Converter for Consul 262.5 terminal keyboard and VDX 52600 terminal.
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  1. // Resources:
  2. // [Consul 262.4 Converter] https://deskthority.net/viewtopic.php?t=26908
  3. // [Consul 262.5 manual in CS] http://www.sapi.cz/prislusenstvi/c262-5.php#odkazp4
  4. #include <TimerOne.h>
  5. // pinout config
  6. const int pinData = 6; // out, host data
  7. const int pinStatus = 7; // in, host status
  8. const int clockPin = 5; // out, kbd clock
  9. const int dataPin = 3; // in, kbd data
  10. const int outPin = 4; // out, kbd led
  11. // constant config
  12. const int slaveClockDivider = 8;
  13. const int timerDelay = 520 / slaveClockDivider;
  14. // variables
  15. volatile int slaveClockStep = 0;
  16. char m[255];
  17. volatile int data = 0;
  18. int test = 0;
  19. volatile int counter = 0;
  20. int numbits = 10;
  21. // MODS >>>
  22. // [1] send debug scancode information to serial port
  23. bool modConsoleLog = true;
  24. // <<< MODS
  25. // ----------
  26. // KBD Output
  27. // ----------
  28. volatile long lastChange = 0;
  29. volatile int x = 0;
  30. volatile int dataWord = 0;
  31. volatile int dataState = 0;
  32. volatile int dataDelay = 0;
  33. volatile int packetDelay = 0;
  34. volatile int packetTail = 0;
  35. volatile bool nextKeyReady = false;
  36. volatile byte nextKey = 0;
  37. void typeKey(byte key) {
  38. nextKey = key;
  39. nextKeyReady = true;
  40. //Serial.print("Typing key "); Serial.println((int) key);
  41. }
  42. void sendKey(byte key) {
  43. dataWord = key;
  44. dataState = 8;
  45. dataDelay = 0;
  46. packetDelay = 0;
  47. packetTail = 15;
  48. //Serial.print("Sending key "); Serial.println((int) key);
  49. }
  50. void onHostStatusChange() {
  51. long timeNow = millis();
  52. long changeDiff = timeNow - lastChange;
  53. lastChange = timeNow;
  54. if (changeDiff >= 10 && nextKeyReady) {
  55. nextKeyReady = false;
  56. sendKey(nextKey);
  57. Timer1.start(); // synchronize with the host
  58. slaveClockStep = 0;
  59. }
  60. }
  61. void onHostClockCycle(void)
  62. {
  63. int dataBit = HIGH;
  64. if (packetDelay > 0) {
  65. packetDelay--;
  66. } else if (dataDelay > 0) {
  67. dataDelay--;
  68. dataBit = LOW;
  69. } else if (dataState > 0) {
  70. int bitToSend = (dataWord >> (dataState - 1)) & 1;
  71. dataBit = !bitToSend ? LOW : HIGH;
  72. dataState--;
  73. } else if (packetTail > 0) {
  74. packetTail--;
  75. dataBit = LOW;
  76. } else {
  77. }
  78. digitalWrite(pinData, dataBit);
  79. }
  80. // ---------
  81. // KBD Input
  82. // ---------
  83. const int receivingSteps = 16;
  84. volatile int clockStep = 0;
  85. volatile int receivingStep = 0;
  86. volatile int receivingData = 0;
  87. volatile int receivingBit = 0;
  88. void onSlaveClockInterrupt() {
  89. clockStep = (clockStep + 1) % 2;
  90. int clockValue = (clockStep % 2) ? HIGH : LOW;
  91. digitalWrite(clockPin, clockValue);
  92. int dataBit = digitalRead(dataPin);
  93. if (clockValue == LOW) {
  94. if (receivingData == 0 && dataBit == LOW) {
  95. receivingData = 1;
  96. receivingStep = 0;
  97. receivingBit = 0;
  98. test = 0;
  99. digitalWrite(outPin, HIGH);
  100. } else if (receivingData == 1) {
  101. receivingStep++;
  102. digitalWrite(outPin, HIGH);
  103. }
  104. if (receivingData == 1 && test == 0) {
  105. test = 1;
  106. receivingBit += dataBit == HIGH ? 1 : 0;
  107. if (receivingStep >= receivingSteps) {
  108. if (counter <= 8) {
  109. data = data >> 1;
  110. if (receivingBit > receivingSteps / 2) {
  111. bitSet(data, 7);
  112. }
  113. }
  114. counter++;
  115. receivingStep = 0;
  116. receivingBit = 0;
  117. digitalWrite(outPin, LOW);
  118. if (counter >= numbits) {
  119. receivingData = 0;
  120. }
  121. }
  122. }
  123. }
  124. if (clockValue == HIGH && test == 1) {
  125. test = 0;
  126. }
  127. }
  128. void setupKeyMapping() {
  129. m[0] = 0;
  130. m[223] = ' ';
  131. // top letter row
  132. m[246] = '\t';
  133. m[142] = 'q';
  134. m[136] = 'w';
  135. m[154] = 'e';
  136. m[141] = 'r';
  137. m[139] = 't';
  138. m[134] = 'y';
  139. m[138] = 'u';
  140. m[150] = 'i';
  141. m[144] = 'o';
  142. m[143] = 'p';
  143. m[191] = '@';
  144. m[164] = '[';
  145. m[245] = 0x0A;
  146. m[128] = 0x7F;
  147. // middle letter row
  148. /*
  149. m[] = '';
  150. m[] = '';
  151. m[] = '';
  152. m[] = '';
  153. m[] = '';
  154. m[] = '';
  155. m[] = '';
  156. m[] = '';
  157. m[] = '';
  158. m[] = '';
  159. m[] = '';
  160. m[] = '';
  161. m[] = '';
  162. m[] = '';
  163. m[] = '';
  164. m[] = '';
  165. m[] = '';
  166. m[] = '';
  167. m[] = '';
  168. m[] = '';
  169. m[] = '';
  170. m[] = '';
  171. m[] = '';
  172. m[] = '';
  173. m[] = '';
  174. m[] = '';
  175. m[] = '';
  176. m[] = '';
  177. m[] = '';
  178. m[] = '';
  179. m[] = '';
  180. m[] = '';
  181. m[] = '';
  182. m[] = '';
  183. m[] = '';
  184. m[] = '';
  185. m[] = '';
  186. m[] = '';
  187. m[] = '';
  188. m[] = '';
  189. m[] = '';
  190. m[] = '';
  191. m[] = '';
  192. m[] = '';
  193. m[] = '';
  194. m[] = '';
  195. m[] = '';
  196. m[] = '';
  197. /**/
  198. }
  199. char translateKeyToChar(int key) {
  200. if (sizeof(m) <= key) {
  201. return 0;
  202. }
  203. return m[key];
  204. }
  205. void printChar(char keyChar) {
  206. Serial.print("'"); Serial.print(keyChar); Serial.print("' ("); Serial.print(int(keyChar)); Serial.println(")");
  207. }
  208. void processKbdByte(int data) {
  209. int key = data;
  210. char keyChar = translateKeyToChar(key);
  211. if (modConsoleLog) {
  212. Serial.print("Key: <"); Serial.print(int(key)); Serial.print("> ");
  213. Serial.print("Char: "); printChar(keyChar);
  214. }
  215. #ifdef KEYBOARD
  216. Keyboard.press(keyChar);
  217. delay(10);
  218. Keyboard.release(keyChar);
  219. #endif
  220. typeKey(keyChar);
  221. }
  222. // ----------------------
  223. // Input and Output Merge
  224. // ----------------------
  225. void onTimerInterrupt()
  226. {
  227. onSlaveClockInterrupt();
  228. if (slaveClockStep == 0) {
  229. onHostClockCycle();
  230. }
  231. slaveClockStep = (slaveClockStep + 1) % slaveClockDivider;
  232. }
  233. // ----
  234. // Main
  235. // ----
  236. void setup(void)
  237. {
  238. Serial.begin(9600);
  239. setupKeyMapping();
  240. pinMode(pinData, OUTPUT);
  241. pinMode(dataPin, INPUT);
  242. pinMode(outPin, OUTPUT);
  243. pinMode(clockPin, OUTPUT);
  244. pinMode(pinStatus, INPUT_PULLUP);
  245. digitalWrite(pinData, HIGH);
  246. digitalWrite(outPin, LOW);
  247. attachInterrupt(digitalPinToInterrupt(pinStatus), onHostStatusChange, CHANGE);
  248. Timer1.initialize(timerDelay);
  249. Timer1.attachInterrupt(onTimerInterrupt);
  250. Serial.println("Keyboard ready");
  251. }
  252. void loop(void)
  253. {
  254. // type key from serial
  255. if (!nextKeyReady && Serial.available() > 0) {
  256. long key = Serial.parseInt(SKIP_ALL);
  257. if (key != 0) {
  258. typeKey(key);
  259. }
  260. }
  261. /**/
  262. // type key from keyboard
  263. if (counter >= numbits) {
  264. processKbdByte(data);
  265. data = B0;
  266. counter = 0;
  267. }
  268. /**/
  269. /*/ auto-type test
  270. delay(500);
  271. typeKey('B');
  272. /**/
  273. }