yenta_socket.c 32 KB

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  1. /*
  2. * Regular cardbus driver ("yenta_socket")
  3. *
  4. * (C) Copyright 1999, 2000 Linus Torvalds
  5. *
  6. * Changelog:
  7. * Aug 2002: Manfred Spraul <manfred@colorfullife.com>
  8. * Dynamically adjust the size of the bridge resource
  9. *
  10. * May 2003: Dominik Brodowski <linux@brodo.de>
  11. * Merge pci_socket.c and yenta.c into one file
  12. */
  13. #include <linux/init.h>
  14. #include <linux/pci.h>
  15. #include <linux/sched.h>
  16. #include <linux/workqueue.h>
  17. #include <linux/interrupt.h>
  18. #include <linux/delay.h>
  19. #include <linux/module.h>
  20. #include <pcmcia/cs_types.h>
  21. #include <pcmcia/ss.h>
  22. #include <pcmcia/cs.h>
  23. #include <asm/io.h>
  24. #include "yenta_socket.h"
  25. #include "i82365.h"
  26. static int disable_clkrun;
  27. module_param(disable_clkrun, bool, 0444);
  28. MODULE_PARM_DESC(disable_clkrun, "If PC card doesn't function properly, please try this option");
  29. static int isa_probe = 1;
  30. module_param(isa_probe, bool, 0444);
  31. MODULE_PARM_DESC(isa_probe, "If set ISA interrupts are probed (default). Set to N to disable probing");
  32. static int pwr_irqs_off;
  33. module_param(pwr_irqs_off, bool, 0644);
  34. MODULE_PARM_DESC(pwr_irqs_off, "Force IRQs off during power-on of slot. Use only when seeing IRQ storms!");
  35. #if 0
  36. #define debug(x,args...) printk(KERN_DEBUG "%s: " x, __func__ , ##args)
  37. #else
  38. #define debug(x,args...)
  39. #endif
  40. /* Don't ask.. */
  41. #define to_cycles(ns) ((ns)/120)
  42. #define to_ns(cycles) ((cycles)*120)
  43. static int yenta_probe_cb_irq(struct yenta_socket *socket);
  44. static unsigned int override_bios;
  45. module_param(override_bios, uint, 0000);
  46. MODULE_PARM_DESC (override_bios, "yenta ignore bios resource allocation");
  47. /*
  48. * Generate easy-to-use ways of reading a cardbus sockets
  49. * regular memory space ("cb_xxx"), configuration space
  50. * ("config_xxx") and compatibility space ("exca_xxxx")
  51. */
  52. static inline u32 cb_readl(struct yenta_socket *socket, unsigned reg)
  53. {
  54. u32 val = readl(socket->base + reg);
  55. debug("%p %04x %08x\n", socket, reg, val);
  56. return val;
  57. }
  58. static inline void cb_writel(struct yenta_socket *socket, unsigned reg, u32 val)
  59. {
  60. debug("%p %04x %08x\n", socket, reg, val);
  61. writel(val, socket->base + reg);
  62. }
  63. static inline u8 config_readb(struct yenta_socket *socket, unsigned offset)
  64. {
  65. u8 val;
  66. pci_read_config_byte(socket->dev, offset, &val);
  67. debug("%p %04x %02x\n", socket, offset, val);
  68. return val;
  69. }
  70. static inline u16 config_readw(struct yenta_socket *socket, unsigned offset)
  71. {
  72. u16 val;
  73. pci_read_config_word(socket->dev, offset, &val);
  74. debug("%p %04x %04x\n", socket, offset, val);
  75. return val;
  76. }
  77. static inline u32 config_readl(struct yenta_socket *socket, unsigned offset)
  78. {
  79. u32 val;
  80. pci_read_config_dword(socket->dev, offset, &val);
  81. debug("%p %04x %08x\n", socket, offset, val);
  82. return val;
  83. }
  84. static inline void config_writeb(struct yenta_socket *socket, unsigned offset, u8 val)
  85. {
  86. debug("%p %04x %02x\n", socket, offset, val);
  87. pci_write_config_byte(socket->dev, offset, val);
  88. }
  89. static inline void config_writew(struct yenta_socket *socket, unsigned offset, u16 val)
  90. {
  91. debug("%p %04x %04x\n", socket, offset, val);
  92. pci_write_config_word(socket->dev, offset, val);
  93. }
  94. static inline void config_writel(struct yenta_socket *socket, unsigned offset, u32 val)
  95. {
  96. debug("%p %04x %08x\n", socket, offset, val);
  97. pci_write_config_dword(socket->dev, offset, val);
  98. }
  99. static inline u8 exca_readb(struct yenta_socket *socket, unsigned reg)
  100. {
  101. u8 val = readb(socket->base + 0x800 + reg);
  102. debug("%p %04x %02x\n", socket, reg, val);
  103. return val;
  104. }
  105. static inline u8 exca_readw(struct yenta_socket *socket, unsigned reg)
  106. {
  107. u16 val;
  108. val = readb(socket->base + 0x800 + reg);
  109. val |= readb(socket->base + 0x800 + reg + 1) << 8;
  110. debug("%p %04x %04x\n", socket, reg, val);
  111. return val;
  112. }
  113. static inline void exca_writeb(struct yenta_socket *socket, unsigned reg, u8 val)
  114. {
  115. debug("%p %04x %02x\n", socket, reg, val);
  116. writeb(val, socket->base + 0x800 + reg);
  117. }
  118. static void exca_writew(struct yenta_socket *socket, unsigned reg, u16 val)
  119. {
  120. debug("%p %04x %04x\n", socket, reg, val);
  121. writeb(val, socket->base + 0x800 + reg);
  122. writeb(val >> 8, socket->base + 0x800 + reg + 1);
  123. }
  124. /*
  125. * Ugh, mixed-mode cardbus and 16-bit pccard state: things depend
  126. * on what kind of card is inserted..
  127. */
  128. static int yenta_get_status(struct pcmcia_socket *sock, unsigned int *value)
  129. {
  130. struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket);
  131. unsigned int val;
  132. u32 state = cb_readl(socket, CB_SOCKET_STATE);
  133. val = (state & CB_3VCARD) ? SS_3VCARD : 0;
  134. val |= (state & CB_XVCARD) ? SS_XVCARD : 0;
  135. val |= (state & (CB_5VCARD | CB_3VCARD | CB_XVCARD | CB_YVCARD)) ? 0 : SS_PENDING;
  136. val |= (state & (CB_CDETECT1 | CB_CDETECT2)) ? SS_PENDING : 0;
  137. if (state & CB_CBCARD) {
  138. val |= SS_CARDBUS;
  139. val |= (state & CB_CARDSTS) ? SS_STSCHG : 0;
  140. val |= (state & (CB_CDETECT1 | CB_CDETECT2)) ? 0 : SS_DETECT;
  141. val |= (state & CB_PWRCYCLE) ? SS_POWERON | SS_READY : 0;
  142. } else if (state & CB_16BITCARD) {
  143. u8 status = exca_readb(socket, I365_STATUS);
  144. val |= ((status & I365_CS_DETECT) == I365_CS_DETECT) ? SS_DETECT : 0;
  145. if (exca_readb(socket, I365_INTCTL) & I365_PC_IOCARD) {
  146. val |= (status & I365_CS_STSCHG) ? 0 : SS_STSCHG;
  147. } else {
  148. val |= (status & I365_CS_BVD1) ? 0 : SS_BATDEAD;
  149. val |= (status & I365_CS_BVD2) ? 0 : SS_BATWARN;
  150. }
  151. val |= (status & I365_CS_WRPROT) ? SS_WRPROT : 0;
  152. val |= (status & I365_CS_READY) ? SS_READY : 0;
  153. val |= (status & I365_CS_POWERON) ? SS_POWERON : 0;
  154. }
  155. *value = val;
  156. return 0;
  157. }
  158. static int yenta_Vcc_power(u32 control)
  159. {
  160. switch (control & CB_SC_VCC_MASK) {
  161. case CB_SC_VCC_5V: return 50;
  162. case CB_SC_VCC_3V: return 33;
  163. default: return 0;
  164. }
  165. }
  166. static int yenta_Vpp_power(u32 control)
  167. {
  168. switch (control & CB_SC_VPP_MASK) {
  169. case CB_SC_VPP_12V: return 120;
  170. case CB_SC_VPP_5V: return 50;
  171. case CB_SC_VPP_3V: return 33;
  172. default: return 0;
  173. }
  174. }
  175. static int yenta_get_socket(struct pcmcia_socket *sock, socket_state_t *state)
  176. {
  177. struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket);
  178. u8 reg;
  179. u32 control;
  180. control = cb_readl(socket, CB_SOCKET_CONTROL);
  181. state->Vcc = yenta_Vcc_power(control);
  182. state->Vpp = yenta_Vpp_power(control);
  183. state->io_irq = socket->io_irq;
  184. if (cb_readl(socket, CB_SOCKET_STATE) & CB_CBCARD) {
  185. u16 bridge = config_readw(socket, CB_BRIDGE_CONTROL);
  186. if (bridge & CB_BRIDGE_CRST)
  187. state->flags |= SS_RESET;
  188. return 0;
  189. }
  190. /* 16-bit card state.. */
  191. reg = exca_readb(socket, I365_POWER);
  192. state->flags = (reg & I365_PWR_AUTO) ? SS_PWR_AUTO : 0;
  193. state->flags |= (reg & I365_PWR_OUT) ? SS_OUTPUT_ENA : 0;
  194. reg = exca_readb(socket, I365_INTCTL);
  195. state->flags |= (reg & I365_PC_RESET) ? 0 : SS_RESET;
  196. state->flags |= (reg & I365_PC_IOCARD) ? SS_IOCARD : 0;
  197. reg = exca_readb(socket, I365_CSCINT);
  198. state->csc_mask = (reg & I365_CSC_DETECT) ? SS_DETECT : 0;
  199. if (state->flags & SS_IOCARD) {
  200. state->csc_mask |= (reg & I365_CSC_STSCHG) ? SS_STSCHG : 0;
  201. } else {
  202. state->csc_mask |= (reg & I365_CSC_BVD1) ? SS_BATDEAD : 0;
  203. state->csc_mask |= (reg & I365_CSC_BVD2) ? SS_BATWARN : 0;
  204. state->csc_mask |= (reg & I365_CSC_READY) ? SS_READY : 0;
  205. }
  206. return 0;
  207. }
  208. static void yenta_set_power(struct yenta_socket *socket, socket_state_t *state)
  209. {
  210. u32 reg = 0; /* CB_SC_STPCLK? */
  211. switch (state->Vcc) {
  212. case 33: reg = CB_SC_VCC_3V; break;
  213. case 50: reg = CB_SC_VCC_5V; break;
  214. default: reg = 0; break;
  215. }
  216. switch (state->Vpp) {
  217. case 33: reg |= CB_SC_VPP_3V; break;
  218. case 50: reg |= CB_SC_VPP_5V; break;
  219. case 120: reg |= CB_SC_VPP_12V; break;
  220. }
  221. if (reg != cb_readl(socket, CB_SOCKET_CONTROL))
  222. cb_writel(socket, CB_SOCKET_CONTROL, reg);
  223. }
  224. static int yenta_set_socket(struct pcmcia_socket *sock, socket_state_t *state)
  225. {
  226. struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket);
  227. u16 bridge;
  228. yenta_set_power(socket, state);
  229. socket->io_irq = state->io_irq;
  230. bridge = config_readw(socket, CB_BRIDGE_CONTROL) & ~(CB_BRIDGE_CRST | CB_BRIDGE_INTR);
  231. if (cb_readl(socket, CB_SOCKET_STATE) & CB_CBCARD) {
  232. u8 intr;
  233. bridge |= (state->flags & SS_RESET) ? CB_BRIDGE_CRST : 0;
  234. /* ISA interrupt control? */
  235. intr = exca_readb(socket, I365_INTCTL);
  236. intr = (intr & ~0xf);
  237. if (!socket->cb_irq) {
  238. intr |= state->io_irq;
  239. bridge |= CB_BRIDGE_INTR;
  240. }
  241. exca_writeb(socket, I365_INTCTL, intr);
  242. } else {
  243. u8 reg;
  244. reg = exca_readb(socket, I365_INTCTL) & (I365_RING_ENA | I365_INTR_ENA);
  245. reg |= (state->flags & SS_RESET) ? 0 : I365_PC_RESET;
  246. reg |= (state->flags & SS_IOCARD) ? I365_PC_IOCARD : 0;
  247. if (state->io_irq != socket->cb_irq) {
  248. reg |= state->io_irq;
  249. bridge |= CB_BRIDGE_INTR;
  250. }
  251. exca_writeb(socket, I365_INTCTL, reg);
  252. reg = exca_readb(socket, I365_POWER) & (I365_VCC_MASK|I365_VPP1_MASK);
  253. reg |= I365_PWR_NORESET;
  254. if (state->flags & SS_PWR_AUTO) reg |= I365_PWR_AUTO;
  255. if (state->flags & SS_OUTPUT_ENA) reg |= I365_PWR_OUT;
  256. if (exca_readb(socket, I365_POWER) != reg)
  257. exca_writeb(socket, I365_POWER, reg);
  258. /* CSC interrupt: no ISA irq for CSC */
  259. reg = I365_CSC_DETECT;
  260. if (state->flags & SS_IOCARD) {
  261. if (state->csc_mask & SS_STSCHG) reg |= I365_CSC_STSCHG;
  262. } else {
  263. if (state->csc_mask & SS_BATDEAD) reg |= I365_CSC_BVD1;
  264. if (state->csc_mask & SS_BATWARN) reg |= I365_CSC_BVD2;
  265. if (state->csc_mask & SS_READY) reg |= I365_CSC_READY;
  266. }
  267. exca_writeb(socket, I365_CSCINT, reg);
  268. exca_readb(socket, I365_CSC);
  269. if(sock->zoom_video)
  270. sock->zoom_video(sock, state->flags & SS_ZVCARD);
  271. }
  272. config_writew(socket, CB_BRIDGE_CONTROL, bridge);
  273. /* Socket event mask: get card insert/remove events.. */
  274. cb_writel(socket, CB_SOCKET_EVENT, -1);
  275. cb_writel(socket, CB_SOCKET_MASK, CB_CDMASK);
  276. return 0;
  277. }
  278. static int yenta_set_io_map(struct pcmcia_socket *sock, struct pccard_io_map *io)
  279. {
  280. struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket);
  281. int map;
  282. unsigned char ioctl, addr, enable;
  283. map = io->map;
  284. if (map > 1)
  285. return -EINVAL;
  286. enable = I365_ENA_IO(map);
  287. addr = exca_readb(socket, I365_ADDRWIN);
  288. /* Disable the window before changing it.. */
  289. if (addr & enable) {
  290. addr &= ~enable;
  291. exca_writeb(socket, I365_ADDRWIN, addr);
  292. }
  293. exca_writew(socket, I365_IO(map)+I365_W_START, io->start);
  294. exca_writew(socket, I365_IO(map)+I365_W_STOP, io->stop);
  295. ioctl = exca_readb(socket, I365_IOCTL) & ~I365_IOCTL_MASK(map);
  296. if (io->flags & MAP_0WS) ioctl |= I365_IOCTL_0WS(map);
  297. if (io->flags & MAP_16BIT) ioctl |= I365_IOCTL_16BIT(map);
  298. if (io->flags & MAP_AUTOSZ) ioctl |= I365_IOCTL_IOCS16(map);
  299. exca_writeb(socket, I365_IOCTL, ioctl);
  300. if (io->flags & MAP_ACTIVE)
  301. exca_writeb(socket, I365_ADDRWIN, addr | enable);
  302. return 0;
  303. }
  304. static int yenta_set_mem_map(struct pcmcia_socket *sock, struct pccard_mem_map *mem)
  305. {
  306. struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket);
  307. struct pci_bus_region region;
  308. int map;
  309. unsigned char addr, enable;
  310. unsigned int start, stop, card_start;
  311. unsigned short word;
  312. pcibios_resource_to_bus(socket->dev, &region, mem->res);
  313. map = mem->map;
  314. start = region.start;
  315. stop = region.end;
  316. card_start = mem->card_start;
  317. if (map > 4 || start > stop || ((start ^ stop) >> 24) ||
  318. (card_start >> 26) || mem->speed > 1000)
  319. return -EINVAL;
  320. enable = I365_ENA_MEM(map);
  321. addr = exca_readb(socket, I365_ADDRWIN);
  322. if (addr & enable) {
  323. addr &= ~enable;
  324. exca_writeb(socket, I365_ADDRWIN, addr);
  325. }
  326. exca_writeb(socket, CB_MEM_PAGE(map), start >> 24);
  327. word = (start >> 12) & 0x0fff;
  328. if (mem->flags & MAP_16BIT)
  329. word |= I365_MEM_16BIT;
  330. if (mem->flags & MAP_0WS)
  331. word |= I365_MEM_0WS;
  332. exca_writew(socket, I365_MEM(map) + I365_W_START, word);
  333. word = (stop >> 12) & 0x0fff;
  334. switch (to_cycles(mem->speed)) {
  335. case 0: break;
  336. case 1: word |= I365_MEM_WS0; break;
  337. case 2: word |= I365_MEM_WS1; break;
  338. default: word |= I365_MEM_WS1 | I365_MEM_WS0; break;
  339. }
  340. exca_writew(socket, I365_MEM(map) + I365_W_STOP, word);
  341. word = ((card_start - start) >> 12) & 0x3fff;
  342. if (mem->flags & MAP_WRPROT)
  343. word |= I365_MEM_WRPROT;
  344. if (mem->flags & MAP_ATTRIB)
  345. word |= I365_MEM_REG;
  346. exca_writew(socket, I365_MEM(map) + I365_W_OFF, word);
  347. if (mem->flags & MAP_ACTIVE)
  348. exca_writeb(socket, I365_ADDRWIN, addr | enable);
  349. return 0;
  350. }
  351. static irqreturn_t yenta_interrupt(int irq, void *dev_id, struct pt_regs *regs)
  352. {
  353. unsigned int events;
  354. struct yenta_socket *socket = (struct yenta_socket *) dev_id;
  355. u8 csc;
  356. u32 cb_event;
  357. /* Clear interrupt status for the event */
  358. cb_event = cb_readl(socket, CB_SOCKET_EVENT);
  359. cb_writel(socket, CB_SOCKET_EVENT, cb_event);
  360. csc = exca_readb(socket, I365_CSC);
  361. events = (cb_event & (CB_CD1EVENT | CB_CD2EVENT)) ? SS_DETECT : 0 ;
  362. events |= (csc & I365_CSC_DETECT) ? SS_DETECT : 0;
  363. if (exca_readb(socket, I365_INTCTL) & I365_PC_IOCARD) {
  364. events |= (csc & I365_CSC_STSCHG) ? SS_STSCHG : 0;
  365. } else {
  366. events |= (csc & I365_CSC_BVD1) ? SS_BATDEAD : 0;
  367. events |= (csc & I365_CSC_BVD2) ? SS_BATWARN : 0;
  368. events |= (csc & I365_CSC_READY) ? SS_READY : 0;
  369. }
  370. if (events)
  371. pcmcia_parse_events(&socket->socket, events);
  372. if (cb_event || csc)
  373. return IRQ_HANDLED;
  374. return IRQ_NONE;
  375. }
  376. static void yenta_interrupt_wrapper(unsigned long data)
  377. {
  378. struct yenta_socket *socket = (struct yenta_socket *) data;
  379. yenta_interrupt(0, (void *)socket, NULL);
  380. socket->poll_timer.expires = jiffies + HZ;
  381. add_timer(&socket->poll_timer);
  382. }
  383. static void yenta_clear_maps(struct yenta_socket *socket)
  384. {
  385. int i;
  386. struct resource res = { .start = 0, .end = 0x0fff };
  387. pccard_io_map io = { 0, 0, 0, 0, 1 };
  388. pccard_mem_map mem = { .res = &res, };
  389. yenta_set_socket(&socket->socket, &dead_socket);
  390. for (i = 0; i < 2; i++) {
  391. io.map = i;
  392. yenta_set_io_map(&socket->socket, &io);
  393. }
  394. for (i = 0; i < 5; i++) {
  395. mem.map = i;
  396. yenta_set_mem_map(&socket->socket, &mem);
  397. }
  398. }
  399. /* redoes voltage interrogation if required */
  400. static void yenta_interrogate(struct yenta_socket *socket)
  401. {
  402. u32 state;
  403. state = cb_readl(socket, CB_SOCKET_STATE);
  404. if (!(state & (CB_5VCARD | CB_3VCARD | CB_XVCARD | CB_YVCARD)) ||
  405. (state & (CB_CDETECT1 | CB_CDETECT2 | CB_NOTACARD | CB_BADVCCREQ)) ||
  406. ((state & (CB_16BITCARD | CB_CBCARD)) == (CB_16BITCARD | CB_CBCARD)))
  407. cb_writel(socket, CB_SOCKET_FORCE, CB_CVSTEST);
  408. }
  409. /* Called at resume and initialization events */
  410. static int yenta_sock_init(struct pcmcia_socket *sock)
  411. {
  412. struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket);
  413. u16 bridge;
  414. bridge = config_readw(socket, CB_BRIDGE_CONTROL) & ~CB_BRIDGE_INTR;
  415. if (!socket->cb_irq)
  416. bridge |= CB_BRIDGE_INTR;
  417. config_writew(socket, CB_BRIDGE_CONTROL, bridge);
  418. exca_writeb(socket, I365_GBLCTL, 0x00);
  419. exca_writeb(socket, I365_GENCTL, 0x00);
  420. /* Redo card voltage interrogation */
  421. yenta_interrogate(socket);
  422. yenta_clear_maps(socket);
  423. if (socket->type && socket->type->sock_init)
  424. socket->type->sock_init(socket);
  425. /* Re-enable CSC interrupts */
  426. cb_writel(socket, CB_SOCKET_MASK, CB_CDMASK);
  427. return 0;
  428. }
  429. static int yenta_sock_suspend(struct pcmcia_socket *sock)
  430. {
  431. struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket);
  432. /* Disable CSC interrupts */
  433. cb_writel(socket, CB_SOCKET_MASK, 0x0);
  434. return 0;
  435. }
  436. /*
  437. * Use an adaptive allocation for the memory resource,
  438. * sometimes the memory behind pci bridges is limited:
  439. * 1/8 of the size of the io window of the parent.
  440. * max 4 MB, min 16 kB.
  441. */
  442. #define BRIDGE_MEM_MAX 4*1024*1024
  443. #define BRIDGE_MEM_MIN 16*1024
  444. #define BRIDGE_IO_MAX 256
  445. #define BRIDGE_IO_MIN 32
  446. #ifndef PCIBIOS_MIN_CARDBUS_IO
  447. #define PCIBIOS_MIN_CARDBUS_IO PCIBIOS_MIN_IO
  448. #endif
  449. static void yenta_allocate_res(struct yenta_socket *socket, int nr, unsigned type, int addr_start, int addr_end)
  450. {
  451. struct pci_bus *bus;
  452. struct resource *root, *res;
  453. u32 start, end;
  454. u32 align, size, min;
  455. unsigned mask;
  456. res = socket->dev->resource + PCI_BRIDGE_RESOURCES + nr;
  457. /* Already allocated? */
  458. if (res->parent)
  459. return;
  460. /* The granularity of the memory limit is 4kB, on IO it's 4 bytes */
  461. mask = ~0xfff;
  462. if (type & IORESOURCE_IO)
  463. mask = ~3;
  464. bus = socket->dev->subordinate;
  465. res->name = bus->name;
  466. res->flags = type;
  467. start = config_readl(socket, addr_start) & mask;
  468. end = config_readl(socket, addr_end) | ~mask;
  469. if (start && end > start && !override_bios) {
  470. res->start = start;
  471. res->end = end;
  472. root = pci_find_parent_resource(socket->dev, res);
  473. if (root && (request_resource(root, res) == 0))
  474. return;
  475. printk(KERN_INFO "yenta %s: Preassigned resource %d busy or not available, reconfiguring...\n",
  476. pci_name(socket->dev), nr);
  477. }
  478. res->start = 0;
  479. res->end = 0;
  480. root = pci_find_parent_resource(socket->dev, res);
  481. if (type & IORESOURCE_IO) {
  482. align = 1024;
  483. size = BRIDGE_IO_MAX;
  484. min = BRIDGE_IO_MIN;
  485. start = PCIBIOS_MIN_CARDBUS_IO;
  486. end = ~0U;
  487. } else {
  488. unsigned long avail = root->end - root->start;
  489. int i;
  490. size = BRIDGE_MEM_MAX;
  491. if (size > avail/8) {
  492. size=(avail+1)/8;
  493. /* round size down to next power of 2 */
  494. i = 0;
  495. while ((size /= 2) != 0)
  496. i++;
  497. size = 1 << i;
  498. }
  499. if (size < BRIDGE_MEM_MIN)
  500. size = BRIDGE_MEM_MIN;
  501. min = BRIDGE_MEM_MIN;
  502. align = size;
  503. start = PCIBIOS_MIN_MEM;
  504. end = ~0U;
  505. }
  506. do {
  507. if (allocate_resource(root, res, size, start, end, align, NULL, NULL)==0) {
  508. config_writel(socket, addr_start, res->start);
  509. config_writel(socket, addr_end, res->end);
  510. return;
  511. }
  512. size = size/2;
  513. align = size;
  514. } while (size >= min);
  515. printk(KERN_INFO "yenta %s: no resource of type %x available, trying to continue...\n",
  516. pci_name(socket->dev), type);
  517. res->start = res->end = 0;
  518. }
  519. /*
  520. * Allocate the bridge mappings for the device..
  521. */
  522. static void yenta_allocate_resources(struct yenta_socket *socket)
  523. {
  524. yenta_allocate_res(socket, 0, IORESOURCE_IO,
  525. PCI_CB_IO_BASE_0, PCI_CB_IO_LIMIT_0);
  526. yenta_allocate_res(socket, 1, IORESOURCE_IO,
  527. PCI_CB_IO_BASE_1, PCI_CB_IO_LIMIT_1);
  528. yenta_allocate_res(socket, 2, IORESOURCE_MEM|IORESOURCE_PREFETCH,
  529. PCI_CB_MEMORY_BASE_0, PCI_CB_MEMORY_LIMIT_0);
  530. yenta_allocate_res(socket, 3, IORESOURCE_MEM,
  531. PCI_CB_MEMORY_BASE_1, PCI_CB_MEMORY_LIMIT_1);
  532. }
  533. /*
  534. * Free the bridge mappings for the device..
  535. */
  536. static void yenta_free_resources(struct yenta_socket *socket)
  537. {
  538. int i;
  539. for (i=0;i<4;i++) {
  540. struct resource *res;
  541. res = socket->dev->resource + PCI_BRIDGE_RESOURCES + i;
  542. if (res->start != 0 && res->end != 0)
  543. release_resource(res);
  544. res->start = res->end = 0;
  545. }
  546. }
  547. /*
  548. * Close it down - release our resources and go home..
  549. */
  550. static void yenta_close(struct pci_dev *dev)
  551. {
  552. struct yenta_socket *sock = pci_get_drvdata(dev);
  553. /* we don't want a dying socket registered */
  554. pcmcia_unregister_socket(&sock->socket);
  555. /* Disable all events so we don't die in an IRQ storm */
  556. cb_writel(sock, CB_SOCKET_MASK, 0x0);
  557. exca_writeb(sock, I365_CSCINT, 0);
  558. if (sock->cb_irq)
  559. free_irq(sock->cb_irq, sock);
  560. else
  561. del_timer_sync(&sock->poll_timer);
  562. if (sock->base)
  563. iounmap(sock->base);
  564. yenta_free_resources(sock);
  565. pci_release_regions(dev);
  566. pci_disable_device(dev);
  567. pci_set_drvdata(dev, NULL);
  568. }
  569. static struct pccard_operations yenta_socket_operations = {
  570. .init = yenta_sock_init,
  571. .suspend = yenta_sock_suspend,
  572. .get_status = yenta_get_status,
  573. .get_socket = yenta_get_socket,
  574. .set_socket = yenta_set_socket,
  575. .set_io_map = yenta_set_io_map,
  576. .set_mem_map = yenta_set_mem_map,
  577. };
  578. #include "ti113x.h"
  579. #include "ricoh.h"
  580. #include "topic.h"
  581. #include "o2micro.h"
  582. enum {
  583. CARDBUS_TYPE_DEFAULT = -1,
  584. CARDBUS_TYPE_TI,
  585. CARDBUS_TYPE_TI113X,
  586. CARDBUS_TYPE_TI12XX,
  587. CARDBUS_TYPE_TI1250,
  588. CARDBUS_TYPE_RICOH,
  589. CARDBUS_TYPE_TOPIC97,
  590. CARDBUS_TYPE_O2MICRO,
  591. };
  592. /*
  593. * Different cardbus controllers have slightly different
  594. * initialization sequences etc details. List them here..
  595. */
  596. static struct cardbus_type cardbus_type[] = {
  597. [CARDBUS_TYPE_TI] = {
  598. .override = ti_override,
  599. .save_state = ti_save_state,
  600. .restore_state = ti_restore_state,
  601. .sock_init = ti_init,
  602. },
  603. [CARDBUS_TYPE_TI113X] = {
  604. .override = ti113x_override,
  605. .save_state = ti_save_state,
  606. .restore_state = ti_restore_state,
  607. .sock_init = ti_init,
  608. },
  609. [CARDBUS_TYPE_TI12XX] = {
  610. .override = ti12xx_override,
  611. .save_state = ti_save_state,
  612. .restore_state = ti_restore_state,
  613. .sock_init = ti_init,
  614. },
  615. [CARDBUS_TYPE_TI1250] = {
  616. .override = ti1250_override,
  617. .save_state = ti_save_state,
  618. .restore_state = ti_restore_state,
  619. .sock_init = ti_init,
  620. },
  621. [CARDBUS_TYPE_RICOH] = {
  622. .override = ricoh_override,
  623. .save_state = ricoh_save_state,
  624. .restore_state = ricoh_restore_state,
  625. },
  626. [CARDBUS_TYPE_TOPIC97] = {
  627. .override = topic97_override,
  628. },
  629. [CARDBUS_TYPE_O2MICRO] = {
  630. .override = o2micro_override,
  631. .restore_state = o2micro_restore_state,
  632. },
  633. };
  634. /*
  635. * Only probe "regular" interrupts, don't
  636. * touch dangerous spots like the mouse irq,
  637. * because there are mice that apparently
  638. * get really confused if they get fondled
  639. * too intimately.
  640. *
  641. * Default to 11, 10, 9, 7, 6, 5, 4, 3.
  642. */
  643. static u32 isa_interrupts = 0x0ef8;
  644. static unsigned int yenta_probe_irq(struct yenta_socket *socket, u32 isa_irq_mask)
  645. {
  646. int i;
  647. unsigned long val;
  648. u16 bridge_ctrl;
  649. u32 mask;
  650. /* Set up ISA irq routing to probe the ISA irqs.. */
  651. bridge_ctrl = config_readw(socket, CB_BRIDGE_CONTROL);
  652. if (!(bridge_ctrl & CB_BRIDGE_INTR)) {
  653. bridge_ctrl |= CB_BRIDGE_INTR;
  654. config_writew(socket, CB_BRIDGE_CONTROL, bridge_ctrl);
  655. }
  656. /*
  657. * Probe for usable interrupts using the force
  658. * register to generate bogus card status events.
  659. */
  660. cb_writel(socket, CB_SOCKET_EVENT, -1);
  661. cb_writel(socket, CB_SOCKET_MASK, CB_CSTSMASK);
  662. exca_writeb(socket, I365_CSCINT, 0);
  663. val = probe_irq_on() & isa_irq_mask;
  664. for (i = 1; i < 16; i++) {
  665. if (!((val >> i) & 1))
  666. continue;
  667. exca_writeb(socket, I365_CSCINT, I365_CSC_STSCHG | (i << 4));
  668. cb_writel(socket, CB_SOCKET_FORCE, CB_FCARDSTS);
  669. udelay(100);
  670. cb_writel(socket, CB_SOCKET_EVENT, -1);
  671. }
  672. cb_writel(socket, CB_SOCKET_MASK, 0);
  673. exca_writeb(socket, I365_CSCINT, 0);
  674. mask = probe_irq_mask(val) & 0xffff;
  675. bridge_ctrl &= ~CB_BRIDGE_INTR;
  676. config_writew(socket, CB_BRIDGE_CONTROL, bridge_ctrl);
  677. return mask;
  678. }
  679. /* interrupt handler, only used during probing */
  680. static irqreturn_t yenta_probe_handler(int irq, void *dev_id, struct pt_regs *regs)
  681. {
  682. struct yenta_socket *socket = (struct yenta_socket *) dev_id;
  683. u8 csc;
  684. u32 cb_event;
  685. /* Clear interrupt status for the event */
  686. cb_event = cb_readl(socket, CB_SOCKET_EVENT);
  687. cb_writel(socket, CB_SOCKET_EVENT, -1);
  688. csc = exca_readb(socket, I365_CSC);
  689. if (cb_event || csc) {
  690. socket->probe_status = 1;
  691. return IRQ_HANDLED;
  692. }
  693. return IRQ_NONE;
  694. }
  695. /* probes the PCI interrupt, use only on override functions */
  696. static int yenta_probe_cb_irq(struct yenta_socket *socket)
  697. {
  698. u16 bridge_ctrl;
  699. if (!socket->cb_irq)
  700. return -1;
  701. socket->probe_status = 0;
  702. /* disable ISA interrupts */
  703. bridge_ctrl = config_readw(socket, CB_BRIDGE_CONTROL);
  704. bridge_ctrl &= ~CB_BRIDGE_INTR;
  705. config_writew(socket, CB_BRIDGE_CONTROL, bridge_ctrl);
  706. if (request_irq(socket->cb_irq, yenta_probe_handler, SA_SHIRQ, "yenta", socket)) {
  707. printk(KERN_WARNING "Yenta: request_irq() in yenta_probe_cb_irq() failed!\n");
  708. return -1;
  709. }
  710. /* generate interrupt, wait */
  711. exca_writeb(socket, I365_CSCINT, I365_CSC_STSCHG);
  712. cb_writel(socket, CB_SOCKET_EVENT, -1);
  713. cb_writel(socket, CB_SOCKET_MASK, CB_CSTSMASK);
  714. cb_writel(socket, CB_SOCKET_FORCE, CB_FCARDSTS);
  715. msleep(100);
  716. /* disable interrupts */
  717. cb_writel(socket, CB_SOCKET_MASK, 0);
  718. exca_writeb(socket, I365_CSCINT, 0);
  719. cb_writel(socket, CB_SOCKET_EVENT, -1);
  720. exca_readb(socket, I365_CSC);
  721. free_irq(socket->cb_irq, socket);
  722. return (int) socket->probe_status;
  723. }
  724. /*
  725. * Set static data that doesn't need re-initializing..
  726. */
  727. static void yenta_get_socket_capabilities(struct yenta_socket *socket, u32 isa_irq_mask)
  728. {
  729. socket->socket.pci_irq = socket->cb_irq;
  730. if (isa_probe)
  731. socket->socket.irq_mask = yenta_probe_irq(socket, isa_irq_mask);
  732. else
  733. socket->socket.irq_mask = 0;
  734. printk(KERN_INFO "Yenta: ISA IRQ mask 0x%04x, PCI irq %d\n",
  735. socket->socket.irq_mask, socket->cb_irq);
  736. }
  737. /*
  738. * Initialize the standard cardbus registers
  739. */
  740. static void yenta_config_init(struct yenta_socket *socket)
  741. {
  742. u16 bridge;
  743. struct pci_dev *dev = socket->dev;
  744. pci_set_power_state(socket->dev, 0);
  745. config_writel(socket, CB_LEGACY_MODE_BASE, 0);
  746. config_writel(socket, PCI_BASE_ADDRESS_0, dev->resource[0].start);
  747. config_writew(socket, PCI_COMMAND,
  748. PCI_COMMAND_IO |
  749. PCI_COMMAND_MEMORY |
  750. PCI_COMMAND_MASTER |
  751. PCI_COMMAND_WAIT);
  752. /* MAGIC NUMBERS! Fixme */
  753. config_writeb(socket, PCI_CACHE_LINE_SIZE, L1_CACHE_BYTES / 4);
  754. config_writeb(socket, PCI_LATENCY_TIMER, 168);
  755. config_writel(socket, PCI_PRIMARY_BUS,
  756. (176 << 24) | /* sec. latency timer */
  757. (dev->subordinate->subordinate << 16) | /* subordinate bus */
  758. (dev->subordinate->secondary << 8) | /* secondary bus */
  759. dev->subordinate->primary); /* primary bus */
  760. /*
  761. * Set up the bridging state:
  762. * - enable write posting.
  763. * - memory window 0 prefetchable, window 1 non-prefetchable
  764. * - PCI interrupts enabled if a PCI interrupt exists..
  765. */
  766. bridge = config_readw(socket, CB_BRIDGE_CONTROL);
  767. bridge &= ~(CB_BRIDGE_CRST | CB_BRIDGE_PREFETCH1 | CB_BRIDGE_INTR | CB_BRIDGE_ISAEN | CB_BRIDGE_VGAEN);
  768. bridge |= CB_BRIDGE_PREFETCH0 | CB_BRIDGE_POSTEN | CB_BRIDGE_INTR;
  769. config_writew(socket, CB_BRIDGE_CONTROL, bridge);
  770. }
  771. /*
  772. * Initialize a cardbus controller. Make sure we have a usable
  773. * interrupt, and that we can map the cardbus area. Fill in the
  774. * socket information structure..
  775. */
  776. static int __devinit yenta_probe (struct pci_dev *dev, const struct pci_device_id *id)
  777. {
  778. struct yenta_socket *socket;
  779. int ret;
  780. socket = kmalloc(sizeof(struct yenta_socket), GFP_KERNEL);
  781. if (!socket)
  782. return -ENOMEM;
  783. memset(socket, 0, sizeof(*socket));
  784. /* prepare pcmcia_socket */
  785. socket->socket.ops = &yenta_socket_operations;
  786. socket->socket.resource_ops = &pccard_nonstatic_ops;
  787. socket->socket.dev.dev = &dev->dev;
  788. socket->socket.driver_data = socket;
  789. socket->socket.owner = THIS_MODULE;
  790. socket->socket.features = SS_CAP_PAGE_REGS | SS_CAP_PCCARD;
  791. socket->socket.map_size = 0x1000;
  792. socket->socket.cb_dev = dev;
  793. /* prepare struct yenta_socket */
  794. socket->dev = dev;
  795. pci_set_drvdata(dev, socket);
  796. /*
  797. * Do some basic sanity checking..
  798. */
  799. if (pci_enable_device(dev)) {
  800. ret = -EBUSY;
  801. goto free;
  802. }
  803. ret = pci_request_regions(dev, "yenta_socket");
  804. if (ret)
  805. goto disable;
  806. if (!pci_resource_start(dev, 0)) {
  807. printk(KERN_ERR "No cardbus resource!\n");
  808. ret = -ENODEV;
  809. goto release;
  810. }
  811. /*
  812. * Ok, start setup.. Map the cardbus registers,
  813. * and request the IRQ.
  814. */
  815. socket->base = ioremap(pci_resource_start(dev, 0), 0x1000);
  816. if (!socket->base) {
  817. ret = -ENOMEM;
  818. goto release;
  819. }
  820. /*
  821. * report the subsystem vendor and device for help debugging
  822. * the irq stuff...
  823. */
  824. printk(KERN_INFO "Yenta: CardBus bridge found at %s [%04x:%04x]\n",
  825. pci_name(dev), dev->subsystem_vendor, dev->subsystem_device);
  826. yenta_config_init(socket);
  827. /* Disable all events */
  828. cb_writel(socket, CB_SOCKET_MASK, 0x0);
  829. /* Set up the bridge regions.. */
  830. yenta_allocate_resources(socket);
  831. socket->cb_irq = dev->irq;
  832. /* Do we have special options for the device? */
  833. if (id->driver_data != CARDBUS_TYPE_DEFAULT &&
  834. id->driver_data < ARRAY_SIZE(cardbus_type)) {
  835. socket->type = &cardbus_type[id->driver_data];
  836. ret = socket->type->override(socket);
  837. if (ret < 0)
  838. goto unmap;
  839. }
  840. /* We must finish initialization here */
  841. if (!socket->cb_irq || request_irq(socket->cb_irq, yenta_interrupt, SA_SHIRQ, "yenta", socket)) {
  842. /* No IRQ or request_irq failed. Poll */
  843. socket->cb_irq = 0; /* But zero is a valid IRQ number. */
  844. init_timer(&socket->poll_timer);
  845. socket->poll_timer.function = yenta_interrupt_wrapper;
  846. socket->poll_timer.data = (unsigned long)socket;
  847. socket->poll_timer.expires = jiffies + HZ;
  848. add_timer(&socket->poll_timer);
  849. printk(KERN_INFO "Yenta: no PCI IRQ, CardBus support disabled for this socket.\n"
  850. KERN_INFO "Yenta: check your BIOS CardBus, BIOS IRQ or ACPI settings.\n");
  851. } else {
  852. socket->socket.features |= SS_CAP_CARDBUS;
  853. }
  854. /* Figure out what the dang thing can do for the PCMCIA layer... */
  855. yenta_interrogate(socket);
  856. yenta_get_socket_capabilities(socket, isa_interrupts);
  857. printk(KERN_INFO "Socket status: %08x\n", cb_readl(socket, CB_SOCKET_STATE));
  858. /* Register it with the pcmcia layer.. */
  859. ret = pcmcia_register_socket(&socket->socket);
  860. if (ret == 0)
  861. goto out;
  862. unmap:
  863. iounmap(socket->base);
  864. release:
  865. pci_release_regions(dev);
  866. disable:
  867. pci_disable_device(dev);
  868. free:
  869. kfree(socket);
  870. out:
  871. return ret;
  872. }
  873. static int yenta_dev_suspend (struct pci_dev *dev, pm_message_t state)
  874. {
  875. struct yenta_socket *socket = pci_get_drvdata(dev);
  876. int ret;
  877. ret = pcmcia_socket_dev_suspend(&dev->dev, state);
  878. if (socket) {
  879. if (socket->type && socket->type->save_state)
  880. socket->type->save_state(socket);
  881. /* FIXME: pci_save_state needs to have a better interface */
  882. pci_save_state(dev);
  883. pci_read_config_dword(dev, 16*4, &socket->saved_state[0]);
  884. pci_read_config_dword(dev, 17*4, &socket->saved_state[1]);
  885. /*
  886. * Some laptops (IBM T22) do not like us putting the Cardbus
  887. * bridge into D3. At a guess, some other laptop will
  888. * probably require this, so leave it commented out for now.
  889. */
  890. /* pci_set_power_state(dev, 3); */
  891. }
  892. return ret;
  893. }
  894. static int yenta_dev_resume (struct pci_dev *dev)
  895. {
  896. struct yenta_socket *socket = pci_get_drvdata(dev);
  897. if (socket) {
  898. pci_set_power_state(dev, 0);
  899. /* FIXME: pci_restore_state needs to have a better interface */
  900. pci_restore_state(dev);
  901. pci_write_config_dword(dev, 16*4, socket->saved_state[0]);
  902. pci_write_config_dword(dev, 17*4, socket->saved_state[1]);
  903. if (socket->type && socket->type->restore_state)
  904. socket->type->restore_state(socket);
  905. }
  906. return pcmcia_socket_dev_resume(&dev->dev);
  907. }
  908. #define CB_ID(vend,dev,type) \
  909. { \
  910. .vendor = vend, \
  911. .device = dev, \
  912. .subvendor = PCI_ANY_ID, \
  913. .subdevice = PCI_ANY_ID, \
  914. .class = PCI_CLASS_BRIDGE_CARDBUS << 8, \
  915. .class_mask = ~0, \
  916. .driver_data = CARDBUS_TYPE_##type, \
  917. }
  918. static struct pci_device_id yenta_table [] = {
  919. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1031, TI),
  920. /*
  921. * TBD: Check if these TI variants can use more
  922. * advanced overrides instead. (I can't get the
  923. * data sheets for these devices. --rmk)
  924. */
  925. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1210, TI),
  926. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1130, TI113X),
  927. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1131, TI113X),
  928. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1211, TI12XX),
  929. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1220, TI12XX),
  930. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1221, TI12XX),
  931. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1225, TI12XX),
  932. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1251A, TI12XX),
  933. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1251B, TI12XX),
  934. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1420, TI12XX),
  935. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1450, TI12XX),
  936. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1451A, TI12XX),
  937. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1510, TI12XX),
  938. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1520, TI12XX),
  939. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1620, TI12XX),
  940. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4410, TI12XX),
  941. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4450, TI12XX),
  942. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4451, TI12XX),
  943. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4510, TI12XX),
  944. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4520, TI12XX),
  945. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1250, TI1250),
  946. CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1410, TI1250),
  947. CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1211, TI12XX),
  948. CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1225, TI12XX),
  949. CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1410, TI1250),
  950. CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1420, TI12XX),
  951. CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C465, RICOH),
  952. CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C466, RICOH),
  953. CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C475, RICOH),
  954. CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C476, RICOH),
  955. CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C478, RICOH),
  956. CB_ID(PCI_VENDOR_ID_TOSHIBA, PCI_DEVICE_ID_TOSHIBA_TOPIC97, TOPIC97),
  957. CB_ID(PCI_VENDOR_ID_TOSHIBA, PCI_DEVICE_ID_TOSHIBA_TOPIC100, TOPIC97),
  958. CB_ID(PCI_VENDOR_ID_O2, PCI_ANY_ID, O2MICRO),
  959. /* match any cardbus bridge */
  960. CB_ID(PCI_ANY_ID, PCI_ANY_ID, DEFAULT),
  961. { /* all zeroes */ }
  962. };
  963. MODULE_DEVICE_TABLE(pci, yenta_table);
  964. static struct pci_driver yenta_cardbus_driver = {
  965. .name = "yenta_cardbus",
  966. .id_table = yenta_table,
  967. .probe = yenta_probe,
  968. .remove = __devexit_p(yenta_close),
  969. .suspend = yenta_dev_suspend,
  970. .resume = yenta_dev_resume,
  971. };
  972. static int __init yenta_socket_init(void)
  973. {
  974. return pci_register_driver (&yenta_cardbus_driver);
  975. }
  976. static void __exit yenta_socket_exit (void)
  977. {
  978. pci_unregister_driver (&yenta_cardbus_driver);
  979. }
  980. module_init(yenta_socket_init);
  981. module_exit(yenta_socket_exit);
  982. MODULE_LICENSE("GPL");