text variables to the terminal:
//
// Ps = 0 or 2 ... set screen title to Pt
// Ps = 81-85 ... set button label to Pt
//
#include "apars_osc.h"
#include "apars_logging.h"
#include "screen.h"
#include "ansi_parser.h"
/**
* Helper function to parse incoming OSC (Operating System Control)
* @param buffer - the OSC body (after OSC and before ST)
*/
void ICACHE_FLASH_ATTR
apars_handle_osc(const char *buffer)
{
const char *orig_buff = buffer;
int n = 0;
char c = 0;
while ((c = *buffer++) != 0) {
if (c >= '0' && c <= '9') {
n = (n * 10 + (c - '0'));
} else {
break;
}
}
if (c == ';') {
// Do something with the data string and number
// (based on xterm manpage)
if (n == 0 || n == 2) {
screen_set_title(buffer);
}
else if (n >= 81 && n <= 85) { // numbers chosen to not collide with any xterm supported codes
screen_set_button_text(n - 80, buffer);
}
else {
ansi_noimpl("OSC %d ; %s ST", n, buffer);
}
}
else {
ansi_warn("BAD OSC: %s", orig_buff);
apars_show_context();
}
}
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//
// Created by MightyPork on 2017/08/20.
//
#ifndef ESP_VT100_FIRMWARE_APARS_OSC_H
#define ESP_VT100_FIRMWARE_APARS_OSC_H
void apars_handle_osc(const char *buffer);
#endif //ESP_VT100_FIRMWARE_APARS_OSC_H
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//
// Created by MightyPork on 2017/08/20.
//
// Short sequences: (* = not implemented)
//
// ESC char
// ESC 6 Back Index (DECBI), VT420 and up.
// ESC 7 Save Cursor (DECSC).
// ESC 8 Restore Cursor (DECRC).
// ESC 9 Forward Index (DECFI), VT420 and up.
// ESC = Application Keypad (DECKPAM).
// ESC > Normal Keypad (DECKPNM).
// ESC F Cursor to lower left corner of screen.
// ESC c Full Reset (RIS).
// *ESC l Memory Lock (per HP terminals). Locks memory above the cursor.
// *ESC m Memory Unlock (per HP terminals).
// ESC n Invoke the G2 Character Set as GL (LS2).
// ESC o Invoke the G3 Character Set as GL (LS3).
// *ESC | Invoke the G3 Character Set as GR (LS3R).
// *ESC } Invoke the G2 Character Set as GR (LS2R).
// *ESC ~ Invoke the G1 Character Set as GR (LS1R).
//
// ESC # Ps
// *ESC # 3 DEC double-height line, top half (DECDHL).
// *ESC # 4 DEC double-height line, bottom half (DECDHL).
// *ESC # 5 DEC single-width line (DECSWL).
// *ESC # 6 DEC double-width line (DECDWL).
// ESC # 8 DEC Screen Alignment Test (DECALN).
//
// ESC SP char
// *ESC SP F 7-bit controls (S7C1T).
// *ESC SP G 8-bit controls (S8C1T).
// *ESC SP L Set ANSI conformance level 1 (dpANS X3.134.1).
// *ESC SP M Set ANSI conformance level 2 (dpANS X3.134.1).
// *ESC SP N Set ANSI conformance level 3 (dpANS X3.134.1).
//
// Charset commands
// ESC ( char Designate G0 character set ('0' = symbols, 'B' = ASCII-US, 'A' = ASCII-UK)
// ESC ) char Designate G1 character set
// SO Switch to G0 character set
// SI Switch to G1 character set
//
#include <esp8266.h>
#include "apars_short.h"
#include "apars_logging.h"
#include "screen.h"
// ----- Character Set ---
/**
* Command to assign G0 or G1
* @param slot - ( or ) for G0 or G1
* @param c - character table ID (0, B etc)
*/
void ICACHE_FLASH_ATTR
apars_handle_chs_designate(char slot, char c)
{
if (slot == '(') screen_set_charset(0, c); // G0
else if (slot == ')') screen_set_charset(1, c); // G1
else {
ansi_noimpl("ESC %c %c", slot, c);
}
// other alternatives * + . - / not implemented
}
/** Select charset slot */
void ICACHE_FLASH_ATTR
apars_handle_chs_switch(int Gx)
{
screen_set_charset_n(Gx);
}
// ----- ESC SP char -----
/**
* ESC SP <c> (this sets 8/7-bit mode and some other archaic options)
* @param c - key character
*/
void ICACHE_FLASH_ATTR
apars_handle_space_cmd(char c)
{
ansi_noimpl("ESC SP %c", c);
}
// ----- ESC # num -----
/**
* Codes in the format ESC # n
* @param c - the trailing symbol (numeric ASCII)
*/
void ICACHE_FLASH_ATTR apars_handle_hash_cmd(char c)
{
switch(c) {
case '3': // Double size, top half
case '4': // Single size, bottom half
case '5': // Single width, single height
case '6': // Double width
ansi_noimpl("Double Size Line");
break;
case '8':
screen_fill_with_E();
break;
default:
ansi_noimpl("ESC # %c", c);
}
}
// ----- ESC char -----
/**
* Single-character escape codes (ESC x)
* @param c - the trailing symbol (ASCII)
*/
void ICACHE_FLASH_ATTR apars_handle_short_cmd(char c)
{
switch(c) {
case 'c': // screen reset
screen_reset();
break;
case '7': // save cursor + attributes
screen_cursor_save(true);
break;
case '8': // restore cursor + attributes
screen_cursor_restore(true);
break;
case 'E': // same as CR LF
screen_cursor_move(1, 0, false);
screen_cursor_set_x(0);
break;
case 'F': // bottom left
screen_cursor_set(termconf_scratch.height-1, 0);
break;
case 'D': // move cursor down, scroll screen up if needed
screen_cursor_move(1, 0, true);
break;
case 'M': // move cursor up, scroll screen down if needed
screen_cursor_move(-1, 0, true);
break;
case 'H':
screen_set_tab();
break;
case '>':
screen_set_numpad_alt_mode(false);
break;
case '<': // "Enter ANSI / VT100 mode" - no-op (we don't support VT52 mode)
break;
case '=':
screen_set_numpad_alt_mode(true);
break;
case '|': // Invoke the G3 Character Set as GR (LS3R).
case '}': // Invoke the G2 Character Set as GR (LS2R).
case '~': // Invoke the G1 Character Set as GR (LS1R).
// Those do not seem to do anything TODO investigate
break;
case '@': // no-op padding char (?)
break;
case '\\': // spurious string terminator
break;
default:
ansi_noimpl("ESC %c", c);
}
}
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//
// Created by MightyPork on 2017/08/20.
//
#ifndef ESP_VT100_FIRMWARE_APARS_SIMPLE_H
#define ESP_VT100_FIRMWARE_APARS_SIMPLE_H
void apars_handle_short_cmd(char c);
void apars_handle_hash_cmd(char c);
void apars_handle_space_cmd(char c);
void apars_handle_chs_designate(char slot, char c);
void apars_handle_chs_switch(int Gx);
#endif //ESP_VT100_FIRMWARE_APARS_SIMPLE_H
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//
// Created by MightyPork on 2017/08/20.
//
// String based commands.
// Those command start with a introducer sequence, followed by arbitrary string,
// and end with a String Terminator (`ESC \`, or `BEL`)
//
// ESC k Pt ST ... set screen title (same as `OSC 0 ; Pt ST`, is shorter)
// ESC ] Pt ST ... OSC - Operating System Command (split to its own file)
// ESC P Pt ST ... DCS - Device Control String (split to its own file)
// ESC ^ Pt ST ... PM - Privacy message (unused)
// ESC _ Pt ST ... APC - Application Program Command (unused)
// ESC X Pt ST ... SOS - Start Of String (unused; sent back in response to ENQ)
#include <esp8266.h>
#include "apars_string.h"
#include "apars_logging.h"
#include "ansi_parser_callbacks.h"
#include "screen.h"
// ----- Generic String cmd - disambiguation -----
void ICACHE_FLASH_ATTR
apars_handle_string_cmd(char leadchar, const char *buffer)
{
switch (leadchar) {
case 'k': // ESC k TITLE ST (defined in GNU screen manpage)
screen_set_title(buffer);
break;
case ']': // OSC - Operating System Command
apars_handle_osc(buffer);
break;
case 'P': // DCS - Device Control String
apars_handle_dcs(buffer);
break;
case '^': // PM - Privacy Message
break;
case '_': // APC - Application Program Command
break;
case 'X': // SOS - Start of String (purpose unclear)
break;
default:
ansi_warn("Bad str cmd");
apars_show_context();
}
}
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//
// Created by MightyPork on 2017/08/20.
//
#ifndef ESP_VT100_FIRMWARE_APARS_STRING_H
#define ESP_VT100_FIRMWARE_APARS_STRING_H
void apars_handle_string_cmd(char leadchar, const char *buffer);
#endif //ESP_VT100_FIRMWARE_APARS_STRING_H
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//
// Created by MightyPork on 2017/08/20.
//
// UTF-8 parser - collects bytes of a code point before writing them
// into a screen cell.
//
#include "apars_utf8.h"
#include "apars_logging.h"
#include "screen.h"
static char utf_collect[4];
static int utf_i = 0;
static int utf_j = 0;
/**
* Clear the buffer where we collect pieces of a code point.
* This is used for parser reset.
*/
void ICACHE_FLASH_ATTR
apars_reset_utf8buffer(void)
{
utf_i = 0;
utf_j = 0;
memset(utf_collect, 0, 4);
}
/**
* Handle a received plain character
* @param c - received character
*/
void ICACHE_FLASH_ATTR
apars_handle_plainchar(char c)
{
// collecting unicode glyphs...
if (c & 0x80) {
if (utf_i == 0) {
// start
if (c == 192 || c == 193 || c >= 245) {
// forbidden codes
goto fail;
}
if ((c & 0xE0) == 0xC0) {
utf_i = 2;
}
else if ((c & 0xF0) == 0xE0) {
utf_i = 3;
}
else if ((c & 0xF8) == 0xF0) {
utf_i = 4;
}
else {
// chars over 127 that don't start unicode sequences
goto fail;
}
utf_collect[0] = c;
utf_j = 1;
}
else {
if ((c & 0xC0) != 0x80) {
goto fail;
}
else {
utf_collect[utf_j++] = c;
if (utf_j >= utf_i) {
screen_putchar(utf_collect);
apars_reset_utf8buffer();
}
}
}
}
else {
utf_collect[0] = c;
utf_collect[1] = 0; // just to make sure it's closed...
screen_putchar(utf_collect);
}
return;
fail:
ansi_warn("Bad UTF-8: %0Xh", c);
apars_reset_utf8buffer();
}
+11
View File
@@ -0,0 +1,11 @@
//
// Created by MightyPork on 2017/08/20.
//
#ifndef ESP_VT100_FIRMWARE_APARS_UTF8_H
#define ESP_VT100_FIRMWARE_APARS_UTF8_H
void apars_handle_plainchar(char c);
void apars_reset_utf8buffer(void);
#endif //ESP_VT100_FIRMWARE_APARS_UTF8_H
+49
View File
@@ -0,0 +1,49 @@
//
// Created by MightyPork on 2017/08/19.
//
#ifndef ESP_VT100_FIRMWARE_ASCII_H
#define ESP_VT100_FIRMWARE_ASCII_H
enum ASCII_CODES {
NUL = 0,
SOH = 1,
STX = 2,
ETX = 3,
EOT = 4,
ENQ = 5,
ACK = 6,
BEL = 7, /* \a */
BS = 8, /* \b */
TAB = 9, /* \t */
LF = 10, /* \n */
VT = 11, /* \v */
FF = 12, /* \f */
CR = 13, /* \r */
SO = 14,
SI = 15,
DLE = 16,
DC1 = 17,
DC2 = 18,
DC3 = 19,
DC4 = 20,
NAK = 21,
SYN = 22,
ETB = 23,
CAN = 24,
EM = 25,
SUB = 26,
ESC = 27, /* \033, \x1b, \e */
FS = 28,
GS = 29,
RS = 30,
US = 31,
SP = 32,
DEL = 127,
// aliases
XON = DC1,
XOFF = DC3,
};
#endif //ESP_VT100_FIRMWARE_ASCII_H
+1 -1
View File
@@ -5,7 +5,7 @@
#include "cgi_main.h" #include "cgi_main.h"
#include "screen.h" #include "screen.h"
#include "user_main.h" #include "version.h"
#include "helpers.h" #include "helpers.h"
/** /**
+165 -63
View File
@@ -5,28 +5,50 @@
#include "cgi_sockets.h" #include "cgi_sockets.h"
#include "uart_driver.h" #include "uart_driver.h"
#include "screen.h" #include "screen.h"
#include "uart_buffer.h"
#include "ansi_parser.h"
#include "jstring.h"
#define SOCK_BUF_LEN 1024 #define LOOPBACK 0
static char sock_buff[SOCK_BUF_LEN];
#define HB_TIME 1000
#define SOCK_BUF_LEN 2000
volatile bool notify_available = true; volatile bool notify_available = true;
volatile bool notify_cooldown = false;
static ETSTimer notifyTim; static ETSTimer notifyContentTim;
static ETSTimer notifyTim2; static ETSTimer notifyLabelsTim;
static ETSTimer notifyCooldownTim;
static ETSTimer heartbeatTim;
// we're trying to do a kind of mutex here, without the actual primitives // we're trying to do a kind of mutex here, without the actual primitives
// this might glitch, very rarely. // this might glitch, very rarely.
// it's recommended to put some delay between setting labels and updating the screen. // it's recommended to put some delay between setting labels and updating the screen.
/**
* Cooldown delay is over
* @param arg
*/
static void ICACHE_FLASH_ATTR static void ICACHE_FLASH_ATTR
notifyTimCb(void *arg) { notifyCooldownTimCb(void *arg)
void *data = NULL; {
notify_cooldown = false;
}
if (!notify_available) { static void ICACHE_FLASH_ATTR
notifyContentTimCb(void *arg)
{
void *data = NULL;
int max_bl, total_bl;
char sock_buff[SOCK_BUF_LEN];
cgiWebsockMeasureBacklog(URL_WS_UPDATE, &max_bl, &total_bl);
if (!notify_available || notify_cooldown || (max_bl > 2048)) { // do not send if we have anything significant backlogged
// postpone a little // postpone a little
os_timer_disarm(&notifyTim); TIMER_START(&notifyContentTim, notifyContentTimCb, 5, 0);
os_timer_setfn(&notifyTim, notifyTimCb, NULL);
os_timer_arm(&notifyTim, 1, 0);
return; return;
} }
notify_available = false; notify_available = false;
@@ -43,17 +65,20 @@ notifyTimCb(void *arg) {
// cleanup // cleanup
screenSerializeToBuffer(NULL, SOCK_BUF_LEN, &data); screenSerializeToBuffer(NULL, SOCK_BUF_LEN, &data);
notify_cooldown = true;
notify_available = true; notify_available = true;
TIMER_START(&notifyCooldownTim, notifyCooldownTimCb, termconf->display_cooldown_ms, 0);
} }
static void ICACHE_FLASH_ATTR static void ICACHE_FLASH_ATTR
notifyLabelsTimCb(void *arg) notifyLabelsTimCb(void *arg)
{ {
if (!notify_available) { char sock_buff[SOCK_BUF_LEN];
if (!notify_available || notify_cooldown) {
// postpone a little // postpone a little
os_timer_disarm(&notifyTim2); TIMER_START(&notifyLabelsTim, notifyLabelsTimCb, 1, 0);
os_timer_setfn(&notifyTim2, notifyLabelsTimCb, NULL);
os_timer_arm(&notifyTim2, 1, 0);
return; return;
} }
notify_available = false; notify_available = false;
@@ -61,7 +86,18 @@ notifyLabelsTimCb(void *arg)
screenSerializeLabelsToBuffer(sock_buff, SOCK_BUF_LEN); screenSerializeLabelsToBuffer(sock_buff, SOCK_BUF_LEN);
cgiWebsockBroadcast(URL_WS_UPDATE, sock_buff, (int) strlen(sock_buff), 0); cgiWebsockBroadcast(URL_WS_UPDATE, sock_buff, (int) strlen(sock_buff), 0);
notify_cooldown = true;
notify_available = true; notify_available = true;
TIMER_START(&notifyCooldownTim, notifyCooldownTimCb, termconf->display_cooldown_ms, 0);
}
/** Beep */
void ICACHE_FLASH_ATTR
send_beep(void)
{
// here's some potential for a race error with the other broadcast functions :C
cgiWebsockBroadcast(URL_WS_UPDATE, "B", 1, 0);
} }
@@ -74,78 +110,142 @@ void ICACHE_FLASH_ATTR screen_notifyChange(ScreenNotifyChangeTopic topic)
{ {
// this is not the most ideal/cleanest implementation // this is not the most ideal/cleanest implementation
// PRs are welcome for a nicer update "queue" solution // PRs are welcome for a nicer update "queue" solution
if (termconf->display_tout_ms == 0) termconf->display_tout_ms = SCR_DEF_DISPLAY_TOUT_MS;
// NOTE: the timers are restarted if already running
if (topic == CHANGE_LABELS) { if (topic == CHANGE_LABELS) {
// separate timer from content change timer, to avoid losing that update // separate timer from content change timer, to avoid losing that update
os_timer_disarm(&notifyTim2); TIMER_START(&notifyLabelsTim, notifyLabelsTimCb, termconf->display_tout_ms, 0);
os_timer_setfn(&notifyTim2, notifyLabelsTimCb, NULL);
os_timer_arm(&notifyTim2, SCREEN_NOTIFY_DELAY_MS, 0);
} }
else if (topic == CHANGE_CONTENT) { else if (topic == CHANGE_CONTENT) {
// throttle delay // throttle delay
os_timer_disarm(&notifyTim); TIMER_START(&notifyContentTim, notifyContentTimCb, termconf->display_tout_ms, 0);
os_timer_setfn(&notifyTim, notifyTimCb, NULL);
os_timer_arm(&notifyTim, SCREEN_NOTIFY_DELAY_MS, 0);
} }
} }
void ICACHE_FLASH_ATTR sendMouseAction(char evt, int y, int x, int button, u8 mods)
{
// one-based
x++;
y++;
bool ctrl = (mods & 1) > 0;
bool shift = (mods & 2) > 0;
bool alt = (mods & 4) > 0;
bool meta = (mods & 8) > 0;
enum MTM mtm = mouse_tracking.mode;
enum MTE mte = mouse_tracking.encoding;
// No message on release in X10 mode
if (mtm == MTM_X10 && (button == 0 || evt == 'r')) {
return;
}
if (evt == 'm' && mtm != MTM_BUTTON_MOTION && mtm != MTM_ANY_MOTION) {
return;
}
if (evt == 'm' && mtm == MTM_BUTTON_MOTION && button == 0) {
return;
}
int eventcode = 0;
if (mtm == MTM_X10) {
eventcode = button-1;
}
else {
if (button == 0 || (evt == 'r' && mte != MTE_SGR)) eventcode = 3; // release
else if (button == 1) eventcode = 0;
else if (button == 2) eventcode = 1;
else if (button == 3) eventcode = 2;
else if (button == 4) eventcode = 64;
else if (button == 5) eventcode = 65;
if (shift) eventcode |= 4;
if (alt || meta) eventcode |= 8;
if (ctrl) eventcode |= 16;
if (mtm == MTM_BUTTON_MOTION || mtm == MTM_ANY_MOTION) {
if (evt == 'm') {
eventcode |= 32;
}
}
}
// Encode
char buf[20];
buf[0] = 0;
if (mte == MTE_SIMPLE || mte == MTE_UTF8) {
// strictly, for UTF8 this will break if any coord is over 127,
// but that is unlikely due to screen size limitations in ESPTerm
sprintf(buf, "\x1b[M%c%c%c", (u8)(32+eventcode), (u8)(32+x), (u8)(32+y));
}
else if (mte == MTE_SGR) {
sprintf(buf, "\x1b[<%d;%d;%d%c", eventcode, x, y, evt == 'p' ? 'M' : 'm');
}
else if (mte == MTE_URXVT) {
sprintf(buf, "\x1b[%d;%d;%dM", (u8)(32+eventcode), (u8)(32+x), (u8)(32+y));
}
UART_SendAsync(buf, -1);
}
/** Socket received a message */ /** Socket received a message */
void ICACHE_FLASH_ATTR updateSockRx(Websock *ws, char *data, int len, int flags) void ICACHE_FLASH_ATTR updateSockRx(Websock *ws, char *data, int len, int flags)
{ {
char buf[20];
// Add terminator if missing (seems to randomly happen) // Add terminator if missing (seems to randomly happen)
data[len] = 0; data[len] = 0;
// TODO re-implement those, use single byte markers and B2 encoding
ws_dbg("Sock RX str: %s, len %d", data, len); ws_dbg("Sock RX str: %s, len %d", data, len);
if (strstarts(data, "STR:")) { int y, x, m, b;
u8 btnNum;
char c = data[0];
switch (c) {
case 's':
// pass string verbatim // pass string verbatim
UART_WriteString(UART0, data+4, UART_TIMEOUT_US); #if LOOPBACK
} for(int i=4;i<strlen(data); i++) {
else if (strstarts(data, "BTN:")) { ansi_parser(data[i]);
// send button as low ASCII value 1-9
int btnNum = data[4] - '0';
if (btnNum > 0 && btnNum < 10) {
UART_WriteChar(UART0, (unsigned char)btnNum, UART_TIMEOUT_US);
} }
} #else
else if (strstarts(data, "TAP:")) { UART_SendAsync(data+1, -1);
// this comes in as 0-based #endif
break;
int y=0, x=0; case 'b':
// action button press
char *pc=data+4; btnNum = (u8) (data[1]);
char c; if (btnNum > 0 && btnNum < 10) {
int phase=0; UART_SendAsync((const char *) &btnNum, 1); // TODO this is where we use user-configured codes
while((c=*pc++) != '\0') {
if (c==','||c==';') {
phase++;
} }
else if (c>='0' && c<='9') { break;
if (phase==0) { case 'm':
y=y*10+(c-'0'); case 'p':
} else { case 'r':
x=x*10+(c-'0'); if (mouse_tracking.mode == MTM_NONE) break; // no need to parse, not enabled
}
}
}
if (!screen_isCoordValid(y, x)) { // mouse move
ws_warn("Mouse input at invalid coordinates"); y = parse2B(data+1); // row, 0-based
return; x = parse2B(data+3); // column, 0-based
} b = parse2B(data+5); // mouse button, 0 = none, 1-5 = button number
m = parse2B(data+7); // modifier keys held
ws_dbg("Screen clicked at row %d, col %d", y+1, x+1); sendMouseAction(c,y,x,b,m);
break;
// Send as 1-based to user default:
sprintf(buf, "\033[%d;%dM", y+1, x+1); ws_warn("Bad command.");
UART_WriteString(UART0, buf, UART_TIMEOUT_US);
} }
else { }
ws_warn("Bad command.");
void ICACHE_FLASH_ATTR heartbeatTimCb(void *unused)
{
if (notify_available) {
// Heartbeat packet - indicate we're still connected
// JS reloads the page if heartbeat is lost for a couple seconds
cgiWebsockBroadcast(URL_WS_UPDATE, ".", 1, 0);
} }
} }
@@ -154,4 +254,6 @@ void ICACHE_FLASH_ATTR updateSockConnect(Websock *ws)
{ {
ws_info("Socket connected to "URL_WS_UPDATE); ws_info("Socket connected to "URL_WS_UPDATE);
ws->recvCb = updateSockRx; ws->recvCb = updateSockRx;
TIMER_START(&heartbeatTim, heartbeatTimCb, HB_TIME, 1);
} }
+3
View File
@@ -3,12 +3,15 @@
#define URL_WS_UPDATE "/term/update.ws" #define URL_WS_UPDATE "/term/update.ws"
#include <cgiwebsocket.h>
#include "screen.h" #include "screen.h"
/** Update websocket connect callback */ /** Update websocket connect callback */
void updateSockConnect(Websock *ws); void updateSockConnect(Websock *ws);
void screen_notifyChange(ScreenNotifyChangeTopic topic); void screen_notifyChange(ScreenNotifyChangeTopic topic);
void send_beep(void);
// defined in the makefile // defined in the makefile
#if DEBUG_INPUT #if DEBUG_INPUT
#define ws_warn warn #define ws_warn warn
+40 -3
View File
@@ -20,7 +20,7 @@ cgiTermCfgSetParams(HttpdConnData *connData)
{ {
char buff[50]; char buff[50];
char redir_url_buf[100]; char redir_url_buf[100];
int n, w, h; int32 n, w, h;
bool shall_clear_screen = false; bool shall_clear_screen = false;
@@ -85,13 +85,41 @@ cgiTermCfgSetParams(HttpdConnData *connData)
dbg("Parser timeout: %s ms", buff); dbg("Parser timeout: %s ms", buff);
n = atoi(buff); n = atoi(buff);
if (n >= 0) { if (n >= 0) {
termconf->parser_tout_ms = (u8) n; termconf->parser_tout_ms = n;
} else { } else {
warn("Bad timeout %s", buff); warn("Bad parser timeout %s", buff);
redir_url += sprintf(redir_url, "parser_tout_ms,"); redir_url += sprintf(redir_url, "parser_tout_ms,");
} }
} }
if (GET_ARG("display_tout_ms")) {
dbg("Display update idle timeout: %s ms", buff);
n = atoi(buff);
if (n > 0) {
termconf->display_tout_ms = n;
} else {
warn("Bad update timeout %s", buff);
redir_url += sprintf(redir_url, "display_tout_ms,");
}
}
if (GET_ARG("display_cooldown_ms")) {
dbg("Display update cooldown: %s ms", buff);
n = atoi(buff);
if (n > 0) {
termconf->display_cooldown_ms = n;
} else {
warn("Bad cooldown %s", buff);
redir_url += sprintf(redir_url, "display_cooldown_ms,");
}
}
if (GET_ARG("fn_alt_mode")) {
dbg("FN alt mode: %s", buff);
n = atoi(buff);
termconf->fn_alt_mode = (bool)n;
}
if (GET_ARG("default_fg")) { if (GET_ARG("default_fg")) {
dbg("Screen default FG: %s", buff); dbg("Screen default FG: %s", buff);
n = atoi(buff); n = atoi(buff);
@@ -175,6 +203,15 @@ tplTermCfg(HttpdConnData *connData, char *token, void **arg)
else if (streq(token, "parser_tout_ms")) { else if (streq(token, "parser_tout_ms")) {
sprintf(buff, "%d", termconf->parser_tout_ms); sprintf(buff, "%d", termconf->parser_tout_ms);
} }
else if (streq(token, "display_tout_ms")) {
sprintf(buff, "%d", termconf->display_tout_ms);
}
else if (streq(token, "display_cooldown_ms")) {
sprintf(buff, "%d", termconf->display_cooldown_ms);
}
else if (streq(token, "fn_alt_mode")) {
sprintf(buff, "%d", (int)termconf->fn_alt_mode);
}
else if (streq(token, "theme")) { else if (streq(token, "theme")) {
sprintf(buff, "%d", termconf->theme); sprintf(buff, "%d", termconf->theme);
} }
+28
View File
@@ -13,6 +13,8 @@
#include "ansi_parser_callbacks.h" #include "ansi_parser_callbacks.h"
#include "wifimgr.h" #include "wifimgr.h"
#include "persist.h" #include "persist.h"
#include "screen.h"
#include "ansi_parser.h"
#define BTNGPIO 0 #define BTNGPIO 0
@@ -21,6 +23,28 @@ static bool enable_ap_button = false;
static ETSTimer resetBtntimer; static ETSTimer resetBtntimer;
static ETSTimer blinkyTimer; static ETSTimer blinkyTimer;
static ETSTimer ansiParserResetTimer;
static void ICACHE_FLASH_ATTR ansiParserResetTimerCb(void *arg) {
static u32 last_charcnt = 0;
static int same_charcnt = -1;
if (termconf->parser_tout_ms == 0) return;
if (last_charcnt != ansi_parser_char_cnt) {
last_charcnt = ansi_parser_char_cnt;
same_charcnt = 0;
}
else {
if (same_charcnt != -1) {
same_charcnt++;
if (same_charcnt > termconf->parser_tout_ms) {
ansi_parser_reset();
same_charcnt = -1;
}
}
}
}
// Holding BOOT pin triggers AP reset, then Factory Reset. // Holding BOOT pin triggers AP reset, then Factory Reset.
// Indicate that by blinking the on-board LED. // Indicate that by blinking the on-board LED.
@@ -102,6 +126,10 @@ void ICACHE_FLASH_ATTR ioInit() {
os_timer_setfn(&resetBtntimer, resetBtnTimerCb, NULL); os_timer_setfn(&resetBtntimer, resetBtnTimerCb, NULL);
os_timer_arm(&resetBtntimer, 500, 1); os_timer_arm(&resetBtntimer, 500, 1);
os_timer_disarm(&ansiParserResetTimer);
os_timer_setfn(&ansiParserResetTimer, ansiParserResetTimerCb, NULL);
os_timer_arm(&ansiParserResetTimer, 1, 1);
// One way to enter AP mode - hold GPIO0 low. // One way to enter AP mode - hold GPIO0 low.
if (GPIO_INPUT_GET(BTNGPIO) == 0) { if (GPIO_INPUT_GET(BTNGPIO) == 0) {
// starting "in BOOT mode" - do not install the AP reset timer // starting "in BOOT mode" - do not install the AP reset timer
+41
View File
@@ -0,0 +1,41 @@
//
// Created by MightyPork on 2017/09/04.
//
#include "jstring.h"
void ICACHE_FLASH_ATTR
encode2B(u16 number, WordB2 *stru)
{
stru->lsb = (u8) (number % 127);
number = (u16) ((number - stru->lsb) / 127);
stru->lsb += 1;
stru->msb = (u8) (number + 1);
}
void ICACHE_FLASH_ATTR
encode3B(u32 number, WordB3 *stru)
{
stru->lsb = (u8) (number % 127);
number = (number - stru->lsb) / 127;
stru->lsb += 1;
stru->msb = (u8) (number % 127);
number = (number - stru->msb) / 127;
stru->msb += 1;
stru->xsb = (u8) (number + 1);
}
u16 ICACHE_FLASH_ATTR
parse2B(const char *str)
{
return (u16) ((str[0] - 1) + (str[1] - 1) * 127);
}
u32 ICACHE_FLASH_ATTR
parse3B(const char *str)
{
return (u32) ((str[0] - 1) + (str[1] - 1) * 127 + (str[2] - 1) * 127 * 127);
}
+29
View File
@@ -0,0 +1,29 @@
//
// Created by MightyPork on 2017/09/04.
//
#ifndef ESPTERM_JSTRING_H
#define ESPTERM_JSTRING_H
#include <esp8266.h>
typedef struct {
u8 lsb;
u8 msb;
} WordB2;
typedef struct {
u8 lsb;
u8 msb;
u8 xsb;
} WordB3;
void encode2B(u16 number, WordB2 *stru);
void encode3B(u32 number, WordB3 *stru);
u16 parse2B(const char *str);
u32 parse3B(const char *str);
#endif //ESPTERM_JSTRING_H
+2 -2
View File
@@ -29,7 +29,7 @@ HttpdBuiltInUrl routes[] = {
// --- Web pages --- // --- Web pages ---
ROUTE_TPL_FILE("/", tplScreen, "/term.tpl"), ROUTE_TPL_FILE("/", tplScreen, "/term.tpl"),
ROUTE_TPL_FILE("/about/?", tplAbout, "/about.tpl"), ROUTE_TPL_FILE("/about/?", tplAbout, "/about.tpl"),
ROUTE_FILE("/help/?", "/help.tpl"), ROUTE_FILE("/help/?", "/help.html"),
// --- Sockets --- // --- Sockets ---
ROUTE_CGI("/term/init", cgiTermInitialImage), ROUTE_CGI("/term/init", cgiTermInitialImage),
@@ -46,7 +46,7 @@ HttpdBuiltInUrl routes[] = {
ROUTE_REDIRECT("/cfg/?", "/cfg/wifi"), ROUTE_REDIRECT("/cfg/?", "/cfg/wifi"),
ROUTE_TPL_FILE("/cfg/wifi/?", tplWlan, "/cfg_wifi.tpl"), ROUTE_TPL_FILE("/cfg/wifi/?", tplWlan, "/cfg_wifi.tpl"),
ROUTE_FILE("/cfg/wifi/connecting/?", "/cfg_wifi_conn.tpl"), ROUTE_FILE("/cfg/wifi/connecting/?", "/cfg_wifi_conn.html"),
ROUTE_CGI("/cfg/wifi/scan", cgiWiFiScan), ROUTE_CGI("/cfg/wifi/scan", cgiWiFiScan),
ROUTE_CGI("/cfg/wifi/connstatus", cgiWiFiConnStatus), ROUTE_CGI("/cfg/wifi/connstatus", cgiWiFiConnStatus),
ROUTE_CGI("/cfg/wifi/set", cgiWiFiSetParams), ROUTE_CGI("/cfg/wifi/set", cgiWiFiSetParams),
+824 -385
View File
File diff suppressed because it is too large Load Diff
+160 -70
View File
@@ -34,37 +34,41 @@
* *
*/ */
// Size designed for the wifi config structure // Size designed for the terminal config structure
// Must be constant to avoid corrupting user config after upgrade // Must be constant to avoid corrupting user config after upgrade
#define TERMCONF_SIZE 200 #define TERMCONF_SIZE 200
#define TERM_BTN_LEN 10 #define TERM_BTN_LEN 10
#define TERM_TITLE_LEN 64 #define TERM_TITLE_LEN 64
typedef enum { #define SCR_DEF_DISPLAY_TOUT_MS 10
CHANGE_CONTENT, #define SCR_DEF_DISPLAY_COOLDOWN_MS 30
CHANGE_LABELS, #define SCR_DEF_PARSER_TOUT_MS 10
} ScreenNotifyChangeTopic; #define SCR_DEF_FN_ALT_MODE false
#define SCR_DEF_WIDTH 26
#define SCR_DEF_HEIGHT 10
#define SCR_DEF_TITLE "ESPTerm"
#define ATTR_BOLD (1<<0) /** Maximum screen size (determines size of the static data array) */
#define ATTR_FAINT (1<<1) #define MAX_SCREEN_SIZE (80*25)
#define ATTR_ITALIC (1<<2)
#define ATTR_UNDERLINE (1<<3)
#define ATTR_BLINK (1<<4)
#define ATTR_FRAKTUR (1<<5)
#define ATTR_STRIKE (1<<6)
#define SCREEN_NOTIFY_DELAY_MS 20 #define TERMCONF_VERSION 1
// --- Persistent Settings ---
typedef struct { typedef struct {
u32 width; u32 width;
u32 height; u32 height;
u8 default_bg; u8 default_bg; // should be the Color typedef, but this way the size is more explicit
u8 default_fg; u8 default_fg;
char title[TERM_TITLE_LEN]; char title[TERM_TITLE_LEN];
char btn[5][TERM_BTN_LEN]; char btn[5][TERM_BTN_LEN];
u8 theme; u8 theme;
u32 parser_tout_ms; u32 parser_tout_ms;
u32 display_tout_ms;
bool fn_alt_mode; // xterm compatibility mode (alternate codes for some FN keys)
u8 config_version;
u32 display_cooldown_ms;
} TerminalConfigBundle; } TerminalConfigBundle;
// Live config // Live config
@@ -76,51 +80,65 @@ extern TerminalConfigBundle * const termconf;
*/ */
extern TerminalConfigBundle termconf_scratch; extern TerminalConfigBundle termconf_scratch;
void terminal_restore_defaults(void); enum MTM {
void terminal_apply_settings(void); MTM_NONE = 0,
void terminal_apply_settings_noclear(void); // the same, but with no screen reset / init MTM_X10 = 1,
MTM_NORMAL = 2,
MTM_BUTTON_MOTION = 3,
MTM_ANY_MOTION = 4,
};
/** enum MTE {
* Maximum screen size (determines size of the static data array) MTE_SIMPLE = 0,
* MTE_UTF8 = 1,
* TODO May need adjusting if there are size problems when flashing the ESP. MTE_SGR = 2,
* We could also try to pack the Cell struct to a single 32bit word. MTE_URXVT = 3,
*/ };
#define MAX_SCREEN_SIZE (80*30)
typedef struct {
enum MTM mode;
bool focus_tracking;
enum MTE encoding;
} MouseTrackingConfig;
extern MouseTrackingConfig mouse_tracking;
/** Restore default settings to termconf. Does not apply or copy to scratch. */
void terminal_restore_defaults(void);
/** Apply settings, redraw (clears the screen) */
void terminal_apply_settings(void);
/** Apply settings, redraw (no clear - not resized) */
void terminal_apply_settings_noclear(void);
/** Init the screen */
void screen_init(void);
/** Change the screen size */
void screen_resize(int rows, int cols);
/** Set screen title */
void screen_set_title(const char *title);
/** Set a button text */
void screen_set_button_text(int num, const char *text);
// --- Encoding ---
typedef enum { typedef enum {
CLEAR_TO_CURSOR=0, CLEAR_FROM_CURSOR=1, CLEAR_ALL=2 CS_USASCII = 'B',
} ClearMode; CS_UKASCII = 'A',
CS_DEC_SUPPLEMENTAL = '0',
typedef uint8_t Color; CS_DOS_437 = '1',
} CHARSET;
httpd_cgi_state screenSerializeToBuffer(char *buffer, size_t buf_len, void **data); httpd_cgi_state screenSerializeToBuffer(char *buffer, size_t buf_len, void **data);
void screenSerializeLabelsToBuffer(char *buffer, size_t buf_len); void screenSerializeLabelsToBuffer(char *buffer, size_t buf_len);
typedef struct {
u8 lsb;
u8 msb;
} WordB2;
typedef struct {
u8 lsb;
u8 msb;
u8 xsb;
} WordB3;
/** Encode number to two nice ASCII bytes */
void encode2B(u16 number, WordB2 *stru);
/** Init the screen */
void screen_init(void);
/** Change the screen size */
void screen_resize(int rows, int cols);
/** Check if coord is valid */
bool screen_isCoordValid(int y, int x);
// --- Clearing --- // --- Clearing ---
typedef enum {
CLEAR_TO_CURSOR = 0,
CLEAR_FROM_CURSOR = 1,
CLEAR_ALL = 2
} ClearMode;
/** Screen reset to default state */ /** Screen reset to default state */
void screen_reset(void); void screen_reset(void);
/** Clear entire screen */ /** Clear entire screen */
@@ -129,18 +147,23 @@ void screen_clear(ClearMode mode);
void screen_clear_line(ClearMode mode); void screen_clear_line(ClearMode mode);
/** Clear part of line */ /** Clear part of line */
void screen_clear_in_line(unsigned int count); void screen_clear_in_line(unsigned int count);
/** Swap to alternate buffer (really what this does is backup terminal title, size and other global attributes) */
void screen_swap_state(bool alternate);
// --- insert / delete ---
/** Insert lines at cursor, shove down */
void screen_insert_lines(unsigned int lines);
/** Delete lines at cursor, pull up */
void screen_delete_lines(unsigned int lines);
/** Insert characters at cursor, shove right */
void screen_insert_characters(unsigned int count);
/** Delete characters at cursor, pull left */
void screen_delete_characters(unsigned int count);
/** Shift screen upwards */ /** Shift screen upwards */
void screen_scroll_up(unsigned int lines); void screen_scroll_up(unsigned int lines);
/** Shift screen downwards */ /** Shift screen downwards */
void screen_scroll_down(unsigned int lines); void screen_scroll_down(unsigned int lines);
/** esc # 8 - fill entire screen with E of default colors (DEC alignment display) */
void screen_fill_with_E(void);
// --- insert / delete ---
void screen_insert_lines(unsigned int lines);
void screen_delete_lines(unsigned int lines);
void screen_insert_characters(unsigned int count);
void screen_delete_characters(unsigned int count);
// --- Cursor control --- // --- Cursor control ---
@@ -152,46 +175,113 @@ void screen_cursor_get(int *y, int *x);
void screen_cursor_set_x(int x); void screen_cursor_set_x(int x);
/** Set cursor Y position */ /** Set cursor Y position */
void screen_cursor_set_y(int y); void screen_cursor_set_y(int y);
/** Reset cursor attribs */
void screen_reset_cursor(void);
/** Relative cursor move */ /** Relative cursor move */
void screen_cursor_move(int dy, int dx, bool scroll); void screen_cursor_move(int dy, int dx, bool scroll);
/** Save the cursor pos */ /** Save the cursor pos */
void screen_cursor_save(bool withAttrs); void screen_cursor_save(bool withAttrs);
/** Restore the cursor pos */ /** Restore the cursor pos */
void screen_cursor_restore(bool withAttrs); void screen_cursor_restore(bool withAttrs);
/** Enable cursor display */
void screen_cursor_enable(bool enable); // --- Cursor behavior setting ---
/** Toggle INSERT / REPLACE */
void screen_set_insert_mode(bool insert);
/** Enable CR auto */
void screen_set_newline_mode(bool nlm);
/** Enable auto wrap */ /** Enable auto wrap */
void screen_wrap_enable(bool enable); void screen_wrap_enable(bool enable);
/** Set scrolling region */
void screen_set_scrolling_region(int from, int to);
/** Enable or disable origin remap to top left of scrolling region */
void screen_set_origin_mode(bool region_origin);
// --- Colors --- // --- Graphic rendition setting ---
typedef uint8_t Color; // 0-16
#define ATTR_BOLD (1<<0)
#define ATTR_FAINT (1<<1)
#define ATTR_ITALIC (1<<2)
#define ATTR_UNDERLINE (1<<3)
#define ATTR_BLINK (1<<4)
#define ATTR_FRAKTUR (1<<5)
#define ATTR_STRIKE (1<<6)
/** Set cursor foreground color */ /** Set cursor foreground color */
void screen_set_fg(Color color); void screen_set_fg(Color color);
/** Set cursor background coloor */ /** Set cursor background coloor */
void screen_set_bg(Color color); void screen_set_bg(Color color);
/** Enable/disable attrs by bitmask */
void screen_set_sgr(u8 attrs, bool ena);
/** Set the inverse attribute */
void screen_set_sgr_inverse(bool ena);
/** Reset cursor attribs */
void screen_reset_sgr(void);
// enable or disable attrs by bitmask // --- Global modes and attributes ---
void screen_attr_enable(u8 attrs);
void screen_attr_disable(u8 attrs);
void screen_inverse_enable(bool ena);
/** Enable cursor display */
void screen_set_cursor_visible(bool visible);
/** Toggle application keypad mode */
void screen_set_numpad_alt_mode(bool app_mode);
/** Toggle application cursor mode */
void screen_set_cursors_alt_mode(bool app_mode);
/** Set reverse video mode */
void screen_set_reverse_video(bool reverse);
// --- Charset ---
/** Switch G0 <-> G1 */
void screen_set_charset_n(int Gx); void screen_set_charset_n(int Gx);
/** Assign G0 or G1 */
void screen_set_charset(int Gx, char charset); void screen_set_charset(int Gx, char charset);
// --- Tab stops ---
/** Remove all tabs on the screen */
void screen_clear_all_tabs(void);
/** Set tab at the current column */
void screen_set_tab(void);
/** Remove tab at the current column (if any) */
void screen_clear_tab(void);
/** Move forward one tab */
void screen_tab_forward(int count);
/** Move backward one tab */
void screen_tab_reverse(int count);
// --- Printing characters ---
/** /**
* Set a character in the cursor color, move to right with wrap. * Set a character in the cursor color, move to right with wrap.
* The character may be ASCII (then only one char is used), or * The character may be ASCII (then only one char is used), or
* unicode (then it can be 4 chars, or terminated by a zero) * unicode (then it can be 4 chars, or terminated by a zero)
*/ */
void screen_putchar(const char *ch); void screen_putchar(const char *ch);
/**
* esc # 8 - fill entire screen with E of default colors
* (DEC alignment test mode)
*/
void screen_fill_with_E(void);
#if 0 // --- Queries ---
/** Debug dump */
void screen_dd(void);
#endif
/** Check if coord is valid */
bool screen_isCoordValid(int y, int x);
/** Report current SGR as num;num;... for DAC query */
void screen_report_sgr(char *buffer);
// --- Notify ---
typedef enum {
CHANGE_CONTENT = 0,
CHANGE_LABELS = 1,
} ScreenNotifyChangeTopic;
/**
* Called when the screen content or settings change
* and the front-end should redraw / update.
* @param topic - what kind of change this is (chooses what message to send)
*/
extern void screen_notifyChange(ScreenNotifyChangeTopic topic); extern void screen_notifyChange(ScreenNotifyChangeTopic topic);
#endif // SCREEN_H #endif // SCREEN_H
+50 -1
View File
@@ -4,6 +4,47 @@
#include "ansi_parser.h" #include "ansi_parser.h"
#include "syscfg.h" #include "syscfg.h"
#define LOGBUF_SIZE 2048
static char logbuf[LOGBUF_SIZE];
static u32 lb_nw = 1;
static u32 lb_ls = 0;
static ETSTimer flushLogTimer;
static void buf_putc(char c)
{
if (lb_ls != lb_nw) {
logbuf[lb_nw++] = c;
if (lb_nw >= LOGBUF_SIZE) lb_nw = 0;
}
}
static void buf_pop(void *unused)
{
u32 quantity = 32;
u32 old_ls;
while (quantity > 0) {
// stop when done
if ((lb_ls == lb_nw-1) || (lb_ls == LOGBUF_SIZE-1 && lb_nw == 0)) break;
old_ls = lb_ls;
lb_ls++;
if (lb_ls >= LOGBUF_SIZE) lb_ls = 0;
if (OK == UART_WriteCharCRLF(UART1, logbuf[lb_ls], 1000)) {
quantity--;
} else {
// try another time
lb_ls = old_ls;
break;
}
}
}
LOCAL void my_putc(char c)
{
UART_WriteCharCRLF(UART1, (u8) c, 10);
}
/** /**
* Init the serial ports * Init the serial ports
*/ */
@@ -15,7 +56,15 @@ void ICACHE_FLASH_ATTR serialInitBase(void)
UART_SetStopBits(UART1, ONE_STOP_BIT); UART_SetStopBits(UART1, ONE_STOP_BIT);
UART_SetBaudrate(UART1, BIT_RATE_115200); UART_SetBaudrate(UART1, BIT_RATE_115200);
UART_SetPrintPort(UART1); UART_SetPrintPort(UART1);
os_install_putc1(buf_putc);
//os_install_putc1(my_putc);
UART_SetupAsyncReceiver(); UART_SetupAsyncReceiver();
// 1 ms timer
os_timer_disarm(&flushLogTimer);
os_timer_setfn(&flushLogTimer, buf_pop, NULL);
//os_timer_arm(&flushLogTimer, 1, 1);
ets_timer_arm_new(&flushLogTimer, 1, 500, 0); // us timer
} }
/** /**
@@ -42,5 +91,5 @@ void ICACHE_FLASH_ATTR serialInit(void)
*/ */
void ICACHE_FLASH_ATTR UART_HandleRxByte(char c) void ICACHE_FLASH_ATTR UART_HandleRxByte(char c)
{ {
ansi_parser(&c, 1); ansi_parser(c);
} }
+37
View File
@@ -0,0 +1,37 @@
//
// Created by MightyPork on 2017/08/19.
//
#ifndef ESP_VT100_FIRMWARE_SGR_H
#define ESP_VT100_FIRMWARE_SGR_H
enum SGR_CODES {
SGR_RESET = 0,
SGR_BOLD = 1,
SGR_FAINT = 2,
SGR_ITALIC = 3,
SGR_UNDERLINE = 4,
SGR_BLINK = 5,
SGR_BLINK_FAST = 6,
SGR_INVERSE = 7,
SGR_STRIKE = 9,
SGR_FRAKTUR = 20,
SGR_FG_START = 30,
SGR_FG_END = 37,
SGR_FG_DEFAULT = 39,
SGR_BG_START = 40,
SGR_BG_END = 47,
SGR_BG_DEFAULT = 49,
SGR_FG_BRT_START = 90,
SGR_FG_BRT_END = 97,
SGR_BG_BRT_START = 100,
SGR_BG_BRT_END = 107,
};
#define SGR_OFF(n) (20+(n))
#endif //ESP_VT100_FIRMWARE_SGR_H
+2
View File
@@ -12,6 +12,8 @@ SystemConfigBundle * const sysconf = &persist.current.sysconf;
void ICACHE_FLASH_ATTR void ICACHE_FLASH_ATTR
sysconf_apply_settings(void) sysconf_apply_settings(void)
{ {
// !!! Update to current version !!!
serialInit(); serialInit();
} }
+2
View File
@@ -10,11 +10,13 @@
// Size designed for the wifi config structure // Size designed for the wifi config structure
// Must be constant to avoid corrupting user config after upgrade // Must be constant to avoid corrupting user config after upgrade
#define SYSCONF_SIZE 200 #define SYSCONF_SIZE 200
#define SYSCONF_VERSION 0
typedef struct { typedef struct {
u32 uart_baudrate; u32 uart_baudrate;
u8 uart_parity; u8 uart_parity;
u8 uart_stopbits; u8 uart_stopbits;
u8 config_version;
} SystemConfigBundle; } SystemConfigBundle;
extern SystemConfigBundle * const sysconf; extern SystemConfigBundle * const sysconf;
+830
View File
@@ -0,0 +1,830 @@
/*
* File : uart.c
* Copyright (C) 2013 - 2016, Espressif Systems
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of version 3 of the GNU General Public License as
* published by the Free Software Foundation.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License along
* with this program. If not, see <http://www.gnu.org/licenses/>.
*/
#include <esp8266.h>
#include <uart_register.h>
#include "uart_asyncdrv.h-"
// UartDev is defined and initialized in rom code.
extern UartDevice UartDev;
struct UartBuffer {
uint32 UartBuffSize;
uint8 *pUartBuff;
uint8 *pInPos;
uint8 *pOutPos;
STATUS BuffState;
uint16 Space; //remanent space of the buffer
uint8 TcpControl;
struct UartBuffer *nextBuff;
};
struct UartRxBuff {
uint32 UartRxBuffSize;
uint8 *pUartRxBuff;
uint8 *pWritePos;
uint8 *pReadPos;
STATUS RxBuffState;
uint32 Space; //remanent space of the buffer
};
LOCAL struct UartBuffer* pTxBuffer = NULL;
LOCAL struct UartBuffer* pRxBuffer = NULL;
// Forward declare
#if UART_BUFF_EN
LOCAL void Uart_Buf_Cpy(struct UartBuffer* pCur, char* pdata , uint16 data_len);
void uart_buf_free(struct UartBuffer* pBuff);
void tx_buff_enq(char* pdata, uint16 data_len );
LOCAL void tx_fifo_insert(struct UartBuffer* pTxBuff, uint8 data_len, uint8 uart_no);
void tx_start_uart_buffer(uint8 uart_no);
uint16 rx_buff_deq(char* pdata, uint16 data_len );
void Uart_rx_buff_enq();
#endif
//void ICACHE_FLASH_ATTR uart_test_rx();
STATUS uart_tx_one_char(uint8 uart, uint8 TxChar);
STATUS uart_tx_one_char_no_wait(uint8 uart, uint8 TxChar);
void uart1_sendStr_no_wait(const char *str);
struct UartBuffer* UART_AsyncBufferInit(u32 size);
void uart_rx_intr_enable(uint8 uart_no);
void uart_rx_intr_disable(uint8 uart_no);
void uart0_tx_buffer(uint8 *buf, uint16 len);
void uart0_sendStr(const char *str);
/*uart demo with a system task, to output what uart receives*/
/*this is a example to process uart data from task,please change the priority to fit your application task if exists*/
/*it might conflict with your task, if so,please arrange the priority of different task, or combine it to a different event in the same task. */
#define uart_recvTaskPrio 0
#define uart_recvTaskQueueLen 10
os_event_t uart_recvTaskQueue[uart_recvTaskQueueLen];
#define DBG
#define DBG1 uart1_sendStr_no_wait
#define DBG2 os_printf
LOCAL void uart0_rx_intr_handler(void *para);
/******************************************************************************
* FunctionName : uart_config
* Description : Internal used function
* UART0 used for data TX/RX, RX buffer size is 0x100, interrupt enabled
* UART1 just used for debug output
* Parameters : uart_no, use UART0 or UART1 defined ahead
* Returns : NONE
*******************************************************************************/
LOCAL void ICACHE_FLASH_ATTR
uart_config(uint8 uart_no)
{
if (uart_no == UART1){
PIN_FUNC_SELECT(PERIPHS_IO_MUX_GPIO2_U, FUNC_U1TXD_BK);
}else{
/* rcv_buff size if 0x100 */
ETS_UART_INTR_ATTACH(uart0_rx_intr_handler, &(UartDev.rcv_buff));
PIN_PULLUP_DIS(PERIPHS_IO_MUX_U0TXD_U);
PIN_FUNC_SELECT(PERIPHS_IO_MUX_U0TXD_U, FUNC_U0TXD);
#if UART_HW_RTS
PIN_FUNC_SELECT(PERIPHS_IO_MUX_MTDO_U, FUNC_U0RTS); //HW FLOW CONTROL RTS PIN
#endif
#if UART_HW_CTS
PIN_FUNC_SELECT(PERIPHS_IO_MUX_MTCK_U, FUNC_U0CTS); //HW FLOW CONTROL CTS PIN
#endif
}
uart_div_modify(uart_no, UART_CLK_FREQ / (UartDev.baut_rate));//SET BAUDRATE
WRITE_PERI_REG(UART_CONF0(uart_no), ((UartDev.exist_parity & UART_PARITY_EN_M) << UART_PARITY_EN_S) //SET BIT AND PARITY MODE
| ((UartDev.parity & UART_PARITY_M) <<UART_PARITY_S )
| ((UartDev.stop_bits & UART_STOP_BIT_NUM) << UART_STOP_BIT_NUM_S)
| ((UartDev.data_bits & UART_BIT_NUM) << UART_BIT_NUM_S));
//clear rx and tx fifo,not ready
SET_PERI_REG_MASK(UART_CONF0(uart_no), UART_RXFIFO_RST | UART_TXFIFO_RST); //RESET FIFO
CLEAR_PERI_REG_MASK(UART_CONF0(uart_no), UART_RXFIFO_RST | UART_TXFIFO_RST);
if (uart_no == UART0){
//set rx fifo trigger
WRITE_PERI_REG(UART_CONF1(uart_no),
((100 & UART_RXFIFO_FULL_THRHD) << UART_RXFIFO_FULL_THRHD_S) |
#if UART_HW_RTS
((110 & UART_RX_FLOW_THRHD) << UART_RX_FLOW_THRHD_S) |
UART_RX_FLOW_EN | //enbale rx flow control
#endif
(0x02 & UART_RX_TOUT_THRHD) << UART_RX_TOUT_THRHD_S |
UART_RX_TOUT_EN|
((0x10 & UART_TXFIFO_EMPTY_THRHD)<<UART_TXFIFO_EMPTY_THRHD_S));//wjl
#if UART_HW_CTS
SET_PERI_REG_MASK( UART_CONF0(uart_no),UART_TX_FLOW_EN); //add this sentense to add a tx flow control via MTCK( CTS )
#endif
SET_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_TOUT_INT_ENA |UART_FRM_ERR_INT_ENA);
}else{
WRITE_PERI_REG(UART_CONF1(uart_no),((UartDev.rcv_buff.TrigLvl & UART_RXFIFO_FULL_THRHD) << UART_RXFIFO_FULL_THRHD_S));//TrigLvl default val == 1
}
//clear all interrupt
WRITE_PERI_REG(UART_INT_CLR(uart_no), 0xffff);
//enable rx_interrupt
SET_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_FULL_INT_ENA|UART_RXFIFO_OVF_INT_ENA);
}
/******************************************************************************
* FunctionName : uart1_tx_one_char
* Description : Internal used function
* Use uart1 interface to transfer one char
* Parameters : uint8 TxChar - character to tx
* Returns : OK
*******************************************************************************/
STATUS uart_tx_one_char(uint8 uart, uint8 TxChar)
{
while (true){
uint32 fifo_cnt = READ_PERI_REG(UART_STATUS(uart)) & (UART_TXFIFO_CNT<<UART_TXFIFO_CNT_S);
if ((fifo_cnt >> UART_TXFIFO_CNT_S & UART_TXFIFO_CNT) < 126) {
break;
}
}
WRITE_PERI_REG(UART_FIFO(uart) , TxChar);
return OK;
}
/******************************************************************************
* FunctionName : uart1_write_char
* Description : Internal used function
* Do some special deal while tx char is '\r' or '\n'
* Parameters : char c - character to tx
* Returns : NONE
*******************************************************************************/
LOCAL void ICACHE_FLASH_ATTR
uart1_write_char(char c)
{
if (c == '\n'){
uart_tx_one_char(UART1, '\r');
uart_tx_one_char(UART1, '\n');
}else if (c == '\r'){
}else{
uart_tx_one_char(UART1, c);
}
}
//os_printf output to fifo or to the tx buffer
LOCAL void ICACHE_FLASH_ATTR
uart0_write_char_no_wait(char c)
{
#if UART_BUFF_EN //send to uart0 fifo but do not wait
uint8 chr;
// if (c == '\n'){
// chr = '\r';
// tx_buff_enq(&chr, 1);
// chr = '\n';
// tx_buff_enq(&chr, 1);
// }else if (c == '\r'){
//
// }else{
tx_buff_enq(&c,1);
// }
#else //send to uart tx buffer
if (c == '\n'){
uart_tx_one_char_no_wait(UART0, '\r');
uart_tx_one_char_no_wait(UART0, '\n');
}else if (c == '\r'){
}
else{
uart_tx_one_char_no_wait(UART0, c);
}
#endif
}
/******************************************************************************
* FunctionName : uart0_tx_buffer
* Description : use uart0 to transfer buffer
* Parameters : uint8 *buf - point to send buffer
* uint16 len - buffer len
* Returns :
*******************************************************************************/
void ICACHE_FLASH_ATTR
uart0_tx_buffer(uint8 *buf, uint16 len)
{
uint16 i;
for (i = 0; i < len; i++)
{
uart_tx_one_char(UART0, buf[i]);
}
}
/******************************************************************************
* FunctionName : uart0_sendStr
* Description : use uart0 to transfer buffer
* Parameters : uint8 *buf - point to send buffer
* uint16 len - buffer len
* Returns :
*******************************************************************************/
void ICACHE_FLASH_ATTR
uart0_sendStr(const char *str)
{
while(*str){
uart_tx_one_char(UART0, *str++);
}
}
void at_port_print(const char *str) __attribute__((alias("uart0_sendStr")));
/******************************************************************************
* FunctionName : uart0_rx_intr_handler
* Description : Internal used function
* UART0 interrupt handler, add self handle code inside
* Parameters : void *para - point to ETS_UART_INTR_ATTACH's arg
* Returns : NONE
*******************************************************************************/
LOCAL void
uart0_rx_intr_handler(void *para)
{
/* uart0 and uart1 intr combine togther, when interrupt occur, see reg 0x3ff20020, bit2, bit0 represents
* uart1 and uart0 respectively
*/
uint8 RcvChar;
uint8 uart_no = UART0;//UartDev.buff_uart_no;
uint8 fifo_len = 0;
uint8 buf_idx = 0;
uint8 temp,cnt;
//RcvMsgBuff *pRxBuff = (RcvMsgBuff *)para;
/*ATTENTION:*/
/*IN NON-OS VERSION SDK, DO NOT USE "ICACHE_FLASH_ATTR" FUNCTIONS IN THE WHOLE HANDLER PROCESS*/
/*ALL THE FUNCTIONS CALLED IN INTERRUPT HANDLER MUST BE DECLARED IN RAM */
/*IF NOT , POST AN EVENT AND PROCESS IN SYSTEM TASK */
if(UART_FRM_ERR_INT_ST == (READ_PERI_REG(UART_INT_ST(uart_no)) & UART_FRM_ERR_INT_ST)){
DBG1("FRM_ERR\r\n");
WRITE_PERI_REG(UART_INT_CLR(uart_no), UART_FRM_ERR_INT_CLR);
}else if(UART_RXFIFO_FULL_INT_ST == (READ_PERI_REG(UART_INT_ST(uart_no)) & UART_RXFIFO_FULL_INT_ST)){
// Full interrupt - FIFO threshold reached
DBG("f");
uart_rx_intr_disable(UART0);
WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_FULL_INT_CLR);
system_os_post(uart_recvTaskPrio, 0, 0); // tell the handler
}else if(UART_RXFIFO_TOUT_INT_ST == (READ_PERI_REG(UART_INT_ST(uart_no)) & UART_RXFIFO_TOUT_INT_ST)){
// Timeout interrupt - Line idle for a while
DBG("t");
uart_rx_intr_disable(UART0);
WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_TOUT_INT_CLR);
system_os_post(uart_recvTaskPrio, 0, 0); // tell the handler
}else if(UART_TXFIFO_EMPTY_INT_ST == (READ_PERI_REG(UART_INT_ST(uart_no)) & UART_TXFIFO_EMPTY_INT_ST)){
DBG("e");
// TX fifo is empty, can send more.
/* to output uart data from uart buffer directly in empty interrupt handler*/
/*instead of processing in system event, in order not to wait for current task/function to quit */
/*ATTENTION:*/
/*IN NON-OS VERSION SDK, DO NOT USE "ICACHE_FLASH_ATTR" FUNCTIONS IN THE WHOLE HANDLER PROCESS*/
/*ALL THE FUNCTIONS CALLED IN INTERRUPT HANDLER MUST BE DECLARED IN RAM */
CLEAR_PERI_REG_MASK(UART_INT_ENA(UART0), UART_TXFIFO_EMPTY_INT_ENA);
#if UART_BUFF_EN
tx_start_uart_buffer(UART0);
#endif
//system_os_post(uart_recvTaskPrio, 1, 0);
WRITE_PERI_REG(UART_INT_CLR(uart_no), UART_TXFIFO_EMPTY_INT_CLR);
}else if(UART_RXFIFO_OVF_INT_ST == (READ_PERI_REG(UART_INT_ST(uart_no)) & UART_RXFIFO_OVF_INT_ST)){
WRITE_PERI_REG(UART_INT_CLR(uart_no), UART_RXFIFO_OVF_INT_CLR);
DBG1("RX OVF!!\r\n");
}
}
/******************************************************************************
* FunctionName : uart_init
* Description : user interface for init uart
* Parameters : UartBautRate uart0_br - uart0 bautrate
* UartBautRate uart1_br - uart1 bautrate
* Returns : NONE
*******************************************************************************/
#if UART_SELFTEST&UART_BUFF_EN
os_timer_t buff_timer_t;
void ICACHE_FLASH_ATTR
uart_test_rx()
{
uint8 uart_buf[128]={0};
uint16 len = 0;
len = rx_buff_deq(uart_buf, 128 );
tx_buff_enq(uart_buf,len);
}
#endif
LOCAL void ICACHE_FLASH_ATTR ///////
uart_recvTask(os_event_t *events)
{
if(events->sig == 0){
#if UART_BUFF_EN
Uart_rx_buff_enq();
#else
uint8 fifo_len = (READ_PERI_REG(UART_STATUS(UART0))>>UART_RXFIFO_CNT_S)&UART_RXFIFO_CNT;
uint8 d_tmp = 0;
uint8 idx=0;
for(idx=0;idx<fifo_len;idx++) {
d_tmp = READ_PERI_REG(UART_FIFO(UART0)) & 0xFF;
uart_tx_one_char(UART0, d_tmp);
}
WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_FULL_INT_CLR|UART_RXFIFO_TOUT_INT_CLR);
uart_rx_intr_enable(UART0);
#endif
}else if(events->sig == 1){
#if UART_BUFF_EN
//already move uart buffer output to uart empty interrupt
//tx_start_uart_buffer(UART0);
#else
#endif
}
}
void ICACHE_FLASH_ATTR
uart_init(UartBautRate uart0_br, UartBautRate uart1_br)
{
/*this is a example to process uart data from task,please change the priority to fit your application task if exists*/
system_os_task(uart_recvTask, uart_recvTaskPrio, uart_recvTaskQueue, uart_recvTaskQueueLen); //demo with a task to process the uart data
UartDev.baut_rate = uart0_br;
uart_config(UART0);
UartDev.baut_rate = uart1_br;
uart_config(UART1);
ETS_UART_INTR_ENABLE();
#if UART_BUFF_EN
pTxBuffer = UART_AsyncBufferInit(UART_TX_BUFFER_SIZE);
pRxBuffer = UART_AsyncBufferInit(UART_RX_BUFFER_SIZE);
#endif
/*option 1: use default print, output from uart0 , will wait some time if fifo is full */
//do nothing...
/*option 2: output from uart1,uart1 output will not wait , just for output debug info */
/*os_printf output uart data via uart1(GPIO2)*/
os_install_putc1((void *)uart1_write_char); //use this one to output debug information via uart1 //
/*option 3: output from uart0 will skip current byte if fifo is full now... */
/*see uart0_write_char_no_wait:you can output via a buffer or output directly */
/*os_printf output uart data via uart0 or uart buffer*/
//os_install_putc1((void *)uart0_write_char_no_wait); //use this to print via uart0
#if UART_SELFTEST&UART_BUFF_EN
os_timer_disarm(&buff_timer_t);
os_timer_setfn(&buff_timer_t, uart_test_rx , NULL); //a demo to process the data in uart rx buffer
os_timer_arm(&buff_timer_t,10,1);
#endif
}
//void ICACHE_FLASH_ATTR
//uart_reattach()
//{
// uart_init(BIT_RATE_115200, BIT_RATE_115200);
//}
/******************************************************************************
* FunctionName : uart_tx_one_char_no_wait
* Description : uart tx a single char without waiting for fifo
* Parameters : uint8 uart - uart port
* uint8 TxChar - char to tx
* Returns : STATUS
*******************************************************************************/
STATUS uart_tx_one_char_no_wait(uint8 uart, uint8 TxChar)
{
uint8 fifo_cnt = (( READ_PERI_REG(UART_STATUS(uart))>>UART_TXFIFO_CNT_S)& UART_TXFIFO_CNT);
if (fifo_cnt < 126) {
WRITE_PERI_REG(UART_FIFO(uart) , TxChar);
}
return OK;
}
//STATUS uart0_tx_one_char_no_wait(uint8 TxChar)
//{
// uint8 fifo_cnt = (( READ_PERI_REG(UART_STATUS(UART0))>>UART_TXFIFO_CNT_S)& UART_TXFIFO_CNT);
// if (fifo_cnt < 126) {
// WRITE_PERI_REG(UART_FIFO(UART0) , TxChar);
// }
// return OK;
//}
/******************************************************************************
* FunctionName : uart1_sendStr_no_wait
* Description : uart tx a string without waiting for every char, used for print debug info which can be lost
* Parameters : const char *str - string to be sent
* Returns : NONE
*******************************************************************************/
void uart1_sendStr_no_wait(const char *str)
{
while(*str){
uart_tx_one_char_no_wait(UART1, *str++);
}
}
#if UART_BUFF_EN
/******************************************************************************
* FunctionName : Uart_Buf_Init
* Description : tx buffer enqueue: fill a first linked buffer
* Parameters : char *pdata - data point to be enqueue
* Returns : NONE
*******************************************************************************/
struct UartBuffer* ICACHE_FLASH_ATTR
UART_AsyncBufferInit(uint32 buf_size)
{
uint32 heap_size = system_get_free_heap_size();
if(heap_size <=buf_size){
DBG1("no buf for uart\n\r");
return NULL;
}else{
DBG("test heap size: %d\n\r",heap_size);
struct UartBuffer* pBuff = (struct UartBuffer* )os_malloc(sizeof(struct UartBuffer));
pBuff->UartBuffSize = buf_size;
pBuff->pUartBuff = (uint8*)os_malloc(pBuff->UartBuffSize);
pBuff->pInPos = pBuff->pUartBuff;
pBuff->pOutPos = pBuff->pUartBuff;
pBuff->Space = (uint16) pBuff->UartBuffSize;
pBuff->BuffState = OK;
pBuff->nextBuff = NULL;
pBuff->TcpControl = RUN;
return pBuff;
}
}
//copy uart buffer
LOCAL void Uart_Buf_Cpy(struct UartBuffer* pCur, char* pdata , uint16 data_len)
{
if(data_len == 0) return;
uint16 tail_len = (uint16) (pCur->pUartBuff + pCur->UartBuffSize - pCur->pInPos);
if(tail_len >= data_len){ //do not need to loop back the queue
os_memcpy(pCur->pInPos , pdata , data_len );
pCur->pInPos += ( data_len );
pCur->pInPos = (pCur->pUartBuff + (pCur->pInPos - pCur->pUartBuff) % pCur->UartBuffSize );
pCur->Space -=data_len;
}else{
os_memcpy(pCur->pInPos, pdata, tail_len);
pCur->pInPos += ( tail_len );
pCur->pInPos = (pCur->pUartBuff + (pCur->pInPos - pCur->pUartBuff) % pCur->UartBuffSize );
pCur->Space -=tail_len;
os_memcpy(pCur->pInPos, pdata+tail_len , data_len-tail_len);
pCur->pInPos += ( data_len-tail_len );
pCur->pInPos = (pCur->pUartBuff + (pCur->pInPos - pCur->pUartBuff) % pCur->UartBuffSize );
pCur->Space -=( data_len-tail_len);
}
}
/******************************************************************************
* FunctionName : uart_buf_free
* Description : deinit of the tx buffer
* Parameters : struct UartBuffer* pTxBuff - tx buffer struct pointer
* Returns : NONE
*******************************************************************************/
void ICACHE_FLASH_ATTR
uart_buf_free(struct UartBuffer* pBuff)
{
os_free(pBuff->pUartBuff);
os_free(pBuff);
}
//rx buffer dequeue
uint16 ICACHE_FLASH_ATTR
rx_buff_deq(char* pdata, uint16 data_len)
{
uint16 buf_len = (pRxBuffer->UartBuffSize- pRxBuffer->Space);
uint16 tail_len = pRxBuffer->pUartBuff + pRxBuffer->UartBuffSize - pRxBuffer->pOutPos ;
uint16 len_tmp = 0;
len_tmp = ((data_len > buf_len)?buf_len:data_len);
if(pRxBuffer->pOutPos <= pRxBuffer->pInPos){
os_memcpy(pdata, pRxBuffer->pOutPos,len_tmp);
pRxBuffer->pOutPos+= len_tmp;
pRxBuffer->Space += len_tmp;
}else{
if(len_tmp>tail_len){
os_memcpy(pdata, pRxBuffer->pOutPos, tail_len);
pRxBuffer->pOutPos += tail_len;
pRxBuffer->pOutPos = (pRxBuffer->pUartBuff + (pRxBuffer->pOutPos- pRxBuffer->pUartBuff) % pRxBuffer->UartBuffSize );
pRxBuffer->Space += tail_len;
os_memcpy(pdata+tail_len , pRxBuffer->pOutPos, len_tmp-tail_len);
pRxBuffer->pOutPos+= ( len_tmp-tail_len );
pRxBuffer->pOutPos= (pRxBuffer->pUartBuff + (pRxBuffer->pOutPos- pRxBuffer->pUartBuff) % pRxBuffer->UartBuffSize );
pRxBuffer->Space +=( len_tmp-tail_len);
}else{
//os_printf("case 3 in rx deq\n\r");
os_memcpy(pdata, pRxBuffer->pOutPos, len_tmp);
pRxBuffer->pOutPos += len_tmp;
pRxBuffer->pOutPos = (pRxBuffer->pUartBuff + (pRxBuffer->pOutPos- pRxBuffer->pUartBuff) % pRxBuffer->UartBuffSize );
pRxBuffer->Space += len_tmp;
}
}
if(pRxBuffer->Space >= UART_FIFO_LEN){
uart_rx_intr_enable(UART0);
}
return len_tmp;
}
//move data from uart fifo to rx buffer
void Uart_rx_buff_enq()
{
uint8 fifo_len,buf_idx;
uint8 fifo_data;
#if 1
fifo_len = (READ_PERI_REG(UART_STATUS(UART0))>>UART_RXFIFO_CNT_S)&UART_RXFIFO_CNT;
if(fifo_len >= pRxBuffer->Space){
os_printf("buf full!!!\n\r");
}else{
buf_idx=0;
while(buf_idx < fifo_len){
buf_idx++;
fifo_data = READ_PERI_REG(UART_FIFO(UART0)) & 0xFF;
*(pRxBuffer->pInPos++) = fifo_data;
if(pRxBuffer->pInPos == (pRxBuffer->pUartBuff + pRxBuffer->UartBuffSize)){
pRxBuffer->pInPos = pRxBuffer->pUartBuff;
}
}
pRxBuffer->Space -= fifo_len ;
if(pRxBuffer->Space >= UART_FIFO_LEN){
//os_printf("after rx enq buf enough\n\r");
uart_rx_intr_enable(UART0);
}
}
#endif
}
//fill the uart tx buffer
void ICACHE_FLASH_ATTR
tx_buff_enq(char* pdata, uint16 data_len )
{
if(pTxBuffer == NULL){
DBG1("\n\rnull, create buffer struct\n\r");
pTxBuffer = UART_AsyncBufferInit(UART_TX_BUFFER_SIZE);
if(pTxBuffer!= NULL){
Uart_Buf_Cpy(pTxBuffer , pdata, data_len );
}else{
DBG1("uart tx MALLOC no buf \n\r");
}
}else{
if(data_len <= pTxBuffer->Space){
Uart_Buf_Cpy(pTxBuffer , pdata, data_len);
}else{
DBG1("UART TX BUF FULL!!!!\n\r");
}
}
#if 0
if(pTxBuffer->Space <= URAT_TX_LOWER_SIZE){
set_tcp_block();
}
#endif
SET_PERI_REG_MASK(UART_CONF1(UART0), (UART_TX_EMPTY_THRESH_VAL & UART_TXFIFO_EMPTY_THRHD)<<UART_TXFIFO_EMPTY_THRHD_S);
SET_PERI_REG_MASK(UART_INT_ENA(UART0), UART_TXFIFO_EMPTY_INT_ENA);
}
//--------------------------------
LOCAL void tx_fifo_insert(struct UartBuffer* pTxBuff, uint8 data_len, uint8 uart_no)
{
uint8 i;
for(i = 0; i<data_len;i++){
WRITE_PERI_REG(UART_FIFO(uart_no) , *(pTxBuff->pOutPos++));
if(pTxBuff->pOutPos == (pTxBuff->pUartBuff + pTxBuff->UartBuffSize)){
pTxBuff->pOutPos = pTxBuff->pUartBuff;
}
}
pTxBuff->pOutPos = (pTxBuff->pUartBuff + (pTxBuff->pOutPos - pTxBuff->pUartBuff) % pTxBuff->UartBuffSize );
pTxBuff->Space += data_len;
}
/******************************************************************************
* FunctionName : tx_start_uart_buffer
* Description : get data from the tx buffer and fill the uart tx fifo, co-work with the uart fifo empty interrupt
* Parameters : uint8 uart_no - uart port num
* Returns : NONE
*******************************************************************************/
void tx_start_uart_buffer(uint8 uart_no)
{
uint8 tx_fifo_len = (READ_PERI_REG(UART_STATUS(uart_no))>>UART_TXFIFO_CNT_S)&UART_TXFIFO_CNT;
uint8 fifo_remain = UART_FIFO_LEN - tx_fifo_len ;
uint8 len_tmp;
uint16 tail_ptx_len,head_ptx_len,data_len;
//struct UartBuffer* pTxBuff = *get_buff_prt();
if(pTxBuffer){
data_len = (pTxBuffer->UartBuffSize - pTxBuffer->Space);
if(data_len > fifo_remain){
len_tmp = fifo_remain;
tx_fifo_enq(pTxBuffer, len_tmp, uart_no);
SET_PERI_REG_MASK(UART_INT_ENA(UART0), UART_TXFIFO_EMPTY_INT_ENA);
}else{
len_tmp = data_len;
tx_fifo_enq(pTxBuffer, len_tmp, uart_no);
}
}else{
DBG1("pTxBuff null \n\r");
}
}
#endif
void uart_rx_intr_disable(uint8 uart_no)
{
#if 1
CLEAR_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_FULL_INT_ENA|UART_RXFIFO_TOUT_INT_ENA);
#else
ETS_UART_INTR_DISABLE();
#endif
}
void uart_rx_intr_enable(uint8 uart_no)
{
#if 1
SET_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_FULL_INT_ENA|UART_RXFIFO_TOUT_INT_ENA);
#else
ETS_UART_INTR_ENABLE();
#endif
}
//========================================================
LOCAL void
uart0_write_char(char c)
{
if (c == '\n') {
uart_tx_one_char(UART0, '\r');
uart_tx_one_char(UART0, '\n');
} else if (c == '\r') {
} else {
uart_tx_one_char(UART0, c);
}
}
void ICACHE_FLASH_ATTR
UART_SetWordLength(uint8 uart_no, UartBitsNum4Char len)
{
SET_PERI_REG_BITS(UART_CONF0(uart_no),UART_BIT_NUM,len,UART_BIT_NUM_S);
}
void ICACHE_FLASH_ATTR
UART_SetStopBits(uint8 uart_no, UartStopBitsNum bit_num)
{
SET_PERI_REG_BITS(UART_CONF0(uart_no),UART_STOP_BIT_NUM,bit_num,UART_STOP_BIT_NUM_S);
}
void ICACHE_FLASH_ATTR
UART_SetLineInverse(uint8 uart_no, UART_LineLevelInverse inverse_mask)
{
CLEAR_PERI_REG_MASK(UART_CONF0(uart_no), UART_LINE_INV_MASK);
SET_PERI_REG_MASK(UART_CONF0(uart_no), inverse_mask);
}
void ICACHE_FLASH_ATTR
UART_SetParity(uint8 uart_no, UartParityMode Parity_mode)
{
CLEAR_PERI_REG_MASK(UART_CONF0(uart_no), UART_PARITY |UART_PARITY_EN);
if(Parity_mode==NONE_BITS){
}else{
SET_PERI_REG_MASK(UART_CONF0(uart_no), Parity_mode|UART_PARITY_EN);
}
}
void ICACHE_FLASH_ATTR
UART_SetBaudrate(uint8 uart_no,uint32 baud_rate)
{
uart_div_modify(uart_no, UART_CLK_FREQ /baud_rate);
}
void ICACHE_FLASH_ATTR
UART_SetFlowCtrl(uint8 uart_no,UART_HwFlowCtrl flow_ctrl,uint8 rx_thresh)
{
if(flow_ctrl&USART_HardwareFlowControl_RTS){
PIN_FUNC_SELECT(PERIPHS_IO_MUX_MTDO_U, FUNC_U0RTS);
SET_PERI_REG_BITS(UART_CONF1(uart_no),UART_RX_FLOW_THRHD,rx_thresh,UART_RX_FLOW_THRHD_S);
SET_PERI_REG_MASK(UART_CONF1(uart_no), UART_RX_FLOW_EN);
}else{
CLEAR_PERI_REG_MASK(UART_CONF1(uart_no), UART_RX_FLOW_EN);
}
if(flow_ctrl&USART_HardwareFlowControl_CTS){
PIN_FUNC_SELECT(PERIPHS_IO_MUX_MTCK_U, FUNC_UART0_CTS);
SET_PERI_REG_MASK(UART_CONF0(uart_no), UART_TX_FLOW_EN);
}else{
CLEAR_PERI_REG_MASK(UART_CONF0(uart_no), UART_TX_FLOW_EN);
}
}
void ICACHE_FLASH_ATTR
UART_WaitTxFifoEmpty(uint8 uart_no , uint32 time_out_us) //do not use if tx flow control enabled
{
uint32 t_s = system_get_time();
while (READ_PERI_REG(UART_STATUS(uart_no)) & (UART_TXFIFO_CNT << UART_TXFIFO_CNT_S)){
if(( system_get_time() - t_s )> time_out_us){
break;
}
WRITE_PERI_REG(0X60000914, 0X73);//WTD
}
}
bool ICACHE_FLASH_ATTR
UART_CheckOutputFinished(uint8 uart_no, uint32 time_out_us)
{
uint32 t_start = system_get_time();
uint8 tx_fifo_len;
uint32 tx_buff_len;
while(1){
tx_fifo_len =( (READ_PERI_REG(UART_STATUS(uart_no))>>UART_TXFIFO_CNT_S)&UART_TXFIFO_CNT);
if(pTxBuffer){
tx_buff_len = ((pTxBuffer->UartBuffSize)-(pTxBuffer->Space));
}else{
tx_buff_len = 0;
}
if( tx_fifo_len==0 && tx_buff_len==0){
return TRUE;
}
if( system_get_time() - t_start > time_out_us){
return FALSE;
}
WRITE_PERI_REG(0X60000914, 0X73);//WTD
}
}
void ICACHE_FLASH_ATTR
UART_ResetFifo(uint8 uart_no)
{
SET_PERI_REG_MASK(UART_CONF0(uart_no), UART_RXFIFO_RST | UART_TXFIFO_RST);
CLEAR_PERI_REG_MASK(UART_CONF0(uart_no), UART_RXFIFO_RST | UART_TXFIFO_RST);
}
void ICACHE_FLASH_ATTR
UART_ClearIntrStatus(uint8 uart_no,uint32 clr_mask)
{
WRITE_PERI_REG(UART_INT_CLR(uart_no), clr_mask);
}
void ICACHE_FLASH_ATTR
UART_SetIntrEna(uint8 uart_no,uint32 ena_mask)
{
SET_PERI_REG_MASK(UART_INT_ENA(uart_no), ena_mask);
}
void ICACHE_FLASH_ATTR
UART_SetPrintPort(uint8 uart_no)
{
if(uart_no==1){
os_install_putc1(uart1_write_char);
}else{
/*option 1: do not wait if uart fifo is full,drop current character*/
os_install_putc1(uart0_write_char_no_wait);
/*option 2: wait for a while if uart fifo is full*/
os_install_putc1(uart0_write_char);
}
}
//========================================================
//
///*test code*/
//void ICACHE_FLASH_ATTR
//uart_init_2(UartBautRate uart0_br, UartBautRate uart1_br)
//{
// // rom use 74880 baut_rate, here reinitialize
// UartDev.baut_rate = uart0_br;
// UartDev.exist_parity = STICK_PARITY_EN;
// UartDev.parity = EVEN_BITS;
// UartDev.stop_bits = ONE_STOP_BIT;
// UartDev.data_bits = EIGHT_BITS;
//
// uart_config(UART0);
// UartDev.baut_rate = uart1_br;
// uart_config(UART1);
// ETS_UART_INTR_ENABLE();
//
// // install uart1 putc callback
// os_install_putc1((void *)uart1_write_char);//print output at UART1
//}
//
//
+178
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@@ -0,0 +1,178 @@
/*
* File : uart.h
* Copyright (C) 2013 - 2016, Espressif Systems
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of version 3 of the GNU General Public License as
* published by the Free Software Foundation.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License along
* with this program. If not, see <http://www.gnu.org/licenses/>.
*/
#ifndef UART_APP_H
#define UART_APP_H
#include <esp8266.h>
#define UART_TX_BUFFER_SIZE 512 //Ring buffer length of tx buffer
#define UART_RX_BUFFER_SIZE 512 //Ring buffer length of rx buffer
#define UART_BUFF_EN 1 //use uart buffer , FOR UART0
#define UART_SELFTEST 0 //set 1:enable the loop test demo for uart buffer, FOR UART0
#define UART_HW_RTS 0 //set 1: enable uart hw flow control RTS, PIN MTDO, FOR UART0
#define UART_HW_CTS 0 //set1: enable uart hw flow contrl CTS , PIN MTCK, FOR UART0
#define UART0 0
#define UART1 1
typedef enum {
FIVE_BITS = 0x0,
SIX_BITS = 0x1,
SEVEN_BITS = 0x2,
EIGHT_BITS = 0x3
} UartBitsNum4Char;
typedef enum {
ONE_STOP_BIT = 0x1,
ONE_HALF_STOP_BIT = 0x2,
TWO_STOP_BIT = 0x3
} UartStopBitsNum;
typedef enum {
NONE_BITS = 0x2,
ODD_BITS = 1,
EVEN_BITS = 0
} UartParityMode;
typedef enum {
STICK_PARITY_DIS = 0,
STICK_PARITY_EN = 1
} UartExistParity;
typedef enum {
UART_None_Inverse = 0x0,
UART_Rxd_Inverse = UART_RXD_INV,
UART_CTS_Inverse = UART_CTS_INV,
UART_Txd_Inverse = UART_TXD_INV,
UART_RTS_Inverse = UART_RTS_INV,
} UART_LineLevelInverse;
typedef enum {
BIT_RATE_300 = 300,
BIT_RATE_600 = 600,
BIT_RATE_1200 = 1200,
BIT_RATE_2400 = 2400,
BIT_RATE_4800 = 4800,
BIT_RATE_9600 = 9600,
BIT_RATE_19200 = 19200,
BIT_RATE_38400 = 38400,
BIT_RATE_57600 = 57600,
BIT_RATE_74880 = 74880,
BIT_RATE_115200 = 115200,
BIT_RATE_230400 = 230400,
BIT_RATE_460800 = 460800,
BIT_RATE_921600 = 921600,
BIT_RATE_1843200 = 1843200,
BIT_RATE_3686400 = 3686400,
} UartBautRate;
typedef enum {
NONE_CTRL,
HARDWARE_CTRL,
XON_XOFF_CTRL
} UartFlowCtrl;
typedef enum {
USART_HardwareFlowControl_None = 0x0,
USART_HardwareFlowControl_RTS = 0x1,
USART_HardwareFlowControl_CTS = 0x2,
USART_HardwareFlowControl_CTS_RTS = 0x3
} UART_HwFlowCtrl;
typedef enum {
EMPTY,
UNDER_WRITE,
WRITE_OVER
} RcvMsgBuffState;
typedef struct {
uint32 RcvBuffSize;
uint8 *pRcvMsgBuff;
uint8 *pWritePos;
uint8 *pReadPos;
uint8 TrigLvl; //JLU: may need to pad
RcvMsgBuffState BuffState;
} RcvMsgBuff;
typedef struct {
uint32 TrxBuffSize;
uint8 *pTrxBuff;
} TrxMsgBuff;
typedef enum {
BAUD_RATE_DET,
WAIT_SYNC_FRM,
SRCH_MSG_HEAD,
RCV_MSG_BODY,
RCV_ESC_CHAR,
} RcvMsgState;
typedef struct {
UartBautRate baut_rate;
UartBitsNum4Char data_bits;
UartExistParity exist_parity;
UartParityMode parity;
UartStopBitsNum stop_bits;
UartFlowCtrl flow_ctrl;
RcvMsgBuff rcv_buff;
TrxMsgBuff trx_buff;
RcvMsgState rcv_state;
int received;
int buff_uart_no; //indicate which uart use tx/rx buffer
} UartDevice;
void uart_init(UartBautRate uart0_br, UartBautRate uart1_br);
///////////////////////////////////////
#define UART_FIFO_LEN 128 //define the tx fifo length
#define UART_TX_EMPTY_THRESH_VAL 0x10
typedef enum {
RUN = 0,
BLOCK = 1,
} TCPState;
//==============================================
#define FUNC_UART0_CTS 4
#define FUNC_U0CTS 4
#define FUNC_U1TXD_BK 2
#define UART_LINE_INV_MASK (0x3f<<19)
void UART_SetWordLength(uint8 uart_no, UartBitsNum4Char len);
void UART_SetStopBits(uint8 uart_no, UartStopBitsNum bit_num);
void UART_SetLineInverse(uint8 uart_no, UART_LineLevelInverse inverse_mask);
void UART_SetParity(uint8 uart_no, UartParityMode Parity_mode);
void UART_SetBaudrate(uint8 uart_no, uint32 baud_rate);
void UART_SetFlowCtrl(uint8 uart_no, UART_HwFlowCtrl flow_ctrl, uint8 rx_thresh);
void UART_WaitTxFifoEmpty(uint8 uart_no, uint32 time_out_us); //do not use if tx flow control enabled
void UART_ResetFifo(uint8 uart_no);
void UART_ClearIntrStatus(uint8 uart_no, uint32 clr_mask);
void UART_SetIntrEna(uint8 uart_no, uint32 ena_mask);
void UART_SetPrintPort(uint8 uart_no);
bool UART_CheckOutputFinished(uint8 uart_no, uint32 time_out_us);
//==============================================
// Buffer functions
uint16 rx_buff_deq(char* pdata, uint16 data_len);
void tx_buff_enq(char* pdata, uint16 data_len);
#endif
+259
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@@ -0,0 +1,259 @@
//
// Created by MightyPork on 2017/08/24.
//
#include "uart_buffer.h"
#include "uart_driver.h"
#include "uart_handler.h"
#include <esp8266.h>
#include <uart_register.h>
#define UART_TX_BUFFER_SIZE 256 //Ring buffer length of tx buffer
#define UART_RX_BUFFER_SIZE 512 //Ring buffer length of rx buffer
struct UartBuffer {
uint32 UartBuffSize;
uint8 *pUartBuff;
uint8 *pInPos;
uint8 *pOutPos;
uint16 Space;
};
static struct UartBuffer *pTxBuffer = NULL;
static struct UartBuffer *pRxBuffer = NULL;
static struct UartBuffer *UART_AsyncBufferInit(uint32 buf_size);
void ICACHE_FLASH_ATTR UART_AllocBuffers(void)
{
pTxBuffer = UART_AsyncBufferInit(UART_TX_BUFFER_SIZE);
pRxBuffer = UART_AsyncBufferInit(UART_RX_BUFFER_SIZE);
}
/******************************************************************************
* FunctionName : Uart_Buf_Init
* Description : tx buffer enqueue: fill a first linked buffer
* Parameters : char *pdata - data point to be enqueue
* Returns : NONE
*******************************************************************************/
static struct UartBuffer *ICACHE_FLASH_ATTR
UART_AsyncBufferInit(uint32 buf_size)
{
uint32 heap_size = system_get_free_heap_size();
if (heap_size <= buf_size) {
error("uart buf malloc fail, out of memory");
return NULL;
}
else {
struct UartBuffer *pBuff = (struct UartBuffer *) malloc(sizeof(struct UartBuffer));
pBuff->UartBuffSize = buf_size;
pBuff->pUartBuff = (uint8 *) malloc(pBuff->UartBuffSize);
pBuff->pInPos = pBuff->pUartBuff;
pBuff->pOutPos = pBuff->pUartBuff;
pBuff->Space = (uint16) pBuff->UartBuffSize;
return pBuff;
}
}
/**
* Copy data onto Buffer
* @param pCur - buffer
* @param pdata - data src
* @param data_len - data len
*/
static void UART_WriteToAsyncBuffer(struct UartBuffer *pCur, const char *pdata, uint16 data_len)
{
if (data_len == 0) return;
uint16 tail_len = (uint16) (pCur->pUartBuff + pCur->UartBuffSize - pCur->pInPos);
if (tail_len >= data_len) { //do not need to loop back the queue
memcpy(pCur->pInPos, pdata, data_len);
pCur->pInPos += (data_len);
pCur->pInPos = (pCur->pUartBuff + (pCur->pInPos - pCur->pUartBuff) % pCur->UartBuffSize);
pCur->Space -= data_len;
}
else {
memcpy(pCur->pInPos, pdata, tail_len);
pCur->pInPos += (tail_len);
pCur->pInPos = (pCur->pUartBuff + (pCur->pInPos - pCur->pUartBuff) % pCur->UartBuffSize);
pCur->Space -= tail_len;
memcpy(pCur->pInPos, pdata + tail_len, data_len - tail_len);
pCur->pInPos += (data_len - tail_len);
pCur->pInPos = (pCur->pUartBuff + (pCur->pInPos - pCur->pUartBuff) % pCur->UartBuffSize);
pCur->Space -= (data_len - tail_len);
}
}
/******************************************************************************
* FunctionName : uart_buf_free
* Description : deinit of the tx buffer
* Parameters : struct UartBuffer* pTxBuff - tx buffer struct pointer
* Returns : NONE
*******************************************************************************/
void ICACHE_FLASH_ATTR UART_FreeAsyncBuffer(struct UartBuffer *pBuff)
{
free(pBuff->pUartBuff);
free(pBuff);
}
u16 ICACHE_FLASH_ATTR UART_AsyncRxCount(void)
{
return (u16) (pRxBuffer->UartBuffSize - pRxBuffer->Space);
}
/**
* Retrieve some data from the RX buffer
* @param pdata - target
* @param data_len - max data to retrieve
* @return real nr of bytes retrieved
*/
uint16 ICACHE_FLASH_ATTR
UART_ReadAsync(char *pdata, uint16 data_len)
{
uint16 buf_len = (uint16) (pRxBuffer->UartBuffSize - pRxBuffer->Space);
uint16 tail_len = (uint16) (pRxBuffer->pUartBuff + pRxBuffer->UartBuffSize - pRxBuffer->pOutPos);
uint16 len_tmp = 0;
len_tmp = ((data_len > buf_len) ? buf_len : data_len);
if (pRxBuffer->pOutPos <= pRxBuffer->pInPos) {
memcpy(pdata, pRxBuffer->pOutPos, len_tmp);
pRxBuffer->pOutPos += len_tmp;
pRxBuffer->Space += len_tmp;
}
else {
if (len_tmp > tail_len) {
memcpy(pdata, pRxBuffer->pOutPos, tail_len);
pRxBuffer->pOutPos += tail_len;
pRxBuffer->pOutPos = (pRxBuffer->pUartBuff +
(pRxBuffer->pOutPos - pRxBuffer->pUartBuff) % pRxBuffer->UartBuffSize);
pRxBuffer->Space += tail_len;
memcpy(pdata + tail_len, pRxBuffer->pOutPos, len_tmp - tail_len);
pRxBuffer->pOutPos += (len_tmp - tail_len);
pRxBuffer->pOutPos = (pRxBuffer->pUartBuff +
(pRxBuffer->pOutPos - pRxBuffer->pUartBuff) % pRxBuffer->UartBuffSize);
pRxBuffer->Space += (len_tmp - tail_len);
}
else {
//os_printf("case 3 in rx deq\n\r");
memcpy(pdata, pRxBuffer->pOutPos, len_tmp);
pRxBuffer->pOutPos += len_tmp;
pRxBuffer->pOutPos = (pRxBuffer->pUartBuff +
(pRxBuffer->pOutPos - pRxBuffer->pUartBuff) % pRxBuffer->UartBuffSize);
pRxBuffer->Space += len_tmp;
}
}
// this maybe shouldnt be here??
if (pRxBuffer->Space >= UART_FIFO_LEN) {
uart_rx_intr_enable(UART0);
}
return len_tmp;
}
//move data from uart fifo to rx buffer
void UART_RxFifoCollect(void)
{
uint8 fifo_len, buf_idx;
uint8 fifo_data;
fifo_len = (uint8) ((READ_PERI_REG(UART_STATUS(UART0)) >> UART_RXFIFO_CNT_S) & UART_RXFIFO_CNT);
if (fifo_len >= pRxBuffer->Space) {
UART_WriteChar(UART1, '%', 100);
}
else {
buf_idx = 0;
while (buf_idx < fifo_len) {
buf_idx++;
fifo_data = (uint8) (READ_PERI_REG(UART_FIFO(UART0)) & 0xFF);
*(pRxBuffer->pInPos++) = fifo_data;
if (pRxBuffer->pInPos == (pRxBuffer->pUartBuff + pRxBuffer->UartBuffSize)) {
pRxBuffer->pInPos = pRxBuffer->pUartBuff;
}
}
pRxBuffer->Space -= fifo_len;
if (pRxBuffer->Space >= UART_FIFO_LEN) {
uart_rx_intr_enable(UART0);
}
}
}
/**
* Schedule data to be sent
* @param pdata
* @param data_len - can be -1 for strlen
*/
void ICACHE_FLASH_ATTR
UART_SendAsync(const char *pdata, int16_t data_len)
{
u16 real_len = (u16) data_len;
if (data_len <= 0) real_len = (u16) strlen(pdata);
// if (pTxBuffer == NULL) {
// printf("init tx buf\n\r");
// pTxBuffer = UART_AsyncBufferInit(UART_TX_BUFFER_SIZE);
// if (pTxBuffer != NULL) {
// UART_WriteToAsyncBuffer(pTxBuffer, pdata, real_len);
// }
// else {
// printf("tx alloc fail\r\n");
// }
// }
// else {
if (real_len <= pTxBuffer->Space) {
UART_WriteToAsyncBuffer(pTxBuffer, pdata, real_len);
}
else {
UART_WriteChar(UART1, '^', 100);
}
// }
// Here we enable TX empty interrupt that will take care of sending the content
SET_PERI_REG_MASK(UART_CONF1(UART0), (UART_TX_EMPTY_THRESH_VAL & UART_TXFIFO_EMPTY_THRHD) << UART_TXFIFO_EMPTY_THRHD_S);
SET_PERI_REG_MASK(UART_INT_ENA(UART0), UART_TXFIFO_EMPTY_INT_ENA);
}
//--------------------------------
static void UART_TxFifoEnq(struct UartBuffer *pTxBuff, uint8 data_len, uint8 uart_no)
{
uint8 i;
for (i = 0; i < data_len; i++) {
WRITE_PERI_REG(UART_FIFO(uart_no), *(pTxBuff->pOutPos++));
if (pTxBuff->pOutPos == (pTxBuff->pUartBuff + pTxBuff->UartBuffSize)) {
pTxBuff->pOutPos = pTxBuff->pUartBuff;
}
}
pTxBuff->pOutPos = (pTxBuff->pUartBuff + (pTxBuff->pOutPos - pTxBuff->pUartBuff) % pTxBuff->UartBuffSize);
pTxBuff->Space += data_len;
}
/******************************************************************************
* FunctionName : TxFromBuffer
* Description : get data from the tx buffer and fill the uart tx fifo, co-work with the uart fifo empty interrupt
* Parameters : uint8 uart_no - uart port num
* Returns : NONE
*******************************************************************************/
void UART_DispatchFromTxBuffer(uint8 uart_no)
{
const uint8 tx_fifo_len = (uint8) ((READ_PERI_REG(UART_STATUS(uart_no)) >> UART_TXFIFO_CNT_S) & UART_TXFIFO_CNT);
const uint8 fifo_remain = (uint8) (UART_FIFO_LEN - tx_fifo_len);
uint8 len_tmp;
uint16 data_len;
// if (pTxBuffer) {
data_len = (uint8) (pTxBuffer->UartBuffSize - pTxBuffer->Space);
if (data_len > fifo_remain) {
len_tmp = fifo_remain;
UART_TxFifoEnq(pTxBuffer, len_tmp, uart_no);
SET_PERI_REG_MASK(UART_INT_ENA(UART0), UART_TXFIFO_EMPTY_INT_ENA);
}
else {
len_tmp = (uint8) data_len;
UART_TxFifoEnq(pTxBuffer, len_tmp, uart_no);
}
// }
// else {
// error("pTxBuff null \n\r");
// }
}
+26
View File
@@ -0,0 +1,26 @@
//
// Created by MightyPork on 2017/08/24.
//
#ifndef ESP_VT100_FIRMWARE_UART_BUFFER_H
#define ESP_VT100_FIRMWARE_UART_BUFFER_H
#include <esp8266.h>
// the init func
void UART_AllocBuffers(void);
// read from rx buffer
uint16 UART_ReadAsync(char *pdata, uint16 data_len);
// write to tx buffer
void UART_SendAsync(const char *pdata, int16_t data_len);
//move data from uart fifo to rx buffer
void UART_RxFifoCollect(void);
//move data from uart tx buffer to fifo
void UART_DispatchFromTxBuffer(uint8 uart_no);
u16 UART_AsyncRxCount(void);
#endif //ESP_VT100_FIRMWARE_UART_BUFFER_H
+2 -2
View File
@@ -84,7 +84,7 @@ bool ICACHE_FLASH_ATTR UART_CheckOutputFinished(UARTn uart_no, uint32 time_out_u
uint8 tx_fifo_len; uint8 tx_fifo_len;
while (1) { while (1) {
tx_fifo_len = UART_TxQueLen(uart_no); tx_fifo_len = UART_TxFifoCount(uart_no);
// TODO If using output circbuf, check if empty // TODO If using output circbuf, check if empty
@@ -162,7 +162,7 @@ STATUS UART_WriteChar(UARTn uart_no, uint8 c, uint32 timeout_us)
uint32 t_s = system_get_time(); uint32 t_s = system_get_time();
while ((system_get_time() - t_s) < timeout_us) { while ((system_get_time() - t_s) < timeout_us) {
uint8 fifo_cnt = UART_TxQueLen(uart_no); uint8 fifo_cnt = UART_TxFifoCount(uart_no);
if (fifo_cnt < UART_TX_FULL_THRESH_VAL) { if (fifo_cnt < UART_TX_FULL_THRESH_VAL) {
WRITE_PERI_REG(UART_FIFO(uart_no), c); WRITE_PERI_REG(UART_FIFO(uart_no), c);
+2 -2
View File
@@ -172,8 +172,8 @@ extern UartDevice UartDev;
//============================================== //==============================================
// FIFO used count // FIFO used count
#define UART_TxQueLen(uart_no) ((READ_PERI_REG(UART_STATUS((uart_no))) >> UART_TXFIFO_CNT_S) & UART_TXFIFO_CNT) #define UART_TxFifoCount(uart_no) ((READ_PERI_REG(UART_STATUS((uart_no))) >> UART_TXFIFO_CNT_S) & UART_TXFIFO_CNT)
#define UART_RxQueLen(uart_no) ((READ_PERI_REG(UART_STATUS((uart_no))) >> UART_RXFIFO_CNT_S) & UART_RXFIFO_CNT) #define UART_RxFifoCount(uart_no) ((READ_PERI_REG(UART_STATUS((uart_no))) >> UART_RXFIFO_CNT_S) & UART_RXFIFO_CNT)
STATUS UART_WriteCharCRLF(UARTn uart_no, uint8 c, uint32 timeout_us); STATUS UART_WriteCharCRLF(UARTn uart_no, uint8 c, uint32 timeout_us);
STATUS UART_WriteChar(UARTn uart_no, uint8 c, uint32 timeout_us); STATUS UART_WriteChar(UARTn uart_no, uint8 c, uint32 timeout_us);
+87 -33
View File
@@ -14,15 +14,26 @@
#include <esp8266.h> #include <esp8266.h>
#include "uart_driver.h" #include "uart_driver.h"
#include "uart_handler.h" #include "uart_handler.h"
#include "uart_buffer.h"
// messy irq/task based UART handling below // messy irq/task based UART handling below
static void uart0_rx_intr_handler(void *para); static void uart0_rx_intr_handler(void *para);
static void uart_recvTask(os_event_t *events); static void uart_recvTask(os_event_t *events);
static void uart_processTask(os_event_t *events);
// Those heavily affect the byte loss ratio
#define PROCESS_CHUNK_LEN 1
#define FIFO_FULL_THRES 4
#define uart_recvTaskPrio 1 #define uart_recvTaskPrio 1
#define uart_recvTaskQueueLen 10 #define uart_recvTaskQueueLen 25
static os_event_t uart_recvTaskQueue[uart_recvTaskQueueLen]; static os_event_t uart_recvTaskQueue[uart_recvTaskQueueLen];
//
#define uart_processTaskPrio 0
#define uart_processTaskQueueLen 25
static os_event_t uart_processTaskQueue[uart_processTaskQueueLen];
/** Clear the fifos */ /** Clear the fifos */
void ICACHE_FLASH_ATTR clear_rxtx(int uart_no) void ICACHE_FLASH_ATTR clear_rxtx(int uart_no)
@@ -50,21 +61,27 @@ void ICACHE_FLASH_ATTR UART_Init(void)
UART_ResetFifo(UART0); UART_ResetFifo(UART0);
UART_SetWordLength(UART1, EIGHT_BITS); // debug (output only) UART_SetWordLength(UART1, EIGHT_BITS); // debug (output only)
UART_ResetFifo(UART1); UART_ResetFifo(UART1);
// remainder is configured based on user settings in serial.c
} }
/** Configure Rx on UART0 */ /** Configure Rx on UART0 */
void ICACHE_FLASH_ATTR UART_SetupAsyncReceiver(void) void ICACHE_FLASH_ATTR UART_SetupAsyncReceiver(void)
{ {
UART_AllocBuffers();
// Start the Rx reading task // Start the Rx reading task
system_os_task(uart_recvTask, uart_recvTaskPrio, uart_recvTaskQueue, uart_recvTaskQueueLen); system_os_task(uart_recvTask, uart_recvTaskPrio, uart_recvTaskQueue, uart_recvTaskQueueLen);
system_os_task(uart_processTask, uart_processTaskPrio, uart_processTaskQueue, uart_processTaskQueueLen);
// set handler // set handler
ETS_UART_INTR_ATTACH((void *)uart0_rx_intr_handler, &(UartDev.rcv_buff)); // the buf will be used as an arg ETS_UART_INTR_ATTACH((void *)uart0_rx_intr_handler, &(UartDev.rcv_buff)); // the buf will be used as an arg
// fifo threshold config // fifo threshold config (max: UART_RXFIFO_FULL_THRHD = 127)
uint32_t conf = ((100 & UART_RXFIFO_FULL_THRHD) << UART_RXFIFO_FULL_THRHD_S); uint32_t conf = ((FIFO_FULL_THRES & UART_RXFIFO_FULL_THRHD) << UART_RXFIFO_FULL_THRHD_S);
conf |= ((0x10 & UART_TXFIFO_EMPTY_THRHD) << UART_TXFIFO_EMPTY_THRHD_S); conf |= ((0x10 & UART_TXFIFO_EMPTY_THRHD) << UART_TXFIFO_EMPTY_THRHD_S);
// timeout config // timeout config
conf |= ((0x02 & UART_RX_TOUT_THRHD) << UART_RX_TOUT_THRHD_S); // timeout threshold conf |= ((0x06 & UART_RX_TOUT_THRHD) << UART_RX_TOUT_THRHD_S); // timeout threshold
conf |= UART_RX_TOUT_EN; // enable timeout conf |= UART_RX_TOUT_EN; // enable timeout
WRITE_PERI_REG(UART_CONF1(UART0), conf); WRITE_PERI_REG(UART_CONF1(UART0), conf);
@@ -83,48 +100,80 @@ void ICACHE_FLASH_ATTR UART_SetupAsyncReceiver(void)
// ---- async receive stuff ---- // ---- async receive stuff ----
void uart_rx_intr_disable(uint8 uart_no)
{
CLEAR_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_FULL_INT_ENA | UART_RXFIFO_TOUT_INT_ENA);
}
void uart_rx_intr_enable(uint8 uart_no)
{
SET_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_FULL_INT_ENA | UART_RXFIFO_TOUT_INT_ENA);
}
//
//void ICACHE_FLASH_ATTR UART_PollRx(void)
//{
// uint8 fifo_len = (uint8) UART_GetRxFifoCount(UART0);
//
// for (uint8 idx = 0; idx < fifo_len; idx++) {
// uint8 d_tmp = (uint8) (READ_PERI_REG(UART_FIFO(UART0)) & 0xFF);
// UART_HandleRxByte(d_tmp);
// }
//}
/** /**
* @brief get number of bytes in UART tx fifo * This is the system task handling UART Rx bytes.
* @param UART number * The function must be re-entrant.
*
* @param events
*/ */
#define UART_GetRxFifoCount(uart_no) ((READ_PERI_REG(UART_STATUS((uart_no))) >> UART_RXFIFO_CNT_S) & UART_RXFIFO_CNT) static void uart_recvTask(os_event_t *events)
void ICACHE_FLASH_ATTR UART_PollRx(void)
{ {
uint8 fifo_len = UART_GetRxFifoCount(UART0); //#define PROCESS_CHUNK_LEN 64
// static char buf[PROCESS_CHUNK_LEN];
for (uint8 idx = 0; idx < fifo_len; idx++) {
uint8 d_tmp = READ_PERI_REG(UART_FIFO(UART0)) & 0xFF;
UART_HandleRxByte(d_tmp);
}
}
static void ICACHE_FLASH_ATTR uart_recvTask(os_event_t *events)
{
if (events->sig == 0) { if (events->sig == 0) {
UART_PollRx(); UART_RxFifoCollect();
// clear irq flags // clear irq flags
WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_FULL_INT_CLR | UART_RXFIFO_TOUT_INT_CLR); WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_FULL_INT_CLR | UART_RXFIFO_TOUT_INT_CLR);
// enable rx irq again // enable rx irq again
uart_rx_intr_enable(UART0); uart_rx_intr_enable(UART0);
} else if (events->sig == 1) {
// Trigger the Reading task
system_os_post(uart_processTaskPrio, 5, 0);
}
else if (events->sig == 1) {
// ??? // ???
} }
// else if (events->sig == 5) {
// // Send a few to the parser...
// int bytes = UART_ReadAsync(buf, PROCESS_CHUNK_LEN);
// for (uint8 idx = 0; idx < bytes; idx++) {
// UART_HandleRxByte(buf[idx]);
// }
//
// // ask for another run
// if (UART_AsyncRxCount() > 0) {
// system_os_post(uart_recvTaskPrio, 5, 0);
// }
// }
}
/**
* This is the system task handling UART Rx bytes.
* The function must be re-entrant.
*
* @param events
*/
static void uart_processTask(os_event_t *events)
{
static char buf[PROCESS_CHUNK_LEN];
if (events->sig == 5) {
// Send a few to the parser...
int bytes = UART_ReadAsync(buf, PROCESS_CHUNK_LEN);
for (uint8 idx = 0; idx < bytes; idx++) {
UART_HandleRxByte(buf[idx]);
}
// ask for another run
if (UART_AsyncRxCount() > 0) {
system_os_post(uart_processTaskPrio, 5, 0);
}
}
} }
@@ -153,7 +202,7 @@ uart0_rx_intr_handler(void *para)
WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_FULL_INT_CLR); WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_FULL_INT_CLR);
// run handler // run handler
system_os_post(uart_recvTaskPrio, 0, 0); /* -> notify the polling thread */ system_os_post(uart_recvTaskPrio, 0, 1); /* -> notify the polling thread */
} }
if (status_reg & UART_RXFIFO_TOUT_INT_ST) { if (status_reg & UART_RXFIFO_TOUT_INT_ST) {
@@ -167,9 +216,14 @@ uart0_rx_intr_handler(void *para)
if (status_reg & UART_TXFIFO_EMPTY_INT_ST) { if (status_reg & UART_TXFIFO_EMPTY_INT_ST) {
CLEAR_PERI_REG_MASK(UART_INT_ENA(UART0), UART_TXFIFO_EMPTY_INT_ENA); CLEAR_PERI_REG_MASK(UART_INT_ENA(UART0), UART_TXFIFO_EMPTY_INT_ENA);
UART_DispatchFromTxBuffer(UART0);
// WRITE_PERI_REG(UART_INT_CLR(UART0), UART_TXFIFO_EMPTY_INT_CLR); //- is called by the dispatch func if more data is to be sent.
} }
if (status_reg & UART_RXFIFO_OVF_INT_ST) { if (status_reg & UART_RXFIFO_OVF_INT_ST) {
WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_OVF_INT_CLR); WRITE_PERI_REG(UART_INT_CLR(UART0), UART_RXFIFO_OVF_INT_CLR);
// overflow error
UART_WriteChar(UART1, '!', 100);
} }
} }
+17 -2
View File
@@ -21,7 +21,22 @@ void UART_SetupAsyncReceiver(void);
/** User must provide this func for handling received bytes */ /** User must provide this func for handling received bytes */
extern void UART_HandleRxByte(char c); extern void UART_HandleRxByte(char c);
/** Poll uart manually while waiting for something */ static inline void uart_rx_intr_disable(uint8 uart_no)
void UART_PollRx(void); {
CLEAR_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_FULL_INT_ENA | UART_RXFIFO_TOUT_INT_ENA);
}
static inline void uart_rx_intr_enable(uint8 uart_no)
{
SET_PERI_REG_MASK(UART_INT_ENA(uart_no), UART_RXFIFO_FULL_INT_ENA | UART_RXFIFO_TOUT_INT_ENA);
}
/**
* @brief get number of bytes in UART tx fifo
* @param UART number
*/
static inline u8 UART_GetRxFifoCount(u8 uart_no) {
return (u8) ((READ_PERI_REG(UART_STATUS((uart_no))) >> UART_RXFIFO_CNT_S) & UART_RXFIFO_CNT);
}
#endif #endif
+3 -1
View File
@@ -23,7 +23,7 @@
#include "io.h" #include "io.h"
#include "screen.h" #include "screen.h"
#include "routes.h" #include "routes.h"
#include "user_main.h" #include "version.h"
#include "uart_driver.h" #include "uart_driver.h"
#include "ansi_parser_callbacks.h" #include "ansi_parser_callbacks.h"
#include "wifimgr.h" #include "wifimgr.h"
@@ -113,10 +113,12 @@ void ICACHE_FLASH_ATTR user_init(void)
espFsInit((void *) (webpages_espfs_start)); espFsInit((void *) (webpages_espfs_start));
#endif #endif
#if DEBUG_HEAP
// Heap use timer & blink // Heap use timer & blink
os_timer_disarm(&prHeapTimer); os_timer_disarm(&prHeapTimer);
os_timer_setfn(&prHeapTimer, prHeapTimerCb, NULL); os_timer_setfn(&prHeapTimer, prHeapTimerCb, NULL);
os_timer_arm(&prHeapTimer, 1000, 1); os_timer_arm(&prHeapTimer, 1000, 1);
#endif
// do later (some functions do not work if called from user_init) // do later (some functions do not work if called from user_init)
os_timer_disarm(&userStartTimer); os_timer_disarm(&userStartTimer);
-7
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@@ -1,7 +0,0 @@
#ifndef USER_MAIN_H_H
#define USER_MAIN_H_H
#define FIRMWARE_VERSION "0.6.6+" GIT_HASH
#define TERMINAL_GITHUB_REPO "https://github.com/MightyPork/esp-vt100-firmware"
#endif //USER_MAIN_H_H
+16
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@@ -0,0 +1,16 @@
//
// Created by MightyPork on 2017/08/20.
//
#ifndef ESP_VT100_FIRMWARE_VERSION_H
#define ESP_VT100_FIRMWARE_VERSION_H
#define FW_V_MAJOR 0
#define FW_V_MINOR 7
#define FW_V_PATCH 1
#define FIRMWARE_VERSION STR(FW_V_MAJOR) "." STR(FW_V_MINOR) "." STR(FW_V_PATCH) "+" GIT_HASH
#define FIRMWARE_VERSION_NUM (FW_V_MAJOR*10000 + FW_V_MINOR*100 + FW_V_PATCH) // this is used in ID queries
#define TERMINAL_GITHUB_REPO "https://github.com/MightyPork/ESPTerm"
#endif //ESP_VT100_FIRMWARE_VERSION_H
+2 -5
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@@ -43,11 +43,6 @@ wifimgr_restore_defaults(void)
IP4_ADDR(&wificonf->sta_addr.ip, 192, 168, 0, (mac[5] == 1 ? 2 : mac[5])); // avoid being the same as "default gw" IP4_ADDR(&wificonf->sta_addr.ip, 192, 168, 0, (mac[5] == 1 ? 2 : mac[5])); // avoid being the same as "default gw"
IP4_ADDR(&wificonf->sta_addr.netmask, 255, 255, 255, 0); IP4_ADDR(&wificonf->sta_addr.netmask, 255, 255, 255, 0);
IP4_ADDR(&wificonf->sta_addr.gw, 192, 168, 0, 1); IP4_ADDR(&wificonf->sta_addr.gw, 192, 168, 0, 1);
// DEBUG ONLY - TODO remove for release
// wificonf->opmode = STATION_MODE;
// sprintf((char*)wificonf->sta_ssid, "Chlivek");
// sprintf((char*)wificonf->sta_password, "prase chrochta");
} }
static void ICACHE_FLASH_ATTR static void ICACHE_FLASH_ATTR
@@ -161,6 +156,8 @@ wifimgr_apply_settings(void)
{ {
info("[WiFi] Initializing..."); info("[WiFi] Initializing...");
// !!! Update to current version !!!
// Force wifi cycle // Force wifi cycle
// Disconnect - may not be needed? // Disconnect - may not be needed?
WIFI_MODE opmode = wifi_get_opmode(); WIFI_MODE opmode = wifi_get_opmode();
+3
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@@ -17,6 +17,8 @@
// Must be constant to avoid corrupting user config after upgrade // Must be constant to avoid corrupting user config after upgrade
#define WIFICONF_SIZE 340 #define WIFICONF_SIZE 340
#define WIFICONF_VERSION 0
/** /**
* A structure holding all configured WiFi parameters * A structure holding all configured WiFi parameters
* and the active state. * and the active state.
@@ -42,6 +44,7 @@ typedef struct {
u8 sta_password[PASSWORD_LEN]; u8 sta_password[PASSWORD_LEN];
bool sta_dhcp_enable; bool sta_dhcp_enable;
struct ip_info sta_addr; struct ip_info sta_addr;
u8 config_version;
} WiFiConfigBundle; } WiFiConfigBundle;
typedef struct { typedef struct {