gamecon.c 24 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /*
  3. * NES, SNES, N64, MultiSystem, PSX gamepad driver for Linux
  4. *
  5. * Copyright (c) 1999-2004 Vojtech Pavlik <[email protected]>
  6. * Copyright (c) 2004 Peter Nelson <[email protected]>
  7. *
  8. * Based on the work of:
  9. * Andree Borrmann John Dahlstrom
  10. * David Kuder Nathan Hand
  11. * Raphael Assenat
  12. */
  13. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  14. #include <linux/kernel.h>
  15. #include <linux/delay.h>
  16. #include <linux/module.h>
  17. #include <linux/init.h>
  18. #include <linux/parport.h>
  19. #include <linux/input.h>
  20. #include <linux/mutex.h>
  21. #include <linux/slab.h>
  22. MODULE_AUTHOR("Vojtech Pavlik <[email protected]>");
  23. MODULE_DESCRIPTION("NES, SNES, N64, MultiSystem, PSX gamepad driver");
  24. MODULE_LICENSE("GPL");
  25. #define GC_MAX_PORTS 3
  26. #define GC_MAX_DEVICES 5
  27. struct gc_config {
  28. int args[GC_MAX_DEVICES + 1];
  29. unsigned int nargs;
  30. };
  31. static struct gc_config gc_cfg[GC_MAX_PORTS];
  32. module_param_array_named(map, gc_cfg[0].args, int, &gc_cfg[0].nargs, 0);
  33. MODULE_PARM_DESC(map, "Describes first set of devices (<parport#>,<pad1>,<pad2>,..<pad5>)");
  34. module_param_array_named(map2, gc_cfg[1].args, int, &gc_cfg[1].nargs, 0);
  35. MODULE_PARM_DESC(map2, "Describes second set of devices");
  36. module_param_array_named(map3, gc_cfg[2].args, int, &gc_cfg[2].nargs, 0);
  37. MODULE_PARM_DESC(map3, "Describes third set of devices");
  38. /* see also gs_psx_delay parameter in PSX support section */
  39. enum gc_type {
  40. GC_NONE = 0,
  41. GC_SNES,
  42. GC_NES,
  43. GC_NES4,
  44. GC_MULTI,
  45. GC_MULTI2,
  46. GC_N64,
  47. GC_PSX,
  48. GC_DDR,
  49. GC_SNESMOUSE,
  50. GC_MAX
  51. };
  52. #define GC_REFRESH_TIME HZ/100
  53. struct gc_pad {
  54. struct input_dev *dev;
  55. enum gc_type type;
  56. char phys[32];
  57. };
  58. struct gc {
  59. struct pardevice *pd;
  60. struct gc_pad pads[GC_MAX_DEVICES];
  61. struct timer_list timer;
  62. int pad_count[GC_MAX];
  63. int used;
  64. int parportno;
  65. struct mutex mutex;
  66. };
  67. struct gc_subdev {
  68. unsigned int idx;
  69. };
  70. static struct gc *gc_base[3];
  71. static const int gc_status_bit[] = { 0x40, 0x80, 0x20, 0x10, 0x08 };
  72. static const char *gc_names[] = {
  73. NULL, "SNES pad", "NES pad", "NES FourPort", "Multisystem joystick",
  74. "Multisystem 2-button joystick", "N64 controller", "PSX controller",
  75. "PSX DDR controller", "SNES mouse"
  76. };
  77. /*
  78. * N64 support.
  79. */
  80. static const unsigned char gc_n64_bytes[] = { 0, 1, 13, 15, 14, 12, 10, 11, 2, 3 };
  81. static const short gc_n64_btn[] = {
  82. BTN_A, BTN_B, BTN_C, BTN_X, BTN_Y, BTN_Z,
  83. BTN_TL, BTN_TR, BTN_TRIGGER, BTN_START
  84. };
  85. #define GC_N64_LENGTH 32 /* N64 bit length, not including stop bit */
  86. #define GC_N64_STOP_LENGTH 5 /* Length of encoded stop bit */
  87. #define GC_N64_CMD_00 0x11111111UL
  88. #define GC_N64_CMD_01 0xd1111111UL
  89. #define GC_N64_CMD_03 0xdd111111UL
  90. #define GC_N64_CMD_1b 0xdd1dd111UL
  91. #define GC_N64_CMD_c0 0x111111ddUL
  92. #define GC_N64_CMD_80 0x1111111dUL
  93. #define GC_N64_STOP_BIT 0x1d /* Encoded stop bit */
  94. #define GC_N64_REQUEST_DATA GC_N64_CMD_01 /* the request data command */
  95. #define GC_N64_DELAY 133 /* delay between transmit request, and response ready (us) */
  96. #define GC_N64_DWS 3 /* delay between write segments (required for sound playback because of ISA DMA) */
  97. /* GC_N64_DWS > 24 is known to fail */
  98. #define GC_N64_POWER_W 0xe2 /* power during write (transmit request) */
  99. #define GC_N64_POWER_R 0xfd /* power during read */
  100. #define GC_N64_OUT 0x1d /* output bits to the 4 pads */
  101. /* Reading the main axes of any N64 pad is known to fail if the corresponding bit */
  102. /* in GC_N64_OUT is pulled low on the output port (by any routine) for more */
  103. /* than 123 us */
  104. #define GC_N64_CLOCK 0x02 /* clock bits for read */
  105. /*
  106. * Used for rumble code.
  107. */
  108. /* Send encoded command */
  109. static void gc_n64_send_command(struct gc *gc, unsigned long cmd,
  110. unsigned char target)
  111. {
  112. struct parport *port = gc->pd->port;
  113. int i;
  114. for (i = 0; i < GC_N64_LENGTH; i++) {
  115. unsigned char data = (cmd >> i) & 1 ? target : 0;
  116. parport_write_data(port, GC_N64_POWER_W | data);
  117. udelay(GC_N64_DWS);
  118. }
  119. }
  120. /* Send stop bit */
  121. static void gc_n64_send_stop_bit(struct gc *gc, unsigned char target)
  122. {
  123. struct parport *port = gc->pd->port;
  124. int i;
  125. for (i = 0; i < GC_N64_STOP_LENGTH; i++) {
  126. unsigned char data = (GC_N64_STOP_BIT >> i) & 1 ? target : 0;
  127. parport_write_data(port, GC_N64_POWER_W | data);
  128. udelay(GC_N64_DWS);
  129. }
  130. }
  131. /*
  132. * gc_n64_read_packet() reads an N64 packet.
  133. * Each pad uses one bit per byte. So all pads connected to this port
  134. * are read in parallel.
  135. */
  136. static void gc_n64_read_packet(struct gc *gc, unsigned char *data)
  137. {
  138. int i;
  139. unsigned long flags;
  140. /*
  141. * Request the pad to transmit data
  142. */
  143. local_irq_save(flags);
  144. gc_n64_send_command(gc, GC_N64_REQUEST_DATA, GC_N64_OUT);
  145. gc_n64_send_stop_bit(gc, GC_N64_OUT);
  146. local_irq_restore(flags);
  147. /*
  148. * Wait for the pad response to be loaded into the 33-bit register
  149. * of the adapter.
  150. */
  151. udelay(GC_N64_DELAY);
  152. /*
  153. * Grab data (ignoring the last bit, which is a stop bit)
  154. */
  155. for (i = 0; i < GC_N64_LENGTH; i++) {
  156. parport_write_data(gc->pd->port, GC_N64_POWER_R);
  157. udelay(2);
  158. data[i] = parport_read_status(gc->pd->port);
  159. parport_write_data(gc->pd->port, GC_N64_POWER_R | GC_N64_CLOCK);
  160. }
  161. /*
  162. * We must wait 200 ms here for the controller to reinitialize before
  163. * the next read request. No worries as long as gc_read is polled less
  164. * frequently than this.
  165. */
  166. }
  167. static void gc_n64_process_packet(struct gc *gc)
  168. {
  169. unsigned char data[GC_N64_LENGTH];
  170. struct input_dev *dev;
  171. int i, j, s;
  172. signed char x, y;
  173. gc_n64_read_packet(gc, data);
  174. for (i = 0; i < GC_MAX_DEVICES; i++) {
  175. if (gc->pads[i].type != GC_N64)
  176. continue;
  177. dev = gc->pads[i].dev;
  178. s = gc_status_bit[i];
  179. if (s & ~(data[8] | data[9])) {
  180. x = y = 0;
  181. for (j = 0; j < 8; j++) {
  182. if (data[23 - j] & s)
  183. x |= 1 << j;
  184. if (data[31 - j] & s)
  185. y |= 1 << j;
  186. }
  187. input_report_abs(dev, ABS_X, x);
  188. input_report_abs(dev, ABS_Y, -y);
  189. input_report_abs(dev, ABS_HAT0X,
  190. !(s & data[6]) - !(s & data[7]));
  191. input_report_abs(dev, ABS_HAT0Y,
  192. !(s & data[4]) - !(s & data[5]));
  193. for (j = 0; j < 10; j++)
  194. input_report_key(dev, gc_n64_btn[j],
  195. s & data[gc_n64_bytes[j]]);
  196. input_sync(dev);
  197. }
  198. }
  199. }
  200. static int gc_n64_play_effect(struct input_dev *dev, void *data,
  201. struct ff_effect *effect)
  202. {
  203. int i;
  204. unsigned long flags;
  205. struct gc *gc = input_get_drvdata(dev);
  206. struct gc_subdev *sdev = data;
  207. unsigned char target = 1 << sdev->idx; /* select desired pin */
  208. if (effect->type == FF_RUMBLE) {
  209. struct ff_rumble_effect *rumble = &effect->u.rumble;
  210. unsigned int cmd =
  211. rumble->strong_magnitude || rumble->weak_magnitude ?
  212. GC_N64_CMD_01 : GC_N64_CMD_00;
  213. local_irq_save(flags);
  214. /* Init Rumble - 0x03, 0x80, 0x01, (34)0x80 */
  215. gc_n64_send_command(gc, GC_N64_CMD_03, target);
  216. gc_n64_send_command(gc, GC_N64_CMD_80, target);
  217. gc_n64_send_command(gc, GC_N64_CMD_01, target);
  218. for (i = 0; i < 32; i++)
  219. gc_n64_send_command(gc, GC_N64_CMD_80, target);
  220. gc_n64_send_stop_bit(gc, target);
  221. udelay(GC_N64_DELAY);
  222. /* Now start or stop it - 0x03, 0xc0, 0zx1b, (32)0x01/0x00 */
  223. gc_n64_send_command(gc, GC_N64_CMD_03, target);
  224. gc_n64_send_command(gc, GC_N64_CMD_c0, target);
  225. gc_n64_send_command(gc, GC_N64_CMD_1b, target);
  226. for (i = 0; i < 32; i++)
  227. gc_n64_send_command(gc, cmd, target);
  228. gc_n64_send_stop_bit(gc, target);
  229. local_irq_restore(flags);
  230. }
  231. return 0;
  232. }
  233. static int gc_n64_init_ff(struct input_dev *dev, int i)
  234. {
  235. struct gc_subdev *sdev;
  236. int err;
  237. sdev = kmalloc(sizeof(*sdev), GFP_KERNEL);
  238. if (!sdev)
  239. return -ENOMEM;
  240. sdev->idx = i;
  241. input_set_capability(dev, EV_FF, FF_RUMBLE);
  242. err = input_ff_create_memless(dev, sdev, gc_n64_play_effect);
  243. if (err) {
  244. kfree(sdev);
  245. return err;
  246. }
  247. return 0;
  248. }
  249. /*
  250. * NES/SNES support.
  251. */
  252. #define GC_NES_DELAY 6 /* Delay between bits - 6us */
  253. #define GC_NES_LENGTH 8 /* The NES pads use 8 bits of data */
  254. #define GC_SNES_LENGTH 12 /* The SNES true length is 16, but the
  255. last 4 bits are unused */
  256. #define GC_SNESMOUSE_LENGTH 32 /* The SNES mouse uses 32 bits, the first
  257. 16 bits are equivalent to a gamepad */
  258. #define GC_NES_POWER 0xfc
  259. #define GC_NES_CLOCK 0x01
  260. #define GC_NES_LATCH 0x02
  261. static const unsigned char gc_nes_bytes[] = { 0, 1, 2, 3 };
  262. static const unsigned char gc_snes_bytes[] = { 8, 0, 2, 3, 9, 1, 10, 11 };
  263. static const short gc_snes_btn[] = {
  264. BTN_A, BTN_B, BTN_SELECT, BTN_START, BTN_X, BTN_Y, BTN_TL, BTN_TR
  265. };
  266. /*
  267. * gc_nes_read_packet() reads a NES/SNES packet.
  268. * Each pad uses one bit per byte. So all pads connected to
  269. * this port are read in parallel.
  270. */
  271. static void gc_nes_read_packet(struct gc *gc, int length, unsigned char *data)
  272. {
  273. int i;
  274. parport_write_data(gc->pd->port, GC_NES_POWER | GC_NES_CLOCK | GC_NES_LATCH);
  275. udelay(GC_NES_DELAY * 2);
  276. parport_write_data(gc->pd->port, GC_NES_POWER | GC_NES_CLOCK);
  277. for (i = 0; i < length; i++) {
  278. udelay(GC_NES_DELAY);
  279. parport_write_data(gc->pd->port, GC_NES_POWER);
  280. data[i] = parport_read_status(gc->pd->port) ^ 0x7f;
  281. udelay(GC_NES_DELAY);
  282. parport_write_data(gc->pd->port, GC_NES_POWER | GC_NES_CLOCK);
  283. }
  284. }
  285. static void gc_nes_process_packet(struct gc *gc)
  286. {
  287. unsigned char data[GC_SNESMOUSE_LENGTH];
  288. struct gc_pad *pad;
  289. struct input_dev *dev;
  290. int i, j, s, len;
  291. char x_rel, y_rel;
  292. len = gc->pad_count[GC_SNESMOUSE] ? GC_SNESMOUSE_LENGTH :
  293. (gc->pad_count[GC_SNES] ? GC_SNES_LENGTH : GC_NES_LENGTH);
  294. gc_nes_read_packet(gc, len, data);
  295. for (i = 0; i < GC_MAX_DEVICES; i++) {
  296. pad = &gc->pads[i];
  297. dev = pad->dev;
  298. s = gc_status_bit[i];
  299. switch (pad->type) {
  300. case GC_NES:
  301. input_report_abs(dev, ABS_X, !(s & data[6]) - !(s & data[7]));
  302. input_report_abs(dev, ABS_Y, !(s & data[4]) - !(s & data[5]));
  303. for (j = 0; j < 4; j++)
  304. input_report_key(dev, gc_snes_btn[j],
  305. s & data[gc_nes_bytes[j]]);
  306. input_sync(dev);
  307. break;
  308. case GC_SNES:
  309. input_report_abs(dev, ABS_X, !(s & data[6]) - !(s & data[7]));
  310. input_report_abs(dev, ABS_Y, !(s & data[4]) - !(s & data[5]));
  311. for (j = 0; j < 8; j++)
  312. input_report_key(dev, gc_snes_btn[j],
  313. s & data[gc_snes_bytes[j]]);
  314. input_sync(dev);
  315. break;
  316. case GC_SNESMOUSE:
  317. /*
  318. * The 4 unused bits from SNES controllers appear
  319. * to be ID bits so use them to make sure we are
  320. * dealing with a mouse.
  321. * gamepad is connected. This is important since
  322. * my SNES gamepad sends 1's for bits 16-31, which
  323. * cause the mouse pointer to quickly move to the
  324. * upper left corner of the screen.
  325. */
  326. if (!(s & data[12]) && !(s & data[13]) &&
  327. !(s & data[14]) && (s & data[15])) {
  328. input_report_key(dev, BTN_LEFT, s & data[9]);
  329. input_report_key(dev, BTN_RIGHT, s & data[8]);
  330. x_rel = y_rel = 0;
  331. for (j = 0; j < 7; j++) {
  332. x_rel <<= 1;
  333. if (data[25 + j] & s)
  334. x_rel |= 1;
  335. y_rel <<= 1;
  336. if (data[17 + j] & s)
  337. y_rel |= 1;
  338. }
  339. if (x_rel) {
  340. if (data[24] & s)
  341. x_rel = -x_rel;
  342. input_report_rel(dev, REL_X, x_rel);
  343. }
  344. if (y_rel) {
  345. if (data[16] & s)
  346. y_rel = -y_rel;
  347. input_report_rel(dev, REL_Y, y_rel);
  348. }
  349. input_sync(dev);
  350. }
  351. break;
  352. default:
  353. break;
  354. }
  355. }
  356. }
  357. /*
  358. * Multisystem joystick support
  359. */
  360. #define GC_MULTI_LENGTH 5 /* Multi system joystick packet length is 5 */
  361. #define GC_MULTI2_LENGTH 6 /* One more bit for one more button */
  362. /*
  363. * gc_multi_read_packet() reads a Multisystem joystick packet.
  364. */
  365. static void gc_multi_read_packet(struct gc *gc, int length, unsigned char *data)
  366. {
  367. int i;
  368. for (i = 0; i < length; i++) {
  369. parport_write_data(gc->pd->port, ~(1 << i));
  370. data[i] = parport_read_status(gc->pd->port) ^ 0x7f;
  371. }
  372. }
  373. static void gc_multi_process_packet(struct gc *gc)
  374. {
  375. unsigned char data[GC_MULTI2_LENGTH];
  376. int data_len = gc->pad_count[GC_MULTI2] ? GC_MULTI2_LENGTH : GC_MULTI_LENGTH;
  377. struct gc_pad *pad;
  378. struct input_dev *dev;
  379. int i, s;
  380. gc_multi_read_packet(gc, data_len, data);
  381. for (i = 0; i < GC_MAX_DEVICES; i++) {
  382. pad = &gc->pads[i];
  383. dev = pad->dev;
  384. s = gc_status_bit[i];
  385. switch (pad->type) {
  386. case GC_MULTI2:
  387. input_report_key(dev, BTN_THUMB, s & data[5]);
  388. fallthrough;
  389. case GC_MULTI:
  390. input_report_abs(dev, ABS_X,
  391. !(s & data[2]) - !(s & data[3]));
  392. input_report_abs(dev, ABS_Y,
  393. !(s & data[0]) - !(s & data[1]));
  394. input_report_key(dev, BTN_TRIGGER, s & data[4]);
  395. input_sync(dev);
  396. break;
  397. default:
  398. break;
  399. }
  400. }
  401. }
  402. /*
  403. * PSX support
  404. *
  405. * See documentation at:
  406. * http://www.geocities.co.jp/Playtown/2004/psx/ps_eng.txt
  407. * http://www.gamesx.com/controldata/psxcont/psxcont.htm
  408. *
  409. */
  410. #define GC_PSX_DELAY 25 /* 25 usec */
  411. #define GC_PSX_LENGTH 8 /* talk to the controller in bits */
  412. #define GC_PSX_BYTES 6 /* the maximum number of bytes to read off the controller */
  413. #define GC_PSX_MOUSE 1 /* Mouse */
  414. #define GC_PSX_NEGCON 2 /* NegCon */
  415. #define GC_PSX_NORMAL 4 /* Digital / Analog or Rumble in Digital mode */
  416. #define GC_PSX_ANALOG 5 /* Analog in Analog mode / Rumble in Green mode */
  417. #define GC_PSX_RUMBLE 7 /* Rumble in Red mode */
  418. #define GC_PSX_CLOCK 0x04 /* Pin 4 */
  419. #define GC_PSX_COMMAND 0x01 /* Pin 2 */
  420. #define GC_PSX_POWER 0xf8 /* Pins 5-9 */
  421. #define GC_PSX_SELECT 0x02 /* Pin 3 */
  422. #define GC_PSX_ID(x) ((x) >> 4) /* High nibble is device type */
  423. #define GC_PSX_LEN(x) (((x) & 0xf) << 1) /* Low nibble is length in bytes/2 */
  424. static int gc_psx_delay = GC_PSX_DELAY;
  425. module_param_named(psx_delay, gc_psx_delay, uint, 0);
  426. MODULE_PARM_DESC(psx_delay, "Delay when accessing Sony PSX controller (usecs)");
  427. static const short gc_psx_abs[] = {
  428. ABS_X, ABS_Y, ABS_RX, ABS_RY, ABS_HAT0X, ABS_HAT0Y
  429. };
  430. static const short gc_psx_btn[] = {
  431. BTN_TL, BTN_TR, BTN_TL2, BTN_TR2, BTN_A, BTN_B, BTN_X, BTN_Y,
  432. BTN_START, BTN_SELECT, BTN_THUMBL, BTN_THUMBR
  433. };
  434. static const short gc_psx_ddr_btn[] = { BTN_0, BTN_1, BTN_2, BTN_3 };
  435. /*
  436. * gc_psx_command() writes 8bit command and reads 8bit data from
  437. * the psx pad.
  438. */
  439. static void gc_psx_command(struct gc *gc, int b, unsigned char *data)
  440. {
  441. struct parport *port = gc->pd->port;
  442. int i, j, cmd, read;
  443. memset(data, 0, GC_MAX_DEVICES);
  444. for (i = 0; i < GC_PSX_LENGTH; i++, b >>= 1) {
  445. cmd = (b & 1) ? GC_PSX_COMMAND : 0;
  446. parport_write_data(port, cmd | GC_PSX_POWER);
  447. udelay(gc_psx_delay);
  448. read = parport_read_status(port) ^ 0x80;
  449. for (j = 0; j < GC_MAX_DEVICES; j++) {
  450. struct gc_pad *pad = &gc->pads[j];
  451. if (pad->type == GC_PSX || pad->type == GC_DDR)
  452. data[j] |= (read & gc_status_bit[j]) ? (1 << i) : 0;
  453. }
  454. parport_write_data(gc->pd->port, cmd | GC_PSX_CLOCK | GC_PSX_POWER);
  455. udelay(gc_psx_delay);
  456. }
  457. }
  458. /*
  459. * gc_psx_read_packet() reads a whole psx packet and returns
  460. * device identifier code.
  461. */
  462. static void gc_psx_read_packet(struct gc *gc,
  463. unsigned char data[GC_MAX_DEVICES][GC_PSX_BYTES],
  464. unsigned char id[GC_MAX_DEVICES])
  465. {
  466. int i, j, max_len = 0;
  467. unsigned long flags;
  468. unsigned char data2[GC_MAX_DEVICES];
  469. /* Select pad */
  470. parport_write_data(gc->pd->port, GC_PSX_CLOCK | GC_PSX_SELECT | GC_PSX_POWER);
  471. udelay(gc_psx_delay);
  472. /* Deselect, begin command */
  473. parport_write_data(gc->pd->port, GC_PSX_CLOCK | GC_PSX_POWER);
  474. udelay(gc_psx_delay);
  475. local_irq_save(flags);
  476. gc_psx_command(gc, 0x01, data2); /* Access pad */
  477. gc_psx_command(gc, 0x42, id); /* Get device ids */
  478. gc_psx_command(gc, 0, data2); /* Dump status */
  479. /* Find the longest pad */
  480. for (i = 0; i < GC_MAX_DEVICES; i++) {
  481. struct gc_pad *pad = &gc->pads[i];
  482. if ((pad->type == GC_PSX || pad->type == GC_DDR) &&
  483. GC_PSX_LEN(id[i]) > max_len &&
  484. GC_PSX_LEN(id[i]) <= GC_PSX_BYTES) {
  485. max_len = GC_PSX_LEN(id[i]);
  486. }
  487. }
  488. /* Read in all the data */
  489. for (i = 0; i < max_len; i++) {
  490. gc_psx_command(gc, 0, data2);
  491. for (j = 0; j < GC_MAX_DEVICES; j++)
  492. data[j][i] = data2[j];
  493. }
  494. local_irq_restore(flags);
  495. parport_write_data(gc->pd->port, GC_PSX_CLOCK | GC_PSX_SELECT | GC_PSX_POWER);
  496. /* Set id's to the real value */
  497. for (i = 0; i < GC_MAX_DEVICES; i++)
  498. id[i] = GC_PSX_ID(id[i]);
  499. }
  500. static void gc_psx_report_one(struct gc_pad *pad, unsigned char psx_type,
  501. unsigned char *data)
  502. {
  503. struct input_dev *dev = pad->dev;
  504. int i;
  505. switch (psx_type) {
  506. case GC_PSX_RUMBLE:
  507. input_report_key(dev, BTN_THUMBL, ~data[0] & 0x04);
  508. input_report_key(dev, BTN_THUMBR, ~data[0] & 0x02);
  509. fallthrough;
  510. case GC_PSX_NEGCON:
  511. case GC_PSX_ANALOG:
  512. if (pad->type == GC_DDR) {
  513. for (i = 0; i < 4; i++)
  514. input_report_key(dev, gc_psx_ddr_btn[i],
  515. ~data[0] & (0x10 << i));
  516. } else {
  517. for (i = 0; i < 4; i++)
  518. input_report_abs(dev, gc_psx_abs[i + 2],
  519. data[i + 2]);
  520. input_report_abs(dev, ABS_X,
  521. !!(data[0] & 0x80) * 128 + !(data[0] & 0x20) * 127);
  522. input_report_abs(dev, ABS_Y,
  523. !!(data[0] & 0x10) * 128 + !(data[0] & 0x40) * 127);
  524. }
  525. for (i = 0; i < 8; i++)
  526. input_report_key(dev, gc_psx_btn[i], ~data[1] & (1 << i));
  527. input_report_key(dev, BTN_START, ~data[0] & 0x08);
  528. input_report_key(dev, BTN_SELECT, ~data[0] & 0x01);
  529. input_sync(dev);
  530. break;
  531. case GC_PSX_NORMAL:
  532. if (pad->type == GC_DDR) {
  533. for (i = 0; i < 4; i++)
  534. input_report_key(dev, gc_psx_ddr_btn[i],
  535. ~data[0] & (0x10 << i));
  536. } else {
  537. input_report_abs(dev, ABS_X,
  538. !!(data[0] & 0x80) * 128 + !(data[0] & 0x20) * 127);
  539. input_report_abs(dev, ABS_Y,
  540. !!(data[0] & 0x10) * 128 + !(data[0] & 0x40) * 127);
  541. /*
  542. * For some reason if the extra axes are left unset
  543. * they drift.
  544. * for (i = 0; i < 4; i++)
  545. input_report_abs(dev, gc_psx_abs[i + 2], 128);
  546. * This needs to be debugged properly,
  547. * maybe fuzz processing needs to be done
  548. * in input_sync()
  549. * --vojtech
  550. */
  551. }
  552. for (i = 0; i < 8; i++)
  553. input_report_key(dev, gc_psx_btn[i], ~data[1] & (1 << i));
  554. input_report_key(dev, BTN_START, ~data[0] & 0x08);
  555. input_report_key(dev, BTN_SELECT, ~data[0] & 0x01);
  556. input_sync(dev);
  557. break;
  558. default: /* not a pad, ignore */
  559. break;
  560. }
  561. }
  562. static void gc_psx_process_packet(struct gc *gc)
  563. {
  564. unsigned char data[GC_MAX_DEVICES][GC_PSX_BYTES];
  565. unsigned char id[GC_MAX_DEVICES];
  566. struct gc_pad *pad;
  567. int i;
  568. gc_psx_read_packet(gc, data, id);
  569. for (i = 0; i < GC_MAX_DEVICES; i++) {
  570. pad = &gc->pads[i];
  571. if (pad->type == GC_PSX || pad->type == GC_DDR)
  572. gc_psx_report_one(pad, id[i], data[i]);
  573. }
  574. }
  575. /*
  576. * gc_timer() initiates reads of console pads data.
  577. */
  578. static void gc_timer(struct timer_list *t)
  579. {
  580. struct gc *gc = from_timer(gc, t, timer);
  581. /*
  582. * N64 pads - must be read first, any read confuses them for 200 us
  583. */
  584. if (gc->pad_count[GC_N64])
  585. gc_n64_process_packet(gc);
  586. /*
  587. * NES and SNES pads or mouse
  588. */
  589. if (gc->pad_count[GC_NES] ||
  590. gc->pad_count[GC_SNES] ||
  591. gc->pad_count[GC_SNESMOUSE]) {
  592. gc_nes_process_packet(gc);
  593. }
  594. /*
  595. * Multi and Multi2 joysticks
  596. */
  597. if (gc->pad_count[GC_MULTI] || gc->pad_count[GC_MULTI2])
  598. gc_multi_process_packet(gc);
  599. /*
  600. * PSX controllers
  601. */
  602. if (gc->pad_count[GC_PSX] || gc->pad_count[GC_DDR])
  603. gc_psx_process_packet(gc);
  604. mod_timer(&gc->timer, jiffies + GC_REFRESH_TIME);
  605. }
  606. static int gc_open(struct input_dev *dev)
  607. {
  608. struct gc *gc = input_get_drvdata(dev);
  609. int err;
  610. err = mutex_lock_interruptible(&gc->mutex);
  611. if (err)
  612. return err;
  613. if (!gc->used++) {
  614. parport_claim(gc->pd);
  615. parport_write_control(gc->pd->port, 0x04);
  616. mod_timer(&gc->timer, jiffies + GC_REFRESH_TIME);
  617. }
  618. mutex_unlock(&gc->mutex);
  619. return 0;
  620. }
  621. static void gc_close(struct input_dev *dev)
  622. {
  623. struct gc *gc = input_get_drvdata(dev);
  624. mutex_lock(&gc->mutex);
  625. if (!--gc->used) {
  626. del_timer_sync(&gc->timer);
  627. parport_write_control(gc->pd->port, 0x00);
  628. parport_release(gc->pd);
  629. }
  630. mutex_unlock(&gc->mutex);
  631. }
  632. static int gc_setup_pad(struct gc *gc, int idx, int pad_type)
  633. {
  634. struct gc_pad *pad = &gc->pads[idx];
  635. struct input_dev *input_dev;
  636. int i;
  637. int err;
  638. if (pad_type < 1 || pad_type >= GC_MAX) {
  639. pr_err("Pad type %d unknown\n", pad_type);
  640. return -EINVAL;
  641. }
  642. pad->dev = input_dev = input_allocate_device();
  643. if (!input_dev) {
  644. pr_err("Not enough memory for input device\n");
  645. return -ENOMEM;
  646. }
  647. pad->type = pad_type;
  648. snprintf(pad->phys, sizeof(pad->phys),
  649. "%s/input%d", gc->pd->port->name, idx);
  650. input_dev->name = gc_names[pad_type];
  651. input_dev->phys = pad->phys;
  652. input_dev->id.bustype = BUS_PARPORT;
  653. input_dev->id.vendor = 0x0001;
  654. input_dev->id.product = pad_type;
  655. input_dev->id.version = 0x0100;
  656. input_set_drvdata(input_dev, gc);
  657. input_dev->open = gc_open;
  658. input_dev->close = gc_close;
  659. if (pad_type != GC_SNESMOUSE) {
  660. input_dev->evbit[0] = BIT_MASK(EV_KEY) | BIT_MASK(EV_ABS);
  661. for (i = 0; i < 2; i++)
  662. input_set_abs_params(input_dev, ABS_X + i, -1, 1, 0, 0);
  663. } else
  664. input_dev->evbit[0] = BIT_MASK(EV_KEY) | BIT_MASK(EV_REL);
  665. gc->pad_count[pad_type]++;
  666. switch (pad_type) {
  667. case GC_N64:
  668. for (i = 0; i < 10; i++)
  669. input_set_capability(input_dev, EV_KEY, gc_n64_btn[i]);
  670. for (i = 0; i < 2; i++) {
  671. input_set_abs_params(input_dev, ABS_X + i, -127, 126, 0, 2);
  672. input_set_abs_params(input_dev, ABS_HAT0X + i, -1, 1, 0, 0);
  673. }
  674. err = gc_n64_init_ff(input_dev, idx);
  675. if (err) {
  676. pr_warn("Failed to initiate rumble for N64 device %d\n",
  677. idx);
  678. goto err_free_dev;
  679. }
  680. break;
  681. case GC_SNESMOUSE:
  682. input_set_capability(input_dev, EV_KEY, BTN_LEFT);
  683. input_set_capability(input_dev, EV_KEY, BTN_RIGHT);
  684. input_set_capability(input_dev, EV_REL, REL_X);
  685. input_set_capability(input_dev, EV_REL, REL_Y);
  686. break;
  687. case GC_SNES:
  688. for (i = 4; i < 8; i++)
  689. input_set_capability(input_dev, EV_KEY, gc_snes_btn[i]);
  690. fallthrough;
  691. case GC_NES:
  692. for (i = 0; i < 4; i++)
  693. input_set_capability(input_dev, EV_KEY, gc_snes_btn[i]);
  694. break;
  695. case GC_MULTI2:
  696. input_set_capability(input_dev, EV_KEY, BTN_THUMB);
  697. fallthrough;
  698. case GC_MULTI:
  699. input_set_capability(input_dev, EV_KEY, BTN_TRIGGER);
  700. break;
  701. case GC_PSX:
  702. for (i = 0; i < 6; i++)
  703. input_set_abs_params(input_dev,
  704. gc_psx_abs[i], 4, 252, 0, 2);
  705. for (i = 0; i < 12; i++)
  706. input_set_capability(input_dev, EV_KEY, gc_psx_btn[i]);
  707. break;
  708. break;
  709. case GC_DDR:
  710. for (i = 0; i < 4; i++)
  711. input_set_capability(input_dev, EV_KEY,
  712. gc_psx_ddr_btn[i]);
  713. for (i = 0; i < 12; i++)
  714. input_set_capability(input_dev, EV_KEY, gc_psx_btn[i]);
  715. break;
  716. }
  717. err = input_register_device(pad->dev);
  718. if (err)
  719. goto err_free_dev;
  720. return 0;
  721. err_free_dev:
  722. input_free_device(pad->dev);
  723. pad->dev = NULL;
  724. return err;
  725. }
  726. static void gc_attach(struct parport *pp)
  727. {
  728. struct gc *gc;
  729. struct pardevice *pd;
  730. int i, port_idx;
  731. int count = 0;
  732. int *pads, n_pads;
  733. struct pardev_cb gc_parport_cb;
  734. for (port_idx = 0; port_idx < GC_MAX_PORTS; port_idx++) {
  735. if (gc_cfg[port_idx].nargs == 0 || gc_cfg[port_idx].args[0] < 0)
  736. continue;
  737. if (gc_cfg[port_idx].args[0] == pp->number)
  738. break;
  739. }
  740. if (port_idx == GC_MAX_PORTS) {
  741. pr_debug("Not using parport%d.\n", pp->number);
  742. return;
  743. }
  744. pads = gc_cfg[port_idx].args + 1;
  745. n_pads = gc_cfg[port_idx].nargs - 1;
  746. memset(&gc_parport_cb, 0, sizeof(gc_parport_cb));
  747. gc_parport_cb.flags = PARPORT_FLAG_EXCL;
  748. pd = parport_register_dev_model(pp, "gamecon", &gc_parport_cb,
  749. port_idx);
  750. if (!pd) {
  751. pr_err("parport busy already - lp.o loaded?\n");
  752. return;
  753. }
  754. gc = kzalloc(sizeof(struct gc), GFP_KERNEL);
  755. if (!gc) {
  756. pr_err("Not enough memory\n");
  757. goto err_unreg_pardev;
  758. }
  759. mutex_init(&gc->mutex);
  760. gc->pd = pd;
  761. gc->parportno = pp->number;
  762. timer_setup(&gc->timer, gc_timer, 0);
  763. for (i = 0; i < n_pads && i < GC_MAX_DEVICES; i++) {
  764. if (!pads[i])
  765. continue;
  766. if (gc_setup_pad(gc, i, pads[i]))
  767. goto err_unreg_devs;
  768. count++;
  769. }
  770. if (count == 0) {
  771. pr_err("No valid devices specified\n");
  772. goto err_free_gc;
  773. }
  774. gc_base[port_idx] = gc;
  775. return;
  776. err_unreg_devs:
  777. while (--i >= 0)
  778. if (gc->pads[i].dev)
  779. input_unregister_device(gc->pads[i].dev);
  780. err_free_gc:
  781. kfree(gc);
  782. err_unreg_pardev:
  783. parport_unregister_device(pd);
  784. }
  785. static void gc_detach(struct parport *port)
  786. {
  787. int i;
  788. struct gc *gc;
  789. for (i = 0; i < GC_MAX_PORTS; i++) {
  790. if (gc_base[i] && gc_base[i]->parportno == port->number)
  791. break;
  792. }
  793. if (i == GC_MAX_PORTS)
  794. return;
  795. gc = gc_base[i];
  796. gc_base[i] = NULL;
  797. for (i = 0; i < GC_MAX_DEVICES; i++)
  798. if (gc->pads[i].dev)
  799. input_unregister_device(gc->pads[i].dev);
  800. parport_unregister_device(gc->pd);
  801. kfree(gc);
  802. }
  803. static struct parport_driver gc_parport_driver = {
  804. .name = "gamecon",
  805. .match_port = gc_attach,
  806. .detach = gc_detach,
  807. .devmodel = true,
  808. };
  809. static int __init gc_init(void)
  810. {
  811. int i;
  812. int have_dev = 0;
  813. for (i = 0; i < GC_MAX_PORTS; i++) {
  814. if (gc_cfg[i].nargs == 0 || gc_cfg[i].args[0] < 0)
  815. continue;
  816. if (gc_cfg[i].nargs < 2) {
  817. pr_err("at least one device must be specified\n");
  818. return -EINVAL;
  819. }
  820. have_dev = 1;
  821. }
  822. if (!have_dev)
  823. return -ENODEV;
  824. return parport_register_driver(&gc_parport_driver);
  825. }
  826. static void __exit gc_exit(void)
  827. {
  828. parport_unregister_driver(&gc_parport_driver);
  829. }
  830. module_init(gc_init);
  831. module_exit(gc_exit);