pxa2xx_keypad.c 9.5 KB

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  1. /*
  2. * Intel PXA27X Keypad Controller emulation.
  3. *
  4. * Copyright (c) 2007 MontaVista Software, Inc
  5. * Written by Armin Kuster <akuster@kama-aina.net>
  6. * or <Akuster@mvista.com>
  7. *
  8. * This code is licensed under the GPLv2.
  9. */
  10. #include "hw.h"
  11. #include "pxa.h"
  12. #include "console.h"
  13. /*
  14. * Keypad
  15. */
  16. #define KPC 0x00 /* Keypad Interface Control register */
  17. #define KPDK 0x08 /* Keypad Interface Direct Key register */
  18. #define KPREC 0x10 /* Keypad Interface Rotary Encoder register */
  19. #define KPMK 0x18 /* Keypad Interface Matrix Key register */
  20. #define KPAS 0x20 /* Keypad Interface Automatic Scan register */
  21. #define KPASMKP0 0x28 /* Keypad Interface Automatic Scan Multiple
  22. Key Presser register 0 */
  23. #define KPASMKP1 0x30 /* Keypad Interface Automatic Scan Multiple
  24. Key Presser register 1 */
  25. #define KPASMKP2 0x38 /* Keypad Interface Automatic Scan Multiple
  26. Key Presser register 2 */
  27. #define KPASMKP3 0x40 /* Keypad Interface Automatic Scan Multiple
  28. Key Presser register 3 */
  29. #define KPKDI 0x48 /* Keypad Interface Key Debounce Interval
  30. register */
  31. /* Keypad defines */
  32. #define KPC_AS (0x1 << 30) /* Automatic Scan bit */
  33. #define KPC_ASACT (0x1 << 29) /* Automatic Scan on Activity */
  34. #define KPC_MI (0x1 << 22) /* Matrix interrupt bit */
  35. #define KPC_IMKP (0x1 << 21) /* Ignore Multiple Key Press */
  36. #define KPC_MS7 (0x1 << 20) /* Matrix scan line 7 */
  37. #define KPC_MS6 (0x1 << 19) /* Matrix scan line 6 */
  38. #define KPC_MS5 (0x1 << 18) /* Matrix scan line 5 */
  39. #define KPC_MS4 (0x1 << 17) /* Matrix scan line 4 */
  40. #define KPC_MS3 (0x1 << 16) /* Matrix scan line 3 */
  41. #define KPC_MS2 (0x1 << 15) /* Matrix scan line 2 */
  42. #define KPC_MS1 (0x1 << 14) /* Matrix scan line 1 */
  43. #define KPC_MS0 (0x1 << 13) /* Matrix scan line 0 */
  44. #define KPC_ME (0x1 << 12) /* Matrix Keypad Enable */
  45. #define KPC_MIE (0x1 << 11) /* Matrix Interrupt Enable */
  46. #define KPC_DK_DEB_SEL (0x1 << 9) /* Direct Keypad Debounce Select */
  47. #define KPC_DI (0x1 << 5) /* Direct key interrupt bit */
  48. #define KPC_RE_ZERO_DEB (0x1 << 4) /* Rotary Encoder Zero Debounce */
  49. #define KPC_REE1 (0x1 << 3) /* Rotary Encoder1 Enable */
  50. #define KPC_REE0 (0x1 << 2) /* Rotary Encoder0 Enable */
  51. #define KPC_DE (0x1 << 1) /* Direct Keypad Enable */
  52. #define KPC_DIE (0x1 << 0) /* Direct Keypad interrupt Enable */
  53. #define KPDK_DKP (0x1 << 31)
  54. #define KPDK_DK7 (0x1 << 7)
  55. #define KPDK_DK6 (0x1 << 6)
  56. #define KPDK_DK5 (0x1 << 5)
  57. #define KPDK_DK4 (0x1 << 4)
  58. #define KPDK_DK3 (0x1 << 3)
  59. #define KPDK_DK2 (0x1 << 2)
  60. #define KPDK_DK1 (0x1 << 1)
  61. #define KPDK_DK0 (0x1 << 0)
  62. #define KPREC_OF1 (0x1 << 31)
  63. #define KPREC_UF1 (0x1 << 30)
  64. #define KPREC_OF0 (0x1 << 15)
  65. #define KPREC_UF0 (0x1 << 14)
  66. #define KPMK_MKP (0x1 << 31)
  67. #define KPAS_SO (0x1 << 31)
  68. #define KPASMKPx_SO (0x1 << 31)
  69. #define KPASMKPx_MKC(row, col) (1 << (row + 16 * (col % 2)))
  70. #define PXAKBD_MAXROW 8
  71. #define PXAKBD_MAXCOL 8
  72. struct PXA2xxKeyPadState {
  73. qemu_irq irq;
  74. struct keymap *map;
  75. int pressed_cnt;
  76. int alt_code;
  77. uint32_t kpc;
  78. uint32_t kpdk;
  79. uint32_t kprec;
  80. uint32_t kpmk;
  81. uint32_t kpas;
  82. uint32_t kpasmkp[4];
  83. uint32_t kpkdi;
  84. };
  85. static void pxa27x_keypad_find_pressed_key(PXA2xxKeyPadState *kp, int *row, int *col)
  86. {
  87. int i;
  88. for (i = 0; i < 4; i++)
  89. {
  90. *col = i * 2;
  91. for (*row = 0; *row < 8; (*row)++) {
  92. if (kp->kpasmkp[i] & (1 << *row))
  93. return;
  94. }
  95. *col = i * 2 + 1;
  96. for (*row = 0; *row < 8; (*row)++) {
  97. if (kp->kpasmkp[i] & (1 << (*row + 16)))
  98. return;
  99. }
  100. }
  101. }
  102. static void pxa27x_keyboard_event (PXA2xxKeyPadState *kp, int keycode)
  103. {
  104. int row, col, rel, assert_irq = 0;
  105. uint32_t val;
  106. if (keycode == 0xe0) {
  107. kp->alt_code = 1;
  108. return;
  109. }
  110. if(!(kp->kpc & KPC_ME)) /* skip if not enabled */
  111. return;
  112. if(kp->kpc & KPC_AS || kp->kpc & KPC_ASACT) {
  113. if(kp->kpc & KPC_AS)
  114. kp->kpc &= ~(KPC_AS);
  115. rel = (keycode & 0x80) ? 1 : 0; /* key release from qemu */
  116. keycode &= ~(0x80); /* strip qemu key release bit */
  117. if (kp->alt_code) {
  118. keycode |= 0x80;
  119. kp->alt_code = 0;
  120. }
  121. row = kp->map[keycode].row;
  122. col = kp->map[keycode].column;
  123. if(row == -1 || col == -1)
  124. return;
  125. val = KPASMKPx_MKC(row, col);
  126. if (rel) {
  127. if (kp->kpasmkp[col / 2] & val) {
  128. kp->kpasmkp[col / 2] &= ~val;
  129. kp->pressed_cnt--;
  130. assert_irq = 1;
  131. }
  132. } else {
  133. if (!(kp->kpasmkp[col / 2] & val)) {
  134. kp->kpasmkp[col / 2] |= val;
  135. kp->pressed_cnt++;
  136. assert_irq = 1;
  137. }
  138. }
  139. kp->kpas = ((kp->pressed_cnt & 0x1f) << 26) | (0xf << 4) | 0xf;
  140. if (kp->pressed_cnt == 1) {
  141. kp->kpas &= ~((0xf << 4) | 0xf);
  142. if (rel)
  143. pxa27x_keypad_find_pressed_key(kp, &row, &col);
  144. kp->kpas |= ((row & 0xf) << 4) | (col & 0xf);
  145. }
  146. goto out;
  147. }
  148. return;
  149. out:
  150. if (assert_irq && (kp->kpc & KPC_MIE)) {
  151. kp->kpc |= KPC_MI;
  152. qemu_irq_raise(kp->irq);
  153. }
  154. return;
  155. }
  156. static uint32_t pxa2xx_keypad_read(void *opaque, target_phys_addr_t offset)
  157. {
  158. PXA2xxKeyPadState *s = (PXA2xxKeyPadState *) opaque;
  159. uint32_t tmp;
  160. switch (offset) {
  161. case KPC:
  162. tmp = s->kpc;
  163. if(tmp & KPC_MI)
  164. s->kpc &= ~(KPC_MI);
  165. if(tmp & KPC_DI)
  166. s->kpc &= ~(KPC_DI);
  167. qemu_irq_lower(s->irq);
  168. return tmp;
  169. break;
  170. case KPDK:
  171. return s->kpdk;
  172. break;
  173. case KPREC:
  174. tmp = s->kprec;
  175. if(tmp & KPREC_OF1)
  176. s->kprec &= ~(KPREC_OF1);
  177. if(tmp & KPREC_UF1)
  178. s->kprec &= ~(KPREC_UF1);
  179. if(tmp & KPREC_OF0)
  180. s->kprec &= ~(KPREC_OF0);
  181. if(tmp & KPREC_UF0)
  182. s->kprec &= ~(KPREC_UF0);
  183. return tmp;
  184. break;
  185. case KPMK:
  186. tmp = s->kpmk;
  187. if(tmp & KPMK_MKP)
  188. s->kpmk &= ~(KPMK_MKP);
  189. return tmp;
  190. break;
  191. case KPAS:
  192. return s->kpas;
  193. break;
  194. case KPASMKP0:
  195. return s->kpasmkp[0];
  196. break;
  197. case KPASMKP1:
  198. return s->kpasmkp[1];
  199. break;
  200. case KPASMKP2:
  201. return s->kpasmkp[2];
  202. break;
  203. case KPASMKP3:
  204. return s->kpasmkp[3];
  205. break;
  206. case KPKDI:
  207. return s->kpkdi;
  208. break;
  209. default:
  210. hw_error("%s: Bad offset " REG_FMT "\n", __FUNCTION__, offset);
  211. }
  212. return 0;
  213. }
  214. static void pxa2xx_keypad_write(void *opaque,
  215. target_phys_addr_t offset, uint32_t value)
  216. {
  217. PXA2xxKeyPadState *s = (PXA2xxKeyPadState *) opaque;
  218. switch (offset) {
  219. case KPC:
  220. s->kpc = value;
  221. break;
  222. case KPDK:
  223. s->kpdk = value;
  224. break;
  225. case KPREC:
  226. s->kprec = value;
  227. break;
  228. case KPMK:
  229. s->kpmk = value;
  230. break;
  231. case KPAS:
  232. s->kpas = value;
  233. break;
  234. case KPASMKP0:
  235. s->kpasmkp[0] = value;
  236. break;
  237. case KPASMKP1:
  238. s->kpasmkp[1] = value;
  239. break;
  240. case KPASMKP2:
  241. s->kpasmkp[2] = value;
  242. break;
  243. case KPASMKP3:
  244. s->kpasmkp[3] = value;
  245. break;
  246. case KPKDI:
  247. s->kpkdi = value;
  248. break;
  249. default:
  250. hw_error("%s: Bad offset " REG_FMT "\n", __FUNCTION__, offset);
  251. }
  252. }
  253. static CPUReadMemoryFunc * const pxa2xx_keypad_readfn[] = {
  254. pxa2xx_keypad_read,
  255. pxa2xx_keypad_read,
  256. pxa2xx_keypad_read
  257. };
  258. static CPUWriteMemoryFunc * const pxa2xx_keypad_writefn[] = {
  259. pxa2xx_keypad_write,
  260. pxa2xx_keypad_write,
  261. pxa2xx_keypad_write
  262. };
  263. static const VMStateDescription vmstate_pxa2xx_keypad = {
  264. .name = "pxa2xx_keypad",
  265. .version_id = 0,
  266. .minimum_version_id = 0,
  267. .minimum_version_id_old = 0,
  268. .fields = (VMStateField[]) {
  269. VMSTATE_UINT32(kpc, PXA2xxKeyPadState),
  270. VMSTATE_UINT32(kpdk, PXA2xxKeyPadState),
  271. VMSTATE_UINT32(kprec, PXA2xxKeyPadState),
  272. VMSTATE_UINT32(kpmk, PXA2xxKeyPadState),
  273. VMSTATE_UINT32(kpas, PXA2xxKeyPadState),
  274. VMSTATE_UINT32_ARRAY(kpasmkp, PXA2xxKeyPadState, 4),
  275. VMSTATE_UINT32(kpkdi, PXA2xxKeyPadState),
  276. VMSTATE_END_OF_LIST()
  277. }
  278. };
  279. PXA2xxKeyPadState *pxa27x_keypad_init(target_phys_addr_t base,
  280. qemu_irq irq)
  281. {
  282. int iomemtype;
  283. PXA2xxKeyPadState *s;
  284. s = (PXA2xxKeyPadState *) g_malloc0(sizeof(PXA2xxKeyPadState));
  285. s->irq = irq;
  286. iomemtype = cpu_register_io_memory(pxa2xx_keypad_readfn,
  287. pxa2xx_keypad_writefn, s, DEVICE_NATIVE_ENDIAN);
  288. cpu_register_physical_memory(base, 0x00100000, iomemtype);
  289. vmstate_register(NULL, 0, &vmstate_pxa2xx_keypad, s);
  290. return s;
  291. }
  292. void pxa27x_register_keypad(PXA2xxKeyPadState *kp, struct keymap *map,
  293. int size)
  294. {
  295. if(!map || size < 0x80) {
  296. fprintf(stderr, "%s - No PXA keypad map defined\n", __FUNCTION__);
  297. exit(-1);
  298. }
  299. kp->map = map;
  300. qemu_add_kbd_event_handler((QEMUPutKBDEvent *) pxa27x_keyboard_event, kp);
  301. }