nodemgr.c 52 KB

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  1. /*
  2. * Node information (ConfigROM) collection and management.
  3. *
  4. * Copyright (C) 2000 Andreas E. Bombe
  5. * 2001-2003 Ben Collins <bcollins@debian.net>
  6. *
  7. * This code is licensed under the GPL. See the file COPYING in the root
  8. * directory of the kernel sources for details.
  9. */
  10. #include <linux/bitmap.h>
  11. #include <linux/kernel.h>
  12. #include <linux/list.h>
  13. #include <linux/slab.h>
  14. #include <linux/delay.h>
  15. #include <linux/kthread.h>
  16. #include <linux/module.h>
  17. #include <linux/moduleparam.h>
  18. #include <linux/freezer.h>
  19. #include <asm/atomic.h>
  20. #include "csr.h"
  21. #include "highlevel.h"
  22. #include "hosts.h"
  23. #include "ieee1394.h"
  24. #include "ieee1394_core.h"
  25. #include "ieee1394_hotplug.h"
  26. #include "ieee1394_types.h"
  27. #include "ieee1394_transactions.h"
  28. #include "nodemgr.h"
  29. static int ignore_drivers;
  30. module_param(ignore_drivers, int, S_IRUGO | S_IWUSR);
  31. MODULE_PARM_DESC(ignore_drivers, "Disable automatic probing for drivers.");
  32. struct nodemgr_csr_info {
  33. struct hpsb_host *host;
  34. nodeid_t nodeid;
  35. unsigned int generation;
  36. unsigned int speed_unverified:1;
  37. };
  38. /*
  39. * Correct the speed map entry. This is necessary
  40. * - for nodes with link speed < phy speed,
  41. * - for 1394b nodes with negotiated phy port speed < IEEE1394_SPEED_MAX.
  42. * A possible speed is determined by trial and error, using quadlet reads.
  43. */
  44. static int nodemgr_check_speed(struct nodemgr_csr_info *ci, u64 addr,
  45. quadlet_t *buffer)
  46. {
  47. quadlet_t q;
  48. u8 i, *speed, old_speed, good_speed;
  49. int error;
  50. speed = &(ci->host->speed[NODEID_TO_NODE(ci->nodeid)]);
  51. old_speed = *speed;
  52. good_speed = IEEE1394_SPEED_MAX + 1;
  53. /* Try every speed from S100 to old_speed.
  54. * If we did it the other way around, a too low speed could be caught
  55. * if the retry succeeded for some other reason, e.g. because the link
  56. * just finished its initialization. */
  57. for (i = IEEE1394_SPEED_100; i <= old_speed; i++) {
  58. *speed = i;
  59. error = hpsb_read(ci->host, ci->nodeid, ci->generation, addr,
  60. &q, sizeof(quadlet_t));
  61. if (error)
  62. break;
  63. *buffer = q;
  64. good_speed = i;
  65. }
  66. if (good_speed <= IEEE1394_SPEED_MAX) {
  67. HPSB_DEBUG("Speed probe of node " NODE_BUS_FMT " yields %s",
  68. NODE_BUS_ARGS(ci->host, ci->nodeid),
  69. hpsb_speedto_str[good_speed]);
  70. *speed = good_speed;
  71. ci->speed_unverified = 0;
  72. return 0;
  73. }
  74. *speed = old_speed;
  75. return error;
  76. }
  77. static int nodemgr_bus_read(struct csr1212_csr *csr, u64 addr, u16 length,
  78. void *buffer, void *__ci)
  79. {
  80. struct nodemgr_csr_info *ci = (struct nodemgr_csr_info*)__ci;
  81. int i, error;
  82. for (i = 1; ; i++) {
  83. error = hpsb_read(ci->host, ci->nodeid, ci->generation, addr,
  84. buffer, length);
  85. if (!error) {
  86. ci->speed_unverified = 0;
  87. break;
  88. }
  89. /* Give up after 3rd failure. */
  90. if (i == 3)
  91. break;
  92. /* The ieee1394_core guessed the node's speed capability from
  93. * the self ID. Check whether a lower speed works. */
  94. if (ci->speed_unverified && length == sizeof(quadlet_t)) {
  95. error = nodemgr_check_speed(ci, addr, buffer);
  96. if (!error)
  97. break;
  98. }
  99. if (msleep_interruptible(334))
  100. return -EINTR;
  101. }
  102. return error;
  103. }
  104. static int nodemgr_get_max_rom(quadlet_t *bus_info_data, void *__ci)
  105. {
  106. return (CSR1212_BE32_TO_CPU(bus_info_data[2]) >> 8) & 0x3;
  107. }
  108. static struct csr1212_bus_ops nodemgr_csr_ops = {
  109. .bus_read = nodemgr_bus_read,
  110. .get_max_rom = nodemgr_get_max_rom
  111. };
  112. /*
  113. * Basically what we do here is start off retrieving the bus_info block.
  114. * From there will fill in some info about the node, verify it is of IEEE
  115. * 1394 type, and that the crc checks out ok. After that we start off with
  116. * the root directory, and subdirectories. To do this, we retrieve the
  117. * quadlet header for a directory, find out the length, and retrieve the
  118. * complete directory entry (be it a leaf or a directory). We then process
  119. * it and add the info to our structure for that particular node.
  120. *
  121. * We verify CRC's along the way for each directory/block/leaf. The entire
  122. * node structure is generic, and simply stores the information in a way
  123. * that's easy to parse by the protocol interface.
  124. */
  125. /*
  126. * The nodemgr relies heavily on the Driver Model for device callbacks and
  127. * driver/device mappings. The old nodemgr used to handle all this itself,
  128. * but now we are much simpler because of the LDM.
  129. */
  130. static DEFINE_MUTEX(nodemgr_serialize);
  131. struct host_info {
  132. struct hpsb_host *host;
  133. struct list_head list;
  134. struct task_struct *thread;
  135. };
  136. static int nodemgr_bus_match(struct device * dev, struct device_driver * drv);
  137. static int nodemgr_uevent(struct class_device *cdev, char **envp, int num_envp,
  138. char *buffer, int buffer_size);
  139. static void nodemgr_resume_ne(struct node_entry *ne);
  140. static void nodemgr_remove_ne(struct node_entry *ne);
  141. static struct node_entry *find_entry_by_guid(u64 guid);
  142. struct bus_type ieee1394_bus_type = {
  143. .name = "ieee1394",
  144. .match = nodemgr_bus_match,
  145. };
  146. static void host_cls_release(struct class_device *class_dev)
  147. {
  148. put_device(&container_of((class_dev), struct hpsb_host, class_dev)->device);
  149. }
  150. struct class hpsb_host_class = {
  151. .name = "ieee1394_host",
  152. .release = host_cls_release,
  153. };
  154. static void ne_cls_release(struct class_device *class_dev)
  155. {
  156. put_device(&container_of((class_dev), struct node_entry, class_dev)->device);
  157. }
  158. static struct class nodemgr_ne_class = {
  159. .name = "ieee1394_node",
  160. .release = ne_cls_release,
  161. };
  162. static void ud_cls_release(struct class_device *class_dev)
  163. {
  164. put_device(&container_of((class_dev), struct unit_directory, class_dev)->device);
  165. }
  166. /* The name here is only so that unit directory hotplug works with old
  167. * style hotplug, which only ever did unit directories anyway. */
  168. static struct class nodemgr_ud_class = {
  169. .name = "ieee1394",
  170. .release = ud_cls_release,
  171. .uevent = nodemgr_uevent,
  172. };
  173. static struct hpsb_highlevel nodemgr_highlevel;
  174. static void nodemgr_release_ud(struct device *dev)
  175. {
  176. struct unit_directory *ud = container_of(dev, struct unit_directory, device);
  177. if (ud->vendor_name_kv)
  178. csr1212_release_keyval(ud->vendor_name_kv);
  179. if (ud->model_name_kv)
  180. csr1212_release_keyval(ud->model_name_kv);
  181. kfree(ud);
  182. }
  183. static void nodemgr_release_ne(struct device *dev)
  184. {
  185. struct node_entry *ne = container_of(dev, struct node_entry, device);
  186. if (ne->vendor_name_kv)
  187. csr1212_release_keyval(ne->vendor_name_kv);
  188. kfree(ne);
  189. }
  190. static void nodemgr_release_host(struct device *dev)
  191. {
  192. struct hpsb_host *host = container_of(dev, struct hpsb_host, device);
  193. csr1212_destroy_csr(host->csr.rom);
  194. kfree(host);
  195. }
  196. static int nodemgr_ud_platform_data;
  197. static struct device nodemgr_dev_template_ud = {
  198. .bus = &ieee1394_bus_type,
  199. .release = nodemgr_release_ud,
  200. .platform_data = &nodemgr_ud_platform_data,
  201. };
  202. static struct device nodemgr_dev_template_ne = {
  203. .bus = &ieee1394_bus_type,
  204. .release = nodemgr_release_ne,
  205. };
  206. /* This dummy driver prevents the host devices from being scanned. We have no
  207. * useful drivers for them yet, and there would be a deadlock possible if the
  208. * driver core scans the host device while the host's low-level driver (i.e.
  209. * the host's parent device) is being removed. */
  210. static struct device_driver nodemgr_mid_layer_driver = {
  211. .bus = &ieee1394_bus_type,
  212. .name = "nodemgr",
  213. .owner = THIS_MODULE,
  214. };
  215. struct device nodemgr_dev_template_host = {
  216. .bus = &ieee1394_bus_type,
  217. .release = nodemgr_release_host,
  218. };
  219. #define fw_attr(class, class_type, field, type, format_string) \
  220. static ssize_t fw_show_##class##_##field (struct device *dev, struct device_attribute *attr, char *buf)\
  221. { \
  222. class_type *class; \
  223. class = container_of(dev, class_type, device); \
  224. return sprintf(buf, format_string, (type)class->field); \
  225. } \
  226. static struct device_attribute dev_attr_##class##_##field = { \
  227. .attr = {.name = __stringify(field), .mode = S_IRUGO }, \
  228. .show = fw_show_##class##_##field, \
  229. };
  230. #define fw_attr_td(class, class_type, td_kv) \
  231. static ssize_t fw_show_##class##_##td_kv (struct device *dev, struct device_attribute *attr, char *buf)\
  232. { \
  233. int len; \
  234. class_type *class = container_of(dev, class_type, device); \
  235. len = (class->td_kv->value.leaf.len - 2) * sizeof(quadlet_t); \
  236. memcpy(buf, \
  237. CSR1212_TEXTUAL_DESCRIPTOR_LEAF_DATA(class->td_kv), \
  238. len); \
  239. while ((buf + len - 1) == '\0') \
  240. len--; \
  241. buf[len++] = '\n'; \
  242. buf[len] = '\0'; \
  243. return len; \
  244. } \
  245. static struct device_attribute dev_attr_##class##_##td_kv = { \
  246. .attr = {.name = __stringify(td_kv), .mode = S_IRUGO }, \
  247. .show = fw_show_##class##_##td_kv, \
  248. };
  249. #define fw_drv_attr(field, type, format_string) \
  250. static ssize_t fw_drv_show_##field (struct device_driver *drv, char *buf) \
  251. { \
  252. struct hpsb_protocol_driver *driver; \
  253. driver = container_of(drv, struct hpsb_protocol_driver, driver); \
  254. return sprintf(buf, format_string, (type)driver->field);\
  255. } \
  256. static struct driver_attribute driver_attr_drv_##field = { \
  257. .attr = {.name = __stringify(field), .mode = S_IRUGO }, \
  258. .show = fw_drv_show_##field, \
  259. };
  260. static ssize_t fw_show_ne_bus_options(struct device *dev, struct device_attribute *attr, char *buf)
  261. {
  262. struct node_entry *ne = container_of(dev, struct node_entry, device);
  263. return sprintf(buf, "IRMC(%d) CMC(%d) ISC(%d) BMC(%d) PMC(%d) GEN(%d) "
  264. "LSPD(%d) MAX_REC(%d) MAX_ROM(%d) CYC_CLK_ACC(%d)\n",
  265. ne->busopt.irmc,
  266. ne->busopt.cmc, ne->busopt.isc, ne->busopt.bmc,
  267. ne->busopt.pmc, ne->busopt.generation, ne->busopt.lnkspd,
  268. ne->busopt.max_rec,
  269. ne->busopt.max_rom,
  270. ne->busopt.cyc_clk_acc);
  271. }
  272. static DEVICE_ATTR(bus_options,S_IRUGO,fw_show_ne_bus_options,NULL);
  273. #ifdef HPSB_DEBUG_TLABELS
  274. static ssize_t fw_show_ne_tlabels_free(struct device *dev,
  275. struct device_attribute *attr, char *buf)
  276. {
  277. struct node_entry *ne = container_of(dev, struct node_entry, device);
  278. unsigned long flags;
  279. unsigned long *tp = ne->host->tl_pool[NODEID_TO_NODE(ne->nodeid)].map;
  280. int tf;
  281. spin_lock_irqsave(&hpsb_tlabel_lock, flags);
  282. tf = 64 - bitmap_weight(tp, 64);
  283. spin_unlock_irqrestore(&hpsb_tlabel_lock, flags);
  284. return sprintf(buf, "%d\n", tf);
  285. }
  286. static DEVICE_ATTR(tlabels_free,S_IRUGO,fw_show_ne_tlabels_free,NULL);
  287. static ssize_t fw_show_ne_tlabels_mask(struct device *dev,
  288. struct device_attribute *attr, char *buf)
  289. {
  290. struct node_entry *ne = container_of(dev, struct node_entry, device);
  291. unsigned long flags;
  292. unsigned long *tp = ne->host->tl_pool[NODEID_TO_NODE(ne->nodeid)].map;
  293. u64 tm;
  294. spin_lock_irqsave(&hpsb_tlabel_lock, flags);
  295. #if (BITS_PER_LONG <= 32)
  296. tm = ((u64)tp[0] << 32) + tp[1];
  297. #else
  298. tm = tp[0];
  299. #endif
  300. spin_unlock_irqrestore(&hpsb_tlabel_lock, flags);
  301. return sprintf(buf, "0x%016llx\n", (unsigned long long)tm);
  302. }
  303. static DEVICE_ATTR(tlabels_mask, S_IRUGO, fw_show_ne_tlabels_mask, NULL);
  304. #endif /* HPSB_DEBUG_TLABELS */
  305. static ssize_t fw_set_ignore_driver(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)
  306. {
  307. struct unit_directory *ud = container_of(dev, struct unit_directory, device);
  308. int state = simple_strtoul(buf, NULL, 10);
  309. if (state == 1) {
  310. ud->ignore_driver = 1;
  311. down_write(&ieee1394_bus_type.subsys.rwsem);
  312. device_release_driver(dev);
  313. up_write(&ieee1394_bus_type.subsys.rwsem);
  314. } else if (state == 0)
  315. ud->ignore_driver = 0;
  316. return count;
  317. }
  318. static ssize_t fw_get_ignore_driver(struct device *dev, struct device_attribute *attr, char *buf)
  319. {
  320. struct unit_directory *ud = container_of(dev, struct unit_directory, device);
  321. return sprintf(buf, "%d\n", ud->ignore_driver);
  322. }
  323. static DEVICE_ATTR(ignore_driver, S_IWUSR | S_IRUGO, fw_get_ignore_driver, fw_set_ignore_driver);
  324. static ssize_t fw_set_destroy_node(struct bus_type *bus, const char *buf, size_t count)
  325. {
  326. struct node_entry *ne;
  327. u64 guid = (u64)simple_strtoull(buf, NULL, 16);
  328. ne = find_entry_by_guid(guid);
  329. if (ne == NULL || !ne->in_limbo)
  330. return -EINVAL;
  331. nodemgr_remove_ne(ne);
  332. return count;
  333. }
  334. static ssize_t fw_get_destroy_node(struct bus_type *bus, char *buf)
  335. {
  336. return sprintf(buf, "You can destroy in_limbo nodes by writing their GUID to this file\n");
  337. }
  338. static BUS_ATTR(destroy_node, S_IWUSR | S_IRUGO, fw_get_destroy_node, fw_set_destroy_node);
  339. static ssize_t fw_set_rescan(struct bus_type *bus, const char *buf,
  340. size_t count)
  341. {
  342. int error = 0;
  343. if (simple_strtoul(buf, NULL, 10) == 1)
  344. error = bus_rescan_devices(&ieee1394_bus_type);
  345. return error ? error : count;
  346. }
  347. static ssize_t fw_get_rescan(struct bus_type *bus, char *buf)
  348. {
  349. return sprintf(buf, "You can force a rescan of the bus for "
  350. "drivers by writing a 1 to this file\n");
  351. }
  352. static BUS_ATTR(rescan, S_IWUSR | S_IRUGO, fw_get_rescan, fw_set_rescan);
  353. static ssize_t fw_set_ignore_drivers(struct bus_type *bus, const char *buf, size_t count)
  354. {
  355. int state = simple_strtoul(buf, NULL, 10);
  356. if (state == 1)
  357. ignore_drivers = 1;
  358. else if (state == 0)
  359. ignore_drivers = 0;
  360. return count;
  361. }
  362. static ssize_t fw_get_ignore_drivers(struct bus_type *bus, char *buf)
  363. {
  364. return sprintf(buf, "%d\n", ignore_drivers);
  365. }
  366. static BUS_ATTR(ignore_drivers, S_IWUSR | S_IRUGO, fw_get_ignore_drivers, fw_set_ignore_drivers);
  367. struct bus_attribute *const fw_bus_attrs[] = {
  368. &bus_attr_destroy_node,
  369. &bus_attr_rescan,
  370. &bus_attr_ignore_drivers,
  371. NULL
  372. };
  373. fw_attr(ne, struct node_entry, capabilities, unsigned int, "0x%06x\n")
  374. fw_attr(ne, struct node_entry, nodeid, unsigned int, "0x%04x\n")
  375. fw_attr(ne, struct node_entry, vendor_id, unsigned int, "0x%06x\n")
  376. fw_attr_td(ne, struct node_entry, vendor_name_kv)
  377. fw_attr(ne, struct node_entry, guid, unsigned long long, "0x%016Lx\n")
  378. fw_attr(ne, struct node_entry, guid_vendor_id, unsigned int, "0x%06x\n")
  379. fw_attr(ne, struct node_entry, in_limbo, int, "%d\n");
  380. static struct device_attribute *const fw_ne_attrs[] = {
  381. &dev_attr_ne_guid,
  382. &dev_attr_ne_guid_vendor_id,
  383. &dev_attr_ne_capabilities,
  384. &dev_attr_ne_vendor_id,
  385. &dev_attr_ne_nodeid,
  386. &dev_attr_bus_options,
  387. #ifdef HPSB_DEBUG_TLABELS
  388. &dev_attr_tlabels_free,
  389. &dev_attr_tlabels_mask,
  390. #endif
  391. };
  392. fw_attr(ud, struct unit_directory, address, unsigned long long, "0x%016Lx\n")
  393. fw_attr(ud, struct unit_directory, length, int, "%d\n")
  394. /* These are all dependent on the value being provided */
  395. fw_attr(ud, struct unit_directory, vendor_id, unsigned int, "0x%06x\n")
  396. fw_attr(ud, struct unit_directory, model_id, unsigned int, "0x%06x\n")
  397. fw_attr(ud, struct unit_directory, specifier_id, unsigned int, "0x%06x\n")
  398. fw_attr(ud, struct unit_directory, version, unsigned int, "0x%06x\n")
  399. fw_attr_td(ud, struct unit_directory, vendor_name_kv)
  400. fw_attr_td(ud, struct unit_directory, model_name_kv)
  401. static struct device_attribute *const fw_ud_attrs[] = {
  402. &dev_attr_ud_address,
  403. &dev_attr_ud_length,
  404. &dev_attr_ignore_driver,
  405. };
  406. fw_attr(host, struct hpsb_host, node_count, int, "%d\n")
  407. fw_attr(host, struct hpsb_host, selfid_count, int, "%d\n")
  408. fw_attr(host, struct hpsb_host, nodes_active, int, "%d\n")
  409. fw_attr(host, struct hpsb_host, in_bus_reset, int, "%d\n")
  410. fw_attr(host, struct hpsb_host, is_root, int, "%d\n")
  411. fw_attr(host, struct hpsb_host, is_cycmst, int, "%d\n")
  412. fw_attr(host, struct hpsb_host, is_irm, int, "%d\n")
  413. fw_attr(host, struct hpsb_host, is_busmgr, int, "%d\n")
  414. static struct device_attribute *const fw_host_attrs[] = {
  415. &dev_attr_host_node_count,
  416. &dev_attr_host_selfid_count,
  417. &dev_attr_host_nodes_active,
  418. &dev_attr_host_in_bus_reset,
  419. &dev_attr_host_is_root,
  420. &dev_attr_host_is_cycmst,
  421. &dev_attr_host_is_irm,
  422. &dev_attr_host_is_busmgr,
  423. };
  424. static ssize_t fw_show_drv_device_ids(struct device_driver *drv, char *buf)
  425. {
  426. struct hpsb_protocol_driver *driver;
  427. struct ieee1394_device_id *id;
  428. int length = 0;
  429. char *scratch = buf;
  430. driver = container_of(drv, struct hpsb_protocol_driver, driver);
  431. for (id = driver->id_table; id->match_flags != 0; id++) {
  432. int need_coma = 0;
  433. if (id->match_flags & IEEE1394_MATCH_VENDOR_ID) {
  434. length += sprintf(scratch, "vendor_id=0x%06x", id->vendor_id);
  435. scratch = buf + length;
  436. need_coma++;
  437. }
  438. if (id->match_flags & IEEE1394_MATCH_MODEL_ID) {
  439. length += sprintf(scratch, "%smodel_id=0x%06x",
  440. need_coma++ ? "," : "",
  441. id->model_id);
  442. scratch = buf + length;
  443. }
  444. if (id->match_flags & IEEE1394_MATCH_SPECIFIER_ID) {
  445. length += sprintf(scratch, "%sspecifier_id=0x%06x",
  446. need_coma++ ? "," : "",
  447. id->specifier_id);
  448. scratch = buf + length;
  449. }
  450. if (id->match_flags & IEEE1394_MATCH_VERSION) {
  451. length += sprintf(scratch, "%sversion=0x%06x",
  452. need_coma++ ? "," : "",
  453. id->version);
  454. scratch = buf + length;
  455. }
  456. if (need_coma) {
  457. *scratch++ = '\n';
  458. length++;
  459. }
  460. }
  461. return length;
  462. }
  463. static DRIVER_ATTR(device_ids,S_IRUGO,fw_show_drv_device_ids,NULL);
  464. fw_drv_attr(name, const char *, "%s\n")
  465. static struct driver_attribute *const fw_drv_attrs[] = {
  466. &driver_attr_drv_name,
  467. &driver_attr_device_ids,
  468. };
  469. static void nodemgr_create_drv_files(struct hpsb_protocol_driver *driver)
  470. {
  471. struct device_driver *drv = &driver->driver;
  472. int i;
  473. for (i = 0; i < ARRAY_SIZE(fw_drv_attrs); i++)
  474. if (driver_create_file(drv, fw_drv_attrs[i]))
  475. goto fail;
  476. return;
  477. fail:
  478. HPSB_ERR("Failed to add sysfs attribute for driver %s", driver->name);
  479. }
  480. static void nodemgr_remove_drv_files(struct hpsb_protocol_driver *driver)
  481. {
  482. struct device_driver *drv = &driver->driver;
  483. int i;
  484. for (i = 0; i < ARRAY_SIZE(fw_drv_attrs); i++)
  485. driver_remove_file(drv, fw_drv_attrs[i]);
  486. }
  487. static void nodemgr_create_ne_dev_files(struct node_entry *ne)
  488. {
  489. struct device *dev = &ne->device;
  490. int i;
  491. for (i = 0; i < ARRAY_SIZE(fw_ne_attrs); i++)
  492. if (device_create_file(dev, fw_ne_attrs[i]))
  493. goto fail;
  494. return;
  495. fail:
  496. HPSB_ERR("Failed to add sysfs attribute for node %016Lx",
  497. (unsigned long long)ne->guid);
  498. }
  499. static void nodemgr_create_host_dev_files(struct hpsb_host *host)
  500. {
  501. struct device *dev = &host->device;
  502. int i;
  503. for (i = 0; i < ARRAY_SIZE(fw_host_attrs); i++)
  504. if (device_create_file(dev, fw_host_attrs[i]))
  505. goto fail;
  506. return;
  507. fail:
  508. HPSB_ERR("Failed to add sysfs attribute for host %d", host->id);
  509. }
  510. static struct node_entry *find_entry_by_nodeid(struct hpsb_host *host,
  511. nodeid_t nodeid);
  512. static void nodemgr_update_host_dev_links(struct hpsb_host *host)
  513. {
  514. struct device *dev = &host->device;
  515. struct node_entry *ne;
  516. sysfs_remove_link(&dev->kobj, "irm_id");
  517. sysfs_remove_link(&dev->kobj, "busmgr_id");
  518. sysfs_remove_link(&dev->kobj, "host_id");
  519. if ((ne = find_entry_by_nodeid(host, host->irm_id)) &&
  520. sysfs_create_link(&dev->kobj, &ne->device.kobj, "irm_id"))
  521. goto fail;
  522. if ((ne = find_entry_by_nodeid(host, host->busmgr_id)) &&
  523. sysfs_create_link(&dev->kobj, &ne->device.kobj, "busmgr_id"))
  524. goto fail;
  525. if ((ne = find_entry_by_nodeid(host, host->node_id)) &&
  526. sysfs_create_link(&dev->kobj, &ne->device.kobj, "host_id"))
  527. goto fail;
  528. return;
  529. fail:
  530. HPSB_ERR("Failed to update sysfs attributes for host %d", host->id);
  531. }
  532. static void nodemgr_create_ud_dev_files(struct unit_directory *ud)
  533. {
  534. struct device *dev = &ud->device;
  535. int i;
  536. for (i = 0; i < ARRAY_SIZE(fw_ud_attrs); i++)
  537. if (device_create_file(dev, fw_ud_attrs[i]))
  538. goto fail;
  539. if (ud->flags & UNIT_DIRECTORY_SPECIFIER_ID)
  540. if (device_create_file(dev, &dev_attr_ud_specifier_id))
  541. goto fail;
  542. if (ud->flags & UNIT_DIRECTORY_VERSION)
  543. if (device_create_file(dev, &dev_attr_ud_version))
  544. goto fail;
  545. if (ud->flags & UNIT_DIRECTORY_VENDOR_ID) {
  546. if (device_create_file(dev, &dev_attr_ud_vendor_id))
  547. goto fail;
  548. if (ud->vendor_name_kv &&
  549. device_create_file(dev, &dev_attr_ud_vendor_name_kv))
  550. goto fail;
  551. }
  552. if (ud->flags & UNIT_DIRECTORY_MODEL_ID) {
  553. if (device_create_file(dev, &dev_attr_ud_model_id))
  554. goto fail;
  555. if (ud->model_name_kv &&
  556. device_create_file(dev, &dev_attr_ud_model_name_kv))
  557. goto fail;
  558. }
  559. return;
  560. fail:
  561. HPSB_ERR("Failed to add sysfs attributes for unit %s",
  562. ud->device.bus_id);
  563. }
  564. static int nodemgr_bus_match(struct device * dev, struct device_driver * drv)
  565. {
  566. struct hpsb_protocol_driver *driver;
  567. struct unit_directory *ud;
  568. struct ieee1394_device_id *id;
  569. /* We only match unit directories */
  570. if (dev->platform_data != &nodemgr_ud_platform_data)
  571. return 0;
  572. ud = container_of(dev, struct unit_directory, device);
  573. if (ud->ne->in_limbo || ud->ignore_driver)
  574. return 0;
  575. /* We only match drivers of type hpsb_protocol_driver */
  576. if (drv == &nodemgr_mid_layer_driver)
  577. return 0;
  578. driver = container_of(drv, struct hpsb_protocol_driver, driver);
  579. for (id = driver->id_table; id->match_flags != 0; id++) {
  580. if ((id->match_flags & IEEE1394_MATCH_VENDOR_ID) &&
  581. id->vendor_id != ud->vendor_id)
  582. continue;
  583. if ((id->match_flags & IEEE1394_MATCH_MODEL_ID) &&
  584. id->model_id != ud->model_id)
  585. continue;
  586. if ((id->match_flags & IEEE1394_MATCH_SPECIFIER_ID) &&
  587. id->specifier_id != ud->specifier_id)
  588. continue;
  589. if ((id->match_flags & IEEE1394_MATCH_VERSION) &&
  590. id->version != ud->version)
  591. continue;
  592. return 1;
  593. }
  594. return 0;
  595. }
  596. static DEFINE_MUTEX(nodemgr_serialize_remove_uds);
  597. static void nodemgr_remove_uds(struct node_entry *ne)
  598. {
  599. struct class_device *cdev;
  600. struct unit_directory *tmp, *ud;
  601. /* Iteration over nodemgr_ud_class.children has to be protected by
  602. * nodemgr_ud_class.sem, but class_device_unregister() will eventually
  603. * take nodemgr_ud_class.sem too. Therefore pick out one ud at a time,
  604. * release the semaphore, and then unregister the ud. Since this code
  605. * may be called from other contexts besides the knodemgrds, protect the
  606. * gap after release of the semaphore by nodemgr_serialize_remove_uds.
  607. */
  608. mutex_lock(&nodemgr_serialize_remove_uds);
  609. for (;;) {
  610. ud = NULL;
  611. down(&nodemgr_ud_class.sem);
  612. list_for_each_entry(cdev, &nodemgr_ud_class.children, node) {
  613. tmp = container_of(cdev, struct unit_directory,
  614. class_dev);
  615. if (tmp->ne == ne) {
  616. ud = tmp;
  617. break;
  618. }
  619. }
  620. up(&nodemgr_ud_class.sem);
  621. if (ud == NULL)
  622. break;
  623. class_device_unregister(&ud->class_dev);
  624. device_unregister(&ud->device);
  625. }
  626. mutex_unlock(&nodemgr_serialize_remove_uds);
  627. }
  628. static void nodemgr_remove_ne(struct node_entry *ne)
  629. {
  630. struct device *dev;
  631. dev = get_device(&ne->device);
  632. if (!dev)
  633. return;
  634. HPSB_DEBUG("Node removed: ID:BUS[" NODE_BUS_FMT "] GUID[%016Lx]",
  635. NODE_BUS_ARGS(ne->host, ne->nodeid), (unsigned long long)ne->guid);
  636. nodemgr_remove_uds(ne);
  637. class_device_unregister(&ne->class_dev);
  638. device_unregister(dev);
  639. put_device(dev);
  640. }
  641. static int __nodemgr_remove_host_dev(struct device *dev, void *data)
  642. {
  643. nodemgr_remove_ne(container_of(dev, struct node_entry, device));
  644. return 0;
  645. }
  646. static void nodemgr_remove_host_dev(struct device *dev)
  647. {
  648. WARN_ON(device_for_each_child(dev, NULL, __nodemgr_remove_host_dev));
  649. sysfs_remove_link(&dev->kobj, "irm_id");
  650. sysfs_remove_link(&dev->kobj, "busmgr_id");
  651. sysfs_remove_link(&dev->kobj, "host_id");
  652. }
  653. static void nodemgr_update_bus_options(struct node_entry *ne)
  654. {
  655. #ifdef CONFIG_IEEE1394_VERBOSEDEBUG
  656. static const u16 mr[] = { 4, 64, 1024, 0};
  657. #endif
  658. quadlet_t busoptions = be32_to_cpu(ne->csr->bus_info_data[2]);
  659. ne->busopt.irmc = (busoptions >> 31) & 1;
  660. ne->busopt.cmc = (busoptions >> 30) & 1;
  661. ne->busopt.isc = (busoptions >> 29) & 1;
  662. ne->busopt.bmc = (busoptions >> 28) & 1;
  663. ne->busopt.pmc = (busoptions >> 27) & 1;
  664. ne->busopt.cyc_clk_acc = (busoptions >> 16) & 0xff;
  665. ne->busopt.max_rec = 1 << (((busoptions >> 12) & 0xf) + 1);
  666. ne->busopt.max_rom = (busoptions >> 8) & 0x3;
  667. ne->busopt.generation = (busoptions >> 4) & 0xf;
  668. ne->busopt.lnkspd = busoptions & 0x7;
  669. HPSB_VERBOSE("NodeMgr: raw=0x%08x irmc=%d cmc=%d isc=%d bmc=%d pmc=%d "
  670. "cyc_clk_acc=%d max_rec=%d max_rom=%d gen=%d lspd=%d",
  671. busoptions, ne->busopt.irmc, ne->busopt.cmc,
  672. ne->busopt.isc, ne->busopt.bmc, ne->busopt.pmc,
  673. ne->busopt.cyc_clk_acc, ne->busopt.max_rec,
  674. mr[ne->busopt.max_rom],
  675. ne->busopt.generation, ne->busopt.lnkspd);
  676. }
  677. static struct node_entry *nodemgr_create_node(octlet_t guid, struct csr1212_csr *csr,
  678. struct host_info *hi, nodeid_t nodeid,
  679. unsigned int generation)
  680. {
  681. struct hpsb_host *host = hi->host;
  682. struct node_entry *ne;
  683. ne = kzalloc(sizeof(*ne), GFP_KERNEL);
  684. if (!ne)
  685. goto fail_alloc;
  686. ne->host = host;
  687. ne->nodeid = nodeid;
  688. ne->generation = generation;
  689. ne->needs_probe = 1;
  690. ne->guid = guid;
  691. ne->guid_vendor_id = (guid >> 40) & 0xffffff;
  692. ne->csr = csr;
  693. memcpy(&ne->device, &nodemgr_dev_template_ne,
  694. sizeof(ne->device));
  695. ne->device.parent = &host->device;
  696. snprintf(ne->device.bus_id, BUS_ID_SIZE, "%016Lx",
  697. (unsigned long long)(ne->guid));
  698. ne->class_dev.dev = &ne->device;
  699. ne->class_dev.class = &nodemgr_ne_class;
  700. snprintf(ne->class_dev.class_id, BUS_ID_SIZE, "%016Lx",
  701. (unsigned long long)(ne->guid));
  702. if (device_register(&ne->device))
  703. goto fail_devreg;
  704. if (class_device_register(&ne->class_dev))
  705. goto fail_classdevreg;
  706. get_device(&ne->device);
  707. nodemgr_create_ne_dev_files(ne);
  708. nodemgr_update_bus_options(ne);
  709. HPSB_DEBUG("%s added: ID:BUS[" NODE_BUS_FMT "] GUID[%016Lx]",
  710. (host->node_id == nodeid) ? "Host" : "Node",
  711. NODE_BUS_ARGS(host, nodeid), (unsigned long long)guid);
  712. return ne;
  713. fail_classdevreg:
  714. device_unregister(&ne->device);
  715. fail_devreg:
  716. kfree(ne);
  717. fail_alloc:
  718. HPSB_ERR("Failed to create node ID:BUS[" NODE_BUS_FMT "] GUID[%016Lx]",
  719. NODE_BUS_ARGS(host, nodeid), (unsigned long long)guid);
  720. return NULL;
  721. }
  722. static struct node_entry *find_entry_by_guid(u64 guid)
  723. {
  724. struct class_device *cdev;
  725. struct node_entry *ne, *ret_ne = NULL;
  726. down(&nodemgr_ne_class.sem);
  727. list_for_each_entry(cdev, &nodemgr_ne_class.children, node) {
  728. ne = container_of(cdev, struct node_entry, class_dev);
  729. if (ne->guid == guid) {
  730. ret_ne = ne;
  731. break;
  732. }
  733. }
  734. up(&nodemgr_ne_class.sem);
  735. return ret_ne;
  736. }
  737. static struct node_entry *find_entry_by_nodeid(struct hpsb_host *host,
  738. nodeid_t nodeid)
  739. {
  740. struct class_device *cdev;
  741. struct node_entry *ne, *ret_ne = NULL;
  742. down(&nodemgr_ne_class.sem);
  743. list_for_each_entry(cdev, &nodemgr_ne_class.children, node) {
  744. ne = container_of(cdev, struct node_entry, class_dev);
  745. if (ne->host == host && ne->nodeid == nodeid) {
  746. ret_ne = ne;
  747. break;
  748. }
  749. }
  750. up(&nodemgr_ne_class.sem);
  751. return ret_ne;
  752. }
  753. static void nodemgr_register_device(struct node_entry *ne,
  754. struct unit_directory *ud, struct device *parent)
  755. {
  756. memcpy(&ud->device, &nodemgr_dev_template_ud,
  757. sizeof(ud->device));
  758. ud->device.parent = parent;
  759. snprintf(ud->device.bus_id, BUS_ID_SIZE, "%s-%u",
  760. ne->device.bus_id, ud->id);
  761. ud->class_dev.dev = &ud->device;
  762. ud->class_dev.class = &nodemgr_ud_class;
  763. snprintf(ud->class_dev.class_id, BUS_ID_SIZE, "%s-%u",
  764. ne->device.bus_id, ud->id);
  765. if (device_register(&ud->device))
  766. goto fail_devreg;
  767. if (class_device_register(&ud->class_dev))
  768. goto fail_classdevreg;
  769. get_device(&ud->device);
  770. nodemgr_create_ud_dev_files(ud);
  771. return;
  772. fail_classdevreg:
  773. device_unregister(&ud->device);
  774. fail_devreg:
  775. HPSB_ERR("Failed to create unit %s", ud->device.bus_id);
  776. }
  777. /* This implementation currently only scans the config rom and its
  778. * immediate unit directories looking for software_id and
  779. * software_version entries, in order to get driver autoloading working. */
  780. static struct unit_directory *nodemgr_process_unit_directory
  781. (struct host_info *hi, struct node_entry *ne, struct csr1212_keyval *ud_kv,
  782. unsigned int *id, struct unit_directory *parent)
  783. {
  784. struct unit_directory *ud;
  785. struct unit_directory *ud_child = NULL;
  786. struct csr1212_dentry *dentry;
  787. struct csr1212_keyval *kv;
  788. u8 last_key_id = 0;
  789. ud = kzalloc(sizeof(*ud), GFP_KERNEL);
  790. if (!ud)
  791. goto unit_directory_error;
  792. ud->ne = ne;
  793. ud->ignore_driver = ignore_drivers;
  794. ud->address = ud_kv->offset + CSR1212_CONFIG_ROM_SPACE_BASE;
  795. ud->ud_kv = ud_kv;
  796. ud->id = (*id)++;
  797. csr1212_for_each_dir_entry(ne->csr, kv, ud_kv, dentry) {
  798. switch (kv->key.id) {
  799. case CSR1212_KV_ID_VENDOR:
  800. if (kv->key.type == CSR1212_KV_TYPE_IMMEDIATE) {
  801. ud->vendor_id = kv->value.immediate;
  802. ud->flags |= UNIT_DIRECTORY_VENDOR_ID;
  803. }
  804. break;
  805. case CSR1212_KV_ID_MODEL:
  806. ud->model_id = kv->value.immediate;
  807. ud->flags |= UNIT_DIRECTORY_MODEL_ID;
  808. break;
  809. case CSR1212_KV_ID_SPECIFIER_ID:
  810. ud->specifier_id = kv->value.immediate;
  811. ud->flags |= UNIT_DIRECTORY_SPECIFIER_ID;
  812. break;
  813. case CSR1212_KV_ID_VERSION:
  814. ud->version = kv->value.immediate;
  815. ud->flags |= UNIT_DIRECTORY_VERSION;
  816. break;
  817. case CSR1212_KV_ID_DESCRIPTOR:
  818. if (kv->key.type == CSR1212_KV_TYPE_LEAF &&
  819. CSR1212_DESCRIPTOR_LEAF_TYPE(kv) == 0 &&
  820. CSR1212_DESCRIPTOR_LEAF_SPECIFIER_ID(kv) == 0 &&
  821. CSR1212_TEXTUAL_DESCRIPTOR_LEAF_WIDTH(kv) == 0 &&
  822. CSR1212_TEXTUAL_DESCRIPTOR_LEAF_CHAR_SET(kv) == 0 &&
  823. CSR1212_TEXTUAL_DESCRIPTOR_LEAF_LANGUAGE(kv) == 0) {
  824. switch (last_key_id) {
  825. case CSR1212_KV_ID_VENDOR:
  826. ud->vendor_name_kv = kv;
  827. csr1212_keep_keyval(kv);
  828. break;
  829. case CSR1212_KV_ID_MODEL:
  830. ud->model_name_kv = kv;
  831. csr1212_keep_keyval(kv);
  832. break;
  833. }
  834. } /* else if (kv->key.type == CSR1212_KV_TYPE_DIRECTORY) ... */
  835. break;
  836. case CSR1212_KV_ID_DEPENDENT_INFO:
  837. /* Logical Unit Number */
  838. if (kv->key.type == CSR1212_KV_TYPE_IMMEDIATE) {
  839. if (ud->flags & UNIT_DIRECTORY_HAS_LUN) {
  840. ud_child = kmemdup(ud, sizeof(*ud_child), GFP_KERNEL);
  841. if (!ud_child)
  842. goto unit_directory_error;
  843. nodemgr_register_device(ne, ud_child, &ne->device);
  844. ud_child = NULL;
  845. ud->id = (*id)++;
  846. }
  847. ud->lun = kv->value.immediate;
  848. ud->flags |= UNIT_DIRECTORY_HAS_LUN;
  849. /* Logical Unit Directory */
  850. } else if (kv->key.type == CSR1212_KV_TYPE_DIRECTORY) {
  851. /* This should really be done in SBP2 as this is
  852. * doing SBP2 specific parsing.
  853. */
  854. /* first register the parent unit */
  855. ud->flags |= UNIT_DIRECTORY_HAS_LUN_DIRECTORY;
  856. if (ud->device.bus != &ieee1394_bus_type)
  857. nodemgr_register_device(ne, ud, &ne->device);
  858. /* process the child unit */
  859. ud_child = nodemgr_process_unit_directory(hi, ne, kv, id, ud);
  860. if (ud_child == NULL)
  861. break;
  862. /* inherit unspecified values, the driver core picks it up */
  863. if ((ud->flags & UNIT_DIRECTORY_MODEL_ID) &&
  864. !(ud_child->flags & UNIT_DIRECTORY_MODEL_ID))
  865. {
  866. ud_child->flags |= UNIT_DIRECTORY_MODEL_ID;
  867. ud_child->model_id = ud->model_id;
  868. }
  869. if ((ud->flags & UNIT_DIRECTORY_SPECIFIER_ID) &&
  870. !(ud_child->flags & UNIT_DIRECTORY_SPECIFIER_ID))
  871. {
  872. ud_child->flags |= UNIT_DIRECTORY_SPECIFIER_ID;
  873. ud_child->specifier_id = ud->specifier_id;
  874. }
  875. if ((ud->flags & UNIT_DIRECTORY_VERSION) &&
  876. !(ud_child->flags & UNIT_DIRECTORY_VERSION))
  877. {
  878. ud_child->flags |= UNIT_DIRECTORY_VERSION;
  879. ud_child->version = ud->version;
  880. }
  881. /* register the child unit */
  882. ud_child->flags |= UNIT_DIRECTORY_LUN_DIRECTORY;
  883. nodemgr_register_device(ne, ud_child, &ud->device);
  884. }
  885. break;
  886. default:
  887. break;
  888. }
  889. last_key_id = kv->key.id;
  890. }
  891. /* do not process child units here and only if not already registered */
  892. if (!parent && ud->device.bus != &ieee1394_bus_type)
  893. nodemgr_register_device(ne, ud, &ne->device);
  894. return ud;
  895. unit_directory_error:
  896. kfree(ud);
  897. return NULL;
  898. }
  899. static void nodemgr_process_root_directory(struct host_info *hi, struct node_entry *ne)
  900. {
  901. unsigned int ud_id = 0;
  902. struct csr1212_dentry *dentry;
  903. struct csr1212_keyval *kv;
  904. u8 last_key_id = 0;
  905. ne->needs_probe = 0;
  906. csr1212_for_each_dir_entry(ne->csr, kv, ne->csr->root_kv, dentry) {
  907. switch (kv->key.id) {
  908. case CSR1212_KV_ID_VENDOR:
  909. ne->vendor_id = kv->value.immediate;
  910. break;
  911. case CSR1212_KV_ID_NODE_CAPABILITIES:
  912. ne->capabilities = kv->value.immediate;
  913. break;
  914. case CSR1212_KV_ID_UNIT:
  915. nodemgr_process_unit_directory(hi, ne, kv, &ud_id, NULL);
  916. break;
  917. case CSR1212_KV_ID_DESCRIPTOR:
  918. if (last_key_id == CSR1212_KV_ID_VENDOR) {
  919. if (kv->key.type == CSR1212_KV_TYPE_LEAF &&
  920. CSR1212_DESCRIPTOR_LEAF_TYPE(kv) == 0 &&
  921. CSR1212_DESCRIPTOR_LEAF_SPECIFIER_ID(kv) == 0 &&
  922. CSR1212_TEXTUAL_DESCRIPTOR_LEAF_WIDTH(kv) == 0 &&
  923. CSR1212_TEXTUAL_DESCRIPTOR_LEAF_CHAR_SET(kv) == 0 &&
  924. CSR1212_TEXTUAL_DESCRIPTOR_LEAF_LANGUAGE(kv) == 0) {
  925. ne->vendor_name_kv = kv;
  926. csr1212_keep_keyval(kv);
  927. }
  928. }
  929. break;
  930. }
  931. last_key_id = kv->key.id;
  932. }
  933. if (ne->vendor_name_kv &&
  934. device_create_file(&ne->device, &dev_attr_ne_vendor_name_kv))
  935. goto fail;
  936. return;
  937. fail:
  938. HPSB_ERR("Failed to add sysfs attribute for node %016Lx",
  939. (unsigned long long)ne->guid);
  940. }
  941. #ifdef CONFIG_HOTPLUG
  942. static int nodemgr_uevent(struct class_device *cdev, char **envp, int num_envp,
  943. char *buffer, int buffer_size)
  944. {
  945. struct unit_directory *ud;
  946. int i = 0;
  947. int length = 0;
  948. /* ieee1394:venNmoNspNverN */
  949. char buf[8 + 1 + 3 + 8 + 2 + 8 + 2 + 8 + 3 + 8 + 1];
  950. if (!cdev)
  951. return -ENODEV;
  952. ud = container_of(cdev, struct unit_directory, class_dev);
  953. if (ud->ne->in_limbo || ud->ignore_driver)
  954. return -ENODEV;
  955. #define PUT_ENVP(fmt,val) \
  956. do { \
  957. int printed; \
  958. envp[i++] = buffer; \
  959. printed = snprintf(buffer, buffer_size - length, \
  960. fmt, val); \
  961. if ((buffer_size - (length+printed) <= 0) || (i >= num_envp)) \
  962. return -ENOMEM; \
  963. length += printed+1; \
  964. buffer += printed+1; \
  965. } while (0)
  966. PUT_ENVP("VENDOR_ID=%06x", ud->vendor_id);
  967. PUT_ENVP("MODEL_ID=%06x", ud->model_id);
  968. PUT_ENVP("GUID=%016Lx", (unsigned long long)ud->ne->guid);
  969. PUT_ENVP("SPECIFIER_ID=%06x", ud->specifier_id);
  970. PUT_ENVP("VERSION=%06x", ud->version);
  971. snprintf(buf, sizeof(buf), "ieee1394:ven%08Xmo%08Xsp%08Xver%08X",
  972. ud->vendor_id,
  973. ud->model_id,
  974. ud->specifier_id,
  975. ud->version);
  976. PUT_ENVP("MODALIAS=%s", buf);
  977. #undef PUT_ENVP
  978. envp[i] = NULL;
  979. return 0;
  980. }
  981. #else
  982. static int nodemgr_uevent(struct class_device *cdev, char **envp, int num_envp,
  983. char *buffer, int buffer_size)
  984. {
  985. return -ENODEV;
  986. }
  987. #endif /* CONFIG_HOTPLUG */
  988. int __hpsb_register_protocol(struct hpsb_protocol_driver *drv,
  989. struct module *owner)
  990. {
  991. int error;
  992. drv->driver.bus = &ieee1394_bus_type;
  993. drv->driver.owner = owner;
  994. drv->driver.name = drv->name;
  995. /* This will cause a probe for devices */
  996. error = driver_register(&drv->driver);
  997. if (!error)
  998. nodemgr_create_drv_files(drv);
  999. return error;
  1000. }
  1001. void hpsb_unregister_protocol(struct hpsb_protocol_driver *driver)
  1002. {
  1003. nodemgr_remove_drv_files(driver);
  1004. /* This will subsequently disconnect all devices that our driver
  1005. * is attached to. */
  1006. driver_unregister(&driver->driver);
  1007. }
  1008. /*
  1009. * This function updates nodes that were present on the bus before the
  1010. * reset and still are after the reset. The nodeid and the config rom
  1011. * may have changed, and the drivers managing this device must be
  1012. * informed that this device just went through a bus reset, to allow
  1013. * the to take whatever actions required.
  1014. */
  1015. static void nodemgr_update_node(struct node_entry *ne, struct csr1212_csr *csr,
  1016. struct host_info *hi, nodeid_t nodeid,
  1017. unsigned int generation)
  1018. {
  1019. if (ne->nodeid != nodeid) {
  1020. HPSB_DEBUG("Node changed: " NODE_BUS_FMT " -> " NODE_BUS_FMT,
  1021. NODE_BUS_ARGS(ne->host, ne->nodeid),
  1022. NODE_BUS_ARGS(ne->host, nodeid));
  1023. ne->nodeid = nodeid;
  1024. }
  1025. if (ne->busopt.generation != ((be32_to_cpu(csr->bus_info_data[2]) >> 4) & 0xf)) {
  1026. kfree(ne->csr->private);
  1027. csr1212_destroy_csr(ne->csr);
  1028. ne->csr = csr;
  1029. /* If the node's configrom generation has changed, we
  1030. * unregister all the unit directories. */
  1031. nodemgr_remove_uds(ne);
  1032. nodemgr_update_bus_options(ne);
  1033. /* Mark the node as new, so it gets re-probed */
  1034. ne->needs_probe = 1;
  1035. } else {
  1036. /* old cache is valid, so update its generation */
  1037. struct nodemgr_csr_info *ci = ne->csr->private;
  1038. ci->generation = generation;
  1039. /* free the partially filled now unneeded new cache */
  1040. kfree(csr->private);
  1041. csr1212_destroy_csr(csr);
  1042. }
  1043. if (ne->in_limbo)
  1044. nodemgr_resume_ne(ne);
  1045. /* Mark the node current */
  1046. ne->generation = generation;
  1047. }
  1048. static void nodemgr_node_scan_one(struct host_info *hi,
  1049. nodeid_t nodeid, int generation)
  1050. {
  1051. struct hpsb_host *host = hi->host;
  1052. struct node_entry *ne;
  1053. octlet_t guid;
  1054. struct csr1212_csr *csr;
  1055. struct nodemgr_csr_info *ci;
  1056. u8 *speed;
  1057. ci = kmalloc(sizeof(*ci), GFP_KERNEL);
  1058. if (!ci)
  1059. return;
  1060. ci->host = host;
  1061. ci->nodeid = nodeid;
  1062. ci->generation = generation;
  1063. /* Prepare for speed probe which occurs when reading the ROM */
  1064. speed = &(host->speed[NODEID_TO_NODE(nodeid)]);
  1065. if (*speed > host->csr.lnk_spd)
  1066. *speed = host->csr.lnk_spd;
  1067. ci->speed_unverified = *speed > IEEE1394_SPEED_100;
  1068. /* We need to detect when the ConfigROM's generation has changed,
  1069. * so we only update the node's info when it needs to be. */
  1070. csr = csr1212_create_csr(&nodemgr_csr_ops, 5 * sizeof(quadlet_t), ci);
  1071. if (!csr || csr1212_parse_csr(csr) != CSR1212_SUCCESS) {
  1072. HPSB_ERR("Error parsing configrom for node " NODE_BUS_FMT,
  1073. NODE_BUS_ARGS(host, nodeid));
  1074. if (csr)
  1075. csr1212_destroy_csr(csr);
  1076. kfree(ci);
  1077. return;
  1078. }
  1079. if (csr->bus_info_data[1] != IEEE1394_BUSID_MAGIC) {
  1080. /* This isn't a 1394 device, but we let it slide. There
  1081. * was a report of a device with broken firmware which
  1082. * reported '2394' instead of '1394', which is obviously a
  1083. * mistake. One would hope that a non-1394 device never
  1084. * gets connected to Firewire bus. If someone does, we
  1085. * shouldn't be held responsible, so we'll allow it with a
  1086. * warning. */
  1087. HPSB_WARN("Node " NODE_BUS_FMT " has invalid busID magic [0x%08x]",
  1088. NODE_BUS_ARGS(host, nodeid), csr->bus_info_data[1]);
  1089. }
  1090. guid = ((u64)be32_to_cpu(csr->bus_info_data[3]) << 32) | be32_to_cpu(csr->bus_info_data[4]);
  1091. ne = find_entry_by_guid(guid);
  1092. if (ne && ne->host != host && ne->in_limbo) {
  1093. /* Must have moved this device from one host to another */
  1094. nodemgr_remove_ne(ne);
  1095. ne = NULL;
  1096. }
  1097. if (!ne)
  1098. nodemgr_create_node(guid, csr, hi, nodeid, generation);
  1099. else
  1100. nodemgr_update_node(ne, csr, hi, nodeid, generation);
  1101. }
  1102. static void nodemgr_node_scan(struct host_info *hi, int generation)
  1103. {
  1104. int count;
  1105. struct hpsb_host *host = hi->host;
  1106. struct selfid *sid = (struct selfid *)host->topology_map;
  1107. nodeid_t nodeid = LOCAL_BUS;
  1108. /* Scan each node on the bus */
  1109. for (count = host->selfid_count; count; count--, sid++) {
  1110. if (sid->extended)
  1111. continue;
  1112. if (!sid->link_active) {
  1113. nodeid++;
  1114. continue;
  1115. }
  1116. nodemgr_node_scan_one(hi, nodeid++, generation);
  1117. }
  1118. }
  1119. static void nodemgr_suspend_ne(struct node_entry *ne)
  1120. {
  1121. struct class_device *cdev;
  1122. struct unit_directory *ud;
  1123. HPSB_DEBUG("Node suspended: ID:BUS[" NODE_BUS_FMT "] GUID[%016Lx]",
  1124. NODE_BUS_ARGS(ne->host, ne->nodeid), (unsigned long long)ne->guid);
  1125. ne->in_limbo = 1;
  1126. WARN_ON(device_create_file(&ne->device, &dev_attr_ne_in_limbo));
  1127. down(&nodemgr_ud_class.sem);
  1128. list_for_each_entry(cdev, &nodemgr_ud_class.children, node) {
  1129. ud = container_of(cdev, struct unit_directory, class_dev);
  1130. if (ud->ne != ne)
  1131. continue;
  1132. down_write(&ieee1394_bus_type.subsys.rwsem);
  1133. if (ud->device.driver &&
  1134. (!ud->device.driver->suspend ||
  1135. ud->device.driver->suspend(&ud->device, PMSG_SUSPEND)))
  1136. device_release_driver(&ud->device);
  1137. up_write(&ieee1394_bus_type.subsys.rwsem);
  1138. }
  1139. up(&nodemgr_ud_class.sem);
  1140. }
  1141. static void nodemgr_resume_ne(struct node_entry *ne)
  1142. {
  1143. struct class_device *cdev;
  1144. struct unit_directory *ud;
  1145. ne->in_limbo = 0;
  1146. device_remove_file(&ne->device, &dev_attr_ne_in_limbo);
  1147. down(&nodemgr_ud_class.sem);
  1148. list_for_each_entry(cdev, &nodemgr_ud_class.children, node) {
  1149. ud = container_of(cdev, struct unit_directory, class_dev);
  1150. if (ud->ne != ne)
  1151. continue;
  1152. down_read(&ieee1394_bus_type.subsys.rwsem);
  1153. if (ud->device.driver && ud->device.driver->resume)
  1154. ud->device.driver->resume(&ud->device);
  1155. up_read(&ieee1394_bus_type.subsys.rwsem);
  1156. }
  1157. up(&nodemgr_ud_class.sem);
  1158. HPSB_DEBUG("Node resumed: ID:BUS[" NODE_BUS_FMT "] GUID[%016Lx]",
  1159. NODE_BUS_ARGS(ne->host, ne->nodeid), (unsigned long long)ne->guid);
  1160. }
  1161. static void nodemgr_update_pdrv(struct node_entry *ne)
  1162. {
  1163. struct unit_directory *ud;
  1164. struct hpsb_protocol_driver *pdrv;
  1165. struct class_device *cdev;
  1166. down(&nodemgr_ud_class.sem);
  1167. list_for_each_entry(cdev, &nodemgr_ud_class.children, node) {
  1168. ud = container_of(cdev, struct unit_directory, class_dev);
  1169. if (ud->ne != ne)
  1170. continue;
  1171. down_write(&ieee1394_bus_type.subsys.rwsem);
  1172. if (ud->device.driver) {
  1173. pdrv = container_of(ud->device.driver,
  1174. struct hpsb_protocol_driver,
  1175. driver);
  1176. if (pdrv->update && pdrv->update(ud))
  1177. device_release_driver(&ud->device);
  1178. }
  1179. up_write(&ieee1394_bus_type.subsys.rwsem);
  1180. }
  1181. up(&nodemgr_ud_class.sem);
  1182. }
  1183. /* Write the BROADCAST_CHANNEL as per IEEE1394a 8.3.2.3.11 and 8.4.2.3. This
  1184. * seems like an optional service but in the end it is practically mandatory
  1185. * as a consequence of these clauses.
  1186. *
  1187. * Note that we cannot do a broadcast write to all nodes at once because some
  1188. * pre-1394a devices would hang. */
  1189. static void nodemgr_irm_write_bc(struct node_entry *ne, int generation)
  1190. {
  1191. const u64 bc_addr = (CSR_REGISTER_BASE | CSR_BROADCAST_CHANNEL);
  1192. quadlet_t bc_remote, bc_local;
  1193. int error;
  1194. if (!ne->host->is_irm || ne->generation != generation ||
  1195. ne->nodeid == ne->host->node_id)
  1196. return;
  1197. bc_local = cpu_to_be32(ne->host->csr.broadcast_channel);
  1198. /* Check if the register is implemented and 1394a compliant. */
  1199. error = hpsb_read(ne->host, ne->nodeid, generation, bc_addr, &bc_remote,
  1200. sizeof(bc_remote));
  1201. if (!error && bc_remote & cpu_to_be32(0x80000000) &&
  1202. bc_remote != bc_local)
  1203. hpsb_node_write(ne, bc_addr, &bc_local, sizeof(bc_local));
  1204. }
  1205. static void nodemgr_probe_ne(struct host_info *hi, struct node_entry *ne, int generation)
  1206. {
  1207. struct device *dev;
  1208. if (ne->host != hi->host || ne->in_limbo)
  1209. return;
  1210. dev = get_device(&ne->device);
  1211. if (!dev)
  1212. return;
  1213. nodemgr_irm_write_bc(ne, generation);
  1214. /* If "needs_probe", then this is either a new or changed node we
  1215. * rescan totally. If the generation matches for an existing node
  1216. * (one that existed prior to the bus reset) we send update calls
  1217. * down to the drivers. Otherwise, this is a dead node and we
  1218. * suspend it. */
  1219. if (ne->needs_probe)
  1220. nodemgr_process_root_directory(hi, ne);
  1221. else if (ne->generation == generation)
  1222. nodemgr_update_pdrv(ne);
  1223. else
  1224. nodemgr_suspend_ne(ne);
  1225. put_device(dev);
  1226. }
  1227. static void nodemgr_node_probe(struct host_info *hi, int generation)
  1228. {
  1229. struct hpsb_host *host = hi->host;
  1230. struct class_device *cdev;
  1231. struct node_entry *ne;
  1232. /* Do some processing of the nodes we've probed. This pulls them
  1233. * into the sysfs layer if needed, and can result in processing of
  1234. * unit-directories, or just updating the node and it's
  1235. * unit-directories.
  1236. *
  1237. * Run updates before probes. Usually, updates are time-critical
  1238. * while probes are time-consuming. (Well, those probes need some
  1239. * improvement...) */
  1240. down(&nodemgr_ne_class.sem);
  1241. list_for_each_entry(cdev, &nodemgr_ne_class.children, node) {
  1242. ne = container_of(cdev, struct node_entry, class_dev);
  1243. if (!ne->needs_probe)
  1244. nodemgr_probe_ne(hi, ne, generation);
  1245. }
  1246. list_for_each_entry(cdev, &nodemgr_ne_class.children, node) {
  1247. ne = container_of(cdev, struct node_entry, class_dev);
  1248. if (ne->needs_probe)
  1249. nodemgr_probe_ne(hi, ne, generation);
  1250. }
  1251. up(&nodemgr_ne_class.sem);
  1252. /* If we had a bus reset while we were scanning the bus, it is
  1253. * possible that we did not probe all nodes. In that case, we
  1254. * skip the clean up for now, since we could remove nodes that
  1255. * were still on the bus. Another bus scan is pending which will
  1256. * do the clean up eventually.
  1257. *
  1258. * Now let's tell the bus to rescan our devices. This may seem
  1259. * like overhead, but the driver-model core will only scan a
  1260. * device for a driver when either the device is added, or when a
  1261. * new driver is added. A bus reset is a good reason to rescan
  1262. * devices that were there before. For example, an sbp2 device
  1263. * may become available for login, if the host that held it was
  1264. * just removed. */
  1265. if (generation == get_hpsb_generation(host))
  1266. if (bus_rescan_devices(&ieee1394_bus_type))
  1267. HPSB_DEBUG("bus_rescan_devices had an error");
  1268. }
  1269. static int nodemgr_send_resume_packet(struct hpsb_host *host)
  1270. {
  1271. struct hpsb_packet *packet;
  1272. int error = -ENOMEM;
  1273. packet = hpsb_make_phypacket(host,
  1274. EXTPHYPACKET_TYPE_RESUME |
  1275. NODEID_TO_NODE(host->node_id) << PHYPACKET_PORT_SHIFT);
  1276. if (packet) {
  1277. packet->no_waiter = 1;
  1278. packet->generation = get_hpsb_generation(host);
  1279. error = hpsb_send_packet(packet);
  1280. }
  1281. if (error)
  1282. HPSB_WARN("fw-host%d: Failed to broadcast resume packet",
  1283. host->id);
  1284. return error;
  1285. }
  1286. /* Perform a few high-level IRM responsibilities. */
  1287. static int nodemgr_do_irm_duties(struct hpsb_host *host, int cycles)
  1288. {
  1289. quadlet_t bc;
  1290. /* if irm_id == -1 then there is no IRM on this bus */
  1291. if (!host->is_irm || host->irm_id == (nodeid_t)-1)
  1292. return 1;
  1293. /* We are a 1394a-2000 compliant IRM. Set the validity bit. */
  1294. host->csr.broadcast_channel |= 0x40000000;
  1295. /* If there is no bus manager then we should set the root node's
  1296. * force_root bit to promote bus stability per the 1394
  1297. * spec. (8.4.2.6) */
  1298. if (host->busmgr_id == 0xffff && host->node_count > 1)
  1299. {
  1300. u16 root_node = host->node_count - 1;
  1301. /* get cycle master capability flag from root node */
  1302. if (host->is_cycmst ||
  1303. (!hpsb_read(host, LOCAL_BUS | root_node, get_hpsb_generation(host),
  1304. (CSR_REGISTER_BASE + CSR_CONFIG_ROM + 2 * sizeof(quadlet_t)),
  1305. &bc, sizeof(quadlet_t)) &&
  1306. be32_to_cpu(bc) & 1 << CSR_CMC_SHIFT))
  1307. hpsb_send_phy_config(host, root_node, -1);
  1308. else {
  1309. HPSB_DEBUG("The root node is not cycle master capable; "
  1310. "selecting a new root node and resetting...");
  1311. if (cycles >= 5) {
  1312. /* Oh screw it! Just leave the bus as it is */
  1313. HPSB_DEBUG("Stopping reset loop for IRM sanity");
  1314. return 1;
  1315. }
  1316. hpsb_send_phy_config(host, NODEID_TO_NODE(host->node_id), -1);
  1317. hpsb_reset_bus(host, LONG_RESET_FORCE_ROOT);
  1318. return 0;
  1319. }
  1320. }
  1321. /* Some devices suspend their ports while being connected to an inactive
  1322. * host adapter, i.e. if connected before the low-level driver is
  1323. * loaded. They become visible either when physically unplugged and
  1324. * replugged, or when receiving a resume packet. Send one once. */
  1325. if (!host->resume_packet_sent && !nodemgr_send_resume_packet(host))
  1326. host->resume_packet_sent = 1;
  1327. return 1;
  1328. }
  1329. /* We need to ensure that if we are not the IRM, that the IRM node is capable of
  1330. * everything we can do, otherwise issue a bus reset and try to become the IRM
  1331. * ourselves. */
  1332. static int nodemgr_check_irm_capability(struct hpsb_host *host, int cycles)
  1333. {
  1334. quadlet_t bc;
  1335. int status;
  1336. if (hpsb_disable_irm || host->is_irm)
  1337. return 1;
  1338. status = hpsb_read(host, LOCAL_BUS | (host->irm_id),
  1339. get_hpsb_generation(host),
  1340. (CSR_REGISTER_BASE | CSR_BROADCAST_CHANNEL),
  1341. &bc, sizeof(quadlet_t));
  1342. if (status < 0 || !(be32_to_cpu(bc) & 0x80000000)) {
  1343. /* The current irm node does not have a valid BROADCAST_CHANNEL
  1344. * register and we do, so reset the bus with force_root set */
  1345. HPSB_DEBUG("Current remote IRM is not 1394a-2000 compliant, resetting...");
  1346. if (cycles >= 5) {
  1347. /* Oh screw it! Just leave the bus as it is */
  1348. HPSB_DEBUG("Stopping reset loop for IRM sanity");
  1349. return 1;
  1350. }
  1351. hpsb_send_phy_config(host, NODEID_TO_NODE(host->node_id), -1);
  1352. hpsb_reset_bus(host, LONG_RESET_FORCE_ROOT);
  1353. return 0;
  1354. }
  1355. return 1;
  1356. }
  1357. static int nodemgr_host_thread(void *__hi)
  1358. {
  1359. struct host_info *hi = (struct host_info *)__hi;
  1360. struct hpsb_host *host = hi->host;
  1361. unsigned int g, generation = 0;
  1362. int i, reset_cycles = 0;
  1363. /* Setup our device-model entries */
  1364. nodemgr_create_host_dev_files(host);
  1365. for (;;) {
  1366. /* Sleep until next bus reset */
  1367. set_current_state(TASK_INTERRUPTIBLE);
  1368. if (get_hpsb_generation(host) == generation)
  1369. schedule();
  1370. __set_current_state(TASK_RUNNING);
  1371. /* Thread may have been woken up to freeze or to exit */
  1372. if (try_to_freeze())
  1373. continue;
  1374. if (kthread_should_stop())
  1375. goto exit;
  1376. if (mutex_lock_interruptible(&nodemgr_serialize)) {
  1377. if (try_to_freeze())
  1378. continue;
  1379. goto exit;
  1380. }
  1381. /* Pause for 1/4 second in 1/16 second intervals,
  1382. * to make sure things settle down. */
  1383. g = get_hpsb_generation(host);
  1384. for (i = 0; i < 4 ; i++) {
  1385. if (msleep_interruptible(63) || kthread_should_stop())
  1386. goto unlock_exit;
  1387. /* Now get the generation in which the node ID's we collect
  1388. * are valid. During the bus scan we will use this generation
  1389. * for the read transactions, so that if another reset occurs
  1390. * during the scan the transactions will fail instead of
  1391. * returning bogus data. */
  1392. generation = get_hpsb_generation(host);
  1393. /* If we get a reset before we are done waiting, then
  1394. * start the the waiting over again */
  1395. if (generation != g)
  1396. g = generation, i = 0;
  1397. }
  1398. if (!nodemgr_check_irm_capability(host, reset_cycles) ||
  1399. !nodemgr_do_irm_duties(host, reset_cycles)) {
  1400. reset_cycles++;
  1401. mutex_unlock(&nodemgr_serialize);
  1402. continue;
  1403. }
  1404. reset_cycles = 0;
  1405. /* Scan our nodes to get the bus options and create node
  1406. * entries. This does not do the sysfs stuff, since that
  1407. * would trigger uevents and such, which is a bad idea at
  1408. * this point. */
  1409. nodemgr_node_scan(hi, generation);
  1410. /* This actually does the full probe, with sysfs
  1411. * registration. */
  1412. nodemgr_node_probe(hi, generation);
  1413. /* Update some of our sysfs symlinks */
  1414. nodemgr_update_host_dev_links(host);
  1415. mutex_unlock(&nodemgr_serialize);
  1416. }
  1417. unlock_exit:
  1418. mutex_unlock(&nodemgr_serialize);
  1419. exit:
  1420. HPSB_VERBOSE("NodeMgr: Exiting thread");
  1421. return 0;
  1422. }
  1423. int nodemgr_for_each_host(void *__data, int (*cb)(struct hpsb_host *, void *))
  1424. {
  1425. struct class_device *cdev;
  1426. struct hpsb_host *host;
  1427. int error = 0;
  1428. down(&hpsb_host_class.sem);
  1429. list_for_each_entry(cdev, &hpsb_host_class.children, node) {
  1430. host = container_of(cdev, struct hpsb_host, class_dev);
  1431. if ((error = cb(host, __data)))
  1432. break;
  1433. }
  1434. up(&hpsb_host_class.sem);
  1435. return error;
  1436. }
  1437. /* The following four convenience functions use a struct node_entry
  1438. * for addressing a node on the bus. They are intended for use by any
  1439. * process context, not just the nodemgr thread, so we need to be a
  1440. * little careful when reading out the node ID and generation. The
  1441. * thing that can go wrong is that we get the node ID, then a bus
  1442. * reset occurs, and then we read the generation. The node ID is
  1443. * possibly invalid, but the generation is current, and we end up
  1444. * sending a packet to a the wrong node.
  1445. *
  1446. * The solution is to make sure we read the generation first, so that
  1447. * if a reset occurs in the process, we end up with a stale generation
  1448. * and the transactions will fail instead of silently using wrong node
  1449. * ID's.
  1450. */
  1451. void hpsb_node_fill_packet(struct node_entry *ne, struct hpsb_packet *pkt)
  1452. {
  1453. pkt->host = ne->host;
  1454. pkt->generation = ne->generation;
  1455. barrier();
  1456. pkt->node_id = ne->nodeid;
  1457. }
  1458. int hpsb_node_write(struct node_entry *ne, u64 addr,
  1459. quadlet_t *buffer, size_t length)
  1460. {
  1461. unsigned int generation = ne->generation;
  1462. barrier();
  1463. return hpsb_write(ne->host, ne->nodeid, generation,
  1464. addr, buffer, length);
  1465. }
  1466. static void nodemgr_add_host(struct hpsb_host *host)
  1467. {
  1468. struct host_info *hi;
  1469. hi = hpsb_create_hostinfo(&nodemgr_highlevel, host, sizeof(*hi));
  1470. if (!hi) {
  1471. HPSB_ERR("NodeMgr: out of memory in add host");
  1472. return;
  1473. }
  1474. hi->host = host;
  1475. hi->thread = kthread_run(nodemgr_host_thread, hi, "knodemgrd_%d",
  1476. host->id);
  1477. if (IS_ERR(hi->thread)) {
  1478. HPSB_ERR("NodeMgr: cannot start thread for host %d", host->id);
  1479. hpsb_destroy_hostinfo(&nodemgr_highlevel, host);
  1480. }
  1481. }
  1482. static void nodemgr_host_reset(struct hpsb_host *host)
  1483. {
  1484. struct host_info *hi = hpsb_get_hostinfo(&nodemgr_highlevel, host);
  1485. if (hi) {
  1486. HPSB_VERBOSE("NodeMgr: Processing reset for host %d", host->id);
  1487. wake_up_process(hi->thread);
  1488. }
  1489. }
  1490. static void nodemgr_remove_host(struct hpsb_host *host)
  1491. {
  1492. struct host_info *hi = hpsb_get_hostinfo(&nodemgr_highlevel, host);
  1493. if (hi) {
  1494. kthread_stop(hi->thread);
  1495. nodemgr_remove_host_dev(&host->device);
  1496. }
  1497. }
  1498. static struct hpsb_highlevel nodemgr_highlevel = {
  1499. .name = "Node manager",
  1500. .add_host = nodemgr_add_host,
  1501. .host_reset = nodemgr_host_reset,
  1502. .remove_host = nodemgr_remove_host,
  1503. };
  1504. int init_ieee1394_nodemgr(void)
  1505. {
  1506. int error;
  1507. error = class_register(&nodemgr_ne_class);
  1508. if (error)
  1509. goto fail_ne;
  1510. error = class_register(&nodemgr_ud_class);
  1511. if (error)
  1512. goto fail_ud;
  1513. error = driver_register(&nodemgr_mid_layer_driver);
  1514. if (error)
  1515. goto fail_ml;
  1516. /* This driver is not used if nodemgr is off (disable_nodemgr=1). */
  1517. nodemgr_dev_template_host.driver = &nodemgr_mid_layer_driver;
  1518. hpsb_register_highlevel(&nodemgr_highlevel);
  1519. return 0;
  1520. fail_ml:
  1521. class_unregister(&nodemgr_ud_class);
  1522. fail_ud:
  1523. class_unregister(&nodemgr_ne_class);
  1524. fail_ne:
  1525. return error;
  1526. }
  1527. void cleanup_ieee1394_nodemgr(void)
  1528. {
  1529. hpsb_unregister_highlevel(&nodemgr_highlevel);
  1530. driver_unregister(&nodemgr_mid_layer_driver);
  1531. class_unregister(&nodemgr_ud_class);
  1532. class_unregister(&nodemgr_ne_class);
  1533. }