xpc.h 41 KB

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  1. /*
  2. * This file is subject to the terms and conditions of the GNU General Public
  3. * License. See the file "COPYING" in the main directory of this archive
  4. * for more details.
  5. *
  6. * Copyright (c) 2004-2006 Silicon Graphics, Inc. All Rights Reserved.
  7. */
  8. /*
  9. * Cross Partition Communication (XPC) structures and macros.
  10. */
  11. #ifndef _ASM_IA64_SN_XPC_H
  12. #define _ASM_IA64_SN_XPC_H
  13. #include <linux/interrupt.h>
  14. #include <linux/sysctl.h>
  15. #include <linux/device.h>
  16. #include <linux/mutex.h>
  17. #include <linux/completion.h>
  18. #include <asm/pgtable.h>
  19. #include <asm/processor.h>
  20. #include <asm/sn/bte.h>
  21. #include <asm/sn/clksupport.h>
  22. #include <asm/sn/addrs.h>
  23. #include <asm/sn/mspec.h>
  24. #include <asm/sn/shub_mmr.h>
  25. #include <asm/sn/xp.h>
  26. /*
  27. * XPC Version numbers consist of a major and minor number. XPC can always
  28. * talk to versions with same major #, and never talk to versions with a
  29. * different major #.
  30. */
  31. #define _XPC_VERSION(_maj, _min) (((_maj) << 4) | ((_min) & 0xf))
  32. #define XPC_VERSION_MAJOR(_v) ((_v) >> 4)
  33. #define XPC_VERSION_MINOR(_v) ((_v) & 0xf)
  34. /*
  35. * The next macros define word or bit representations for given
  36. * C-brick nasid in either the SAL provided bit array representing
  37. * nasids in the partition/machine or the AMO_t array used for
  38. * inter-partition initiation communications.
  39. *
  40. * For SN2 machines, C-Bricks are alway even numbered NASIDs. As
  41. * such, some space will be saved by insisting that nasid information
  42. * passed from SAL always be packed for C-Bricks and the
  43. * cross-partition interrupts use the same packing scheme.
  44. */
  45. #define XPC_NASID_W_INDEX(_n) (((_n) / 64) / 2)
  46. #define XPC_NASID_B_INDEX(_n) (((_n) / 2) & (64 - 1))
  47. #define XPC_NASID_IN_ARRAY(_n, _p) ((_p)[XPC_NASID_W_INDEX(_n)] & \
  48. (1UL << XPC_NASID_B_INDEX(_n)))
  49. #define XPC_NASID_FROM_W_B(_w, _b) (((_w) * 64 + (_b)) * 2)
  50. #define XPC_HB_DEFAULT_INTERVAL 5 /* incr HB every x secs */
  51. #define XPC_HB_CHECK_DEFAULT_INTERVAL 20 /* check HB every x secs */
  52. /* define the process name of HB checker and the CPU it is pinned to */
  53. #define XPC_HB_CHECK_THREAD_NAME "xpc_hb"
  54. #define XPC_HB_CHECK_CPU 0
  55. /* define the process name of the discovery thread */
  56. #define XPC_DISCOVERY_THREAD_NAME "xpc_discovery"
  57. /*
  58. * the reserved page
  59. *
  60. * SAL reserves one page of memory per partition for XPC. Though a full page
  61. * in length (16384 bytes), its starting address is not page aligned, but it
  62. * is cacheline aligned. The reserved page consists of the following:
  63. *
  64. * reserved page header
  65. *
  66. * The first cacheline of the reserved page contains the header
  67. * (struct xpc_rsvd_page). Before SAL initialization has completed,
  68. * SAL has set up the following fields of the reserved page header:
  69. * SAL_signature, SAL_version, partid, and nasids_size. The other
  70. * fields are set up by XPC. (xpc_rsvd_page points to the local
  71. * partition's reserved page.)
  72. *
  73. * part_nasids mask
  74. * mach_nasids mask
  75. *
  76. * SAL also sets up two bitmaps (or masks), one that reflects the actual
  77. * nasids in this partition (part_nasids), and the other that reflects
  78. * the actual nasids in the entire machine (mach_nasids). We're only
  79. * interested in the even numbered nasids (which contain the processors
  80. * and/or memory), so we only need half as many bits to represent the
  81. * nasids. The part_nasids mask is located starting at the first cacheline
  82. * following the reserved page header. The mach_nasids mask follows right
  83. * after the part_nasids mask. The size in bytes of each mask is reflected
  84. * by the reserved page header field 'nasids_size'. (Local partition's
  85. * mask pointers are xpc_part_nasids and xpc_mach_nasids.)
  86. *
  87. * vars
  88. * vars part
  89. *
  90. * Immediately following the mach_nasids mask are the XPC variables
  91. * required by other partitions. First are those that are generic to all
  92. * partitions (vars), followed on the next available cacheline by those
  93. * which are partition specific (vars part). These are setup by XPC.
  94. * (Local partition's vars pointers are xpc_vars and xpc_vars_part.)
  95. *
  96. * Note: Until vars_pa is set, the partition XPC code has not been initialized.
  97. */
  98. struct xpc_rsvd_page {
  99. u64 SAL_signature; /* SAL: unique signature */
  100. u64 SAL_version; /* SAL: version */
  101. u8 partid; /* SAL: partition ID */
  102. u8 version;
  103. u8 pad1[6]; /* align to next u64 in cacheline */
  104. volatile u64 vars_pa;
  105. struct timespec stamp; /* time when reserved page was setup by XPC */
  106. u64 pad2[9]; /* align to last u64 in cacheline */
  107. u64 nasids_size; /* SAL: size of each nasid mask in bytes */
  108. };
  109. #define XPC_RP_VERSION _XPC_VERSION(1,1) /* version 1.1 of the reserved page */
  110. #define XPC_SUPPORTS_RP_STAMP(_version) \
  111. (_version >= _XPC_VERSION(1,1))
  112. /*
  113. * compare stamps - the return value is:
  114. *
  115. * < 0, if stamp1 < stamp2
  116. * = 0, if stamp1 == stamp2
  117. * > 0, if stamp1 > stamp2
  118. */
  119. static inline int
  120. xpc_compare_stamps(struct timespec *stamp1, struct timespec *stamp2)
  121. {
  122. int ret;
  123. if ((ret = stamp1->tv_sec - stamp2->tv_sec) == 0) {
  124. ret = stamp1->tv_nsec - stamp2->tv_nsec;
  125. }
  126. return ret;
  127. }
  128. /*
  129. * Define the structures by which XPC variables can be exported to other
  130. * partitions. (There are two: struct xpc_vars and struct xpc_vars_part)
  131. */
  132. /*
  133. * The following structure describes the partition generic variables
  134. * needed by other partitions in order to properly initialize.
  135. *
  136. * struct xpc_vars version number also applies to struct xpc_vars_part.
  137. * Changes to either structure and/or related functionality should be
  138. * reflected by incrementing either the major or minor version numbers
  139. * of struct xpc_vars.
  140. */
  141. struct xpc_vars {
  142. u8 version;
  143. u64 heartbeat;
  144. u64 heartbeating_to_mask;
  145. u64 heartbeat_offline; /* if 0, heartbeat should be changing */
  146. int act_nasid;
  147. int act_phys_cpuid;
  148. u64 vars_part_pa;
  149. u64 amos_page_pa; /* paddr of page of AMOs from MSPEC driver */
  150. AMO_t *amos_page; /* vaddr of page of AMOs from MSPEC driver */
  151. };
  152. #define XPC_V_VERSION _XPC_VERSION(3,1) /* version 3.1 of the cross vars */
  153. #define XPC_SUPPORTS_DISENGAGE_REQUEST(_version) \
  154. (_version >= _XPC_VERSION(3,1))
  155. static inline int
  156. xpc_hb_allowed(partid_t partid, struct xpc_vars *vars)
  157. {
  158. return ((vars->heartbeating_to_mask & (1UL << partid)) != 0);
  159. }
  160. static inline void
  161. xpc_allow_hb(partid_t partid, struct xpc_vars *vars)
  162. {
  163. u64 old_mask, new_mask;
  164. do {
  165. old_mask = vars->heartbeating_to_mask;
  166. new_mask = (old_mask | (1UL << partid));
  167. } while (cmpxchg(&vars->heartbeating_to_mask, old_mask, new_mask) !=
  168. old_mask);
  169. }
  170. static inline void
  171. xpc_disallow_hb(partid_t partid, struct xpc_vars *vars)
  172. {
  173. u64 old_mask, new_mask;
  174. do {
  175. old_mask = vars->heartbeating_to_mask;
  176. new_mask = (old_mask & ~(1UL << partid));
  177. } while (cmpxchg(&vars->heartbeating_to_mask, old_mask, new_mask) !=
  178. old_mask);
  179. }
  180. /*
  181. * The AMOs page consists of a number of AMO variables which are divided into
  182. * four groups, The first two groups are used to identify an IRQ's sender.
  183. * These two groups consist of 64 and 128 AMO variables respectively. The last
  184. * two groups, consisting of just one AMO variable each, are used to identify
  185. * the remote partitions that are currently engaged (from the viewpoint of
  186. * the XPC running on the remote partition).
  187. */
  188. #define XPC_NOTIFY_IRQ_AMOS 0
  189. #define XPC_ACTIVATE_IRQ_AMOS (XPC_NOTIFY_IRQ_AMOS + XP_MAX_PARTITIONS)
  190. #define XPC_ENGAGED_PARTITIONS_AMO (XPC_ACTIVATE_IRQ_AMOS + XP_NASID_MASK_WORDS)
  191. #define XPC_DISENGAGE_REQUEST_AMO (XPC_ENGAGED_PARTITIONS_AMO + 1)
  192. /*
  193. * The following structure describes the per partition specific variables.
  194. *
  195. * An array of these structures, one per partition, will be defined. As a
  196. * partition becomes active XPC will copy the array entry corresponding to
  197. * itself from that partition. It is desirable that the size of this
  198. * structure evenly divide into a cacheline, such that none of the entries
  199. * in this array crosses a cacheline boundary. As it is now, each entry
  200. * occupies half a cacheline.
  201. */
  202. struct xpc_vars_part {
  203. volatile u64 magic;
  204. u64 openclose_args_pa; /* physical address of open and close args */
  205. u64 GPs_pa; /* physical address of Get/Put values */
  206. u64 IPI_amo_pa; /* physical address of IPI AMO_t structure */
  207. int IPI_nasid; /* nasid of where to send IPIs */
  208. int IPI_phys_cpuid; /* physical CPU ID of where to send IPIs */
  209. u8 nchannels; /* #of defined channels supported */
  210. u8 reserved[23]; /* pad to a full 64 bytes */
  211. };
  212. /*
  213. * The vars_part MAGIC numbers play a part in the first contact protocol.
  214. *
  215. * MAGIC1 indicates that the per partition specific variables for a remote
  216. * partition have been initialized by this partition.
  217. *
  218. * MAGIC2 indicates that this partition has pulled the remote partititions
  219. * per partition variables that pertain to this partition.
  220. */
  221. #define XPC_VP_MAGIC1 0x0053524156435058L /* 'XPCVARS\0'L (little endian) */
  222. #define XPC_VP_MAGIC2 0x0073726176435058L /* 'XPCvars\0'L (little endian) */
  223. /* the reserved page sizes and offsets */
  224. #define XPC_RP_HEADER_SIZE L1_CACHE_ALIGN(sizeof(struct xpc_rsvd_page))
  225. #define XPC_RP_VARS_SIZE L1_CACHE_ALIGN(sizeof(struct xpc_vars))
  226. #define XPC_RP_PART_NASIDS(_rp) (u64 *) ((u8 *) _rp + XPC_RP_HEADER_SIZE)
  227. #define XPC_RP_MACH_NASIDS(_rp) (XPC_RP_PART_NASIDS(_rp) + xp_nasid_mask_words)
  228. #define XPC_RP_VARS(_rp) ((struct xpc_vars *) XPC_RP_MACH_NASIDS(_rp) + xp_nasid_mask_words)
  229. #define XPC_RP_VARS_PART(_rp) (struct xpc_vars_part *) ((u8 *) XPC_RP_VARS(rp) + XPC_RP_VARS_SIZE)
  230. /*
  231. * Functions registered by add_timer() or called by kernel_thread() only
  232. * allow for a single 64-bit argument. The following macros can be used to
  233. * pack and unpack two (32-bit, 16-bit or 8-bit) arguments into or out from
  234. * the passed argument.
  235. */
  236. #define XPC_PACK_ARGS(_arg1, _arg2) \
  237. ((((u64) _arg1) & 0xffffffff) | \
  238. ((((u64) _arg2) & 0xffffffff) << 32))
  239. #define XPC_UNPACK_ARG1(_args) (((u64) _args) & 0xffffffff)
  240. #define XPC_UNPACK_ARG2(_args) ((((u64) _args) >> 32) & 0xffffffff)
  241. /*
  242. * Define a Get/Put value pair (pointers) used with a message queue.
  243. */
  244. struct xpc_gp {
  245. volatile s64 get; /* Get value */
  246. volatile s64 put; /* Put value */
  247. };
  248. #define XPC_GP_SIZE \
  249. L1_CACHE_ALIGN(sizeof(struct xpc_gp) * XPC_NCHANNELS)
  250. /*
  251. * Define a structure that contains arguments associated with opening and
  252. * closing a channel.
  253. */
  254. struct xpc_openclose_args {
  255. u16 reason; /* reason why channel is closing */
  256. u16 msg_size; /* sizeof each message entry */
  257. u16 remote_nentries; /* #of message entries in remote msg queue */
  258. u16 local_nentries; /* #of message entries in local msg queue */
  259. u64 local_msgqueue_pa; /* physical address of local message queue */
  260. };
  261. #define XPC_OPENCLOSE_ARGS_SIZE \
  262. L1_CACHE_ALIGN(sizeof(struct xpc_openclose_args) * XPC_NCHANNELS)
  263. /* struct xpc_msg flags */
  264. #define XPC_M_DONE 0x01 /* msg has been received/consumed */
  265. #define XPC_M_READY 0x02 /* msg is ready to be sent */
  266. #define XPC_M_INTERRUPT 0x04 /* send interrupt when msg consumed */
  267. #define XPC_MSG_ADDRESS(_payload) \
  268. ((struct xpc_msg *)((u8 *)(_payload) - XPC_MSG_PAYLOAD_OFFSET))
  269. /*
  270. * Defines notify entry.
  271. *
  272. * This is used to notify a message's sender that their message was received
  273. * and consumed by the intended recipient.
  274. */
  275. struct xpc_notify {
  276. volatile u8 type; /* type of notification */
  277. /* the following two fields are only used if type == XPC_N_CALL */
  278. xpc_notify_func func; /* user's notify function */
  279. void *key; /* pointer to user's key */
  280. };
  281. /* struct xpc_notify type of notification */
  282. #define XPC_N_CALL 0x01 /* notify function provided by user */
  283. /*
  284. * Define the structure that manages all the stuff required by a channel. In
  285. * particular, they are used to manage the messages sent across the channel.
  286. *
  287. * This structure is private to a partition, and is NOT shared across the
  288. * partition boundary.
  289. *
  290. * There is an array of these structures for each remote partition. It is
  291. * allocated at the time a partition becomes active. The array contains one
  292. * of these structures for each potential channel connection to that partition.
  293. *
  294. * Each of these structures manages two message queues (circular buffers).
  295. * They are allocated at the time a channel connection is made. One of
  296. * these message queues (local_msgqueue) holds the locally created messages
  297. * that are destined for the remote partition. The other of these message
  298. * queues (remote_msgqueue) is a locally cached copy of the remote partition's
  299. * own local_msgqueue.
  300. *
  301. * The following is a description of the Get/Put pointers used to manage these
  302. * two message queues. Consider the local_msgqueue to be on one partition
  303. * and the remote_msgqueue to be its cached copy on another partition. A
  304. * description of what each of the lettered areas contains is included.
  305. *
  306. *
  307. * local_msgqueue remote_msgqueue
  308. *
  309. * |/////////| |/////////|
  310. * w_remote_GP.get --> +---------+ |/////////|
  311. * | F | |/////////|
  312. * remote_GP.get --> +---------+ +---------+ <-- local_GP->get
  313. * | | | |
  314. * | | | E |
  315. * | | | |
  316. * | | +---------+ <-- w_local_GP.get
  317. * | B | |/////////|
  318. * | | |////D////|
  319. * | | |/////////|
  320. * | | +---------+ <-- w_remote_GP.put
  321. * | | |////C////|
  322. * local_GP->put --> +---------+ +---------+ <-- remote_GP.put
  323. * | | |/////////|
  324. * | A | |/////////|
  325. * | | |/////////|
  326. * w_local_GP.put --> +---------+ |/////////|
  327. * |/////////| |/////////|
  328. *
  329. *
  330. * ( remote_GP.[get|put] are cached copies of the remote
  331. * partition's local_GP->[get|put], and thus their values can
  332. * lag behind their counterparts on the remote partition. )
  333. *
  334. *
  335. * A - Messages that have been allocated, but have not yet been sent to the
  336. * remote partition.
  337. *
  338. * B - Messages that have been sent, but have not yet been acknowledged by the
  339. * remote partition as having been received.
  340. *
  341. * C - Area that needs to be prepared for the copying of sent messages, by
  342. * the clearing of the message flags of any previously received messages.
  343. *
  344. * D - Area into which sent messages are to be copied from the remote
  345. * partition's local_msgqueue and then delivered to their intended
  346. * recipients. [ To allow for a multi-message copy, another pointer
  347. * (next_msg_to_pull) has been added to keep track of the next message
  348. * number needing to be copied (pulled). It chases after w_remote_GP.put.
  349. * Any messages lying between w_local_GP.get and next_msg_to_pull have
  350. * been copied and are ready to be delivered. ]
  351. *
  352. * E - Messages that have been copied and delivered, but have not yet been
  353. * acknowledged by the recipient as having been received.
  354. *
  355. * F - Messages that have been acknowledged, but XPC has not yet notified the
  356. * sender that the message was received by its intended recipient.
  357. * This is also an area that needs to be prepared for the allocating of
  358. * new messages, by the clearing of the message flags of the acknowledged
  359. * messages.
  360. */
  361. struct xpc_channel {
  362. partid_t partid; /* ID of remote partition connected */
  363. spinlock_t lock; /* lock for updating this structure */
  364. u32 flags; /* general flags */
  365. enum xpc_retval reason; /* reason why channel is disconnect'g */
  366. int reason_line; /* line# disconnect initiated from */
  367. u16 number; /* channel # */
  368. u16 msg_size; /* sizeof each msg entry */
  369. u16 local_nentries; /* #of msg entries in local msg queue */
  370. u16 remote_nentries; /* #of msg entries in remote msg queue*/
  371. void *local_msgqueue_base; /* base address of kmalloc'd space */
  372. struct xpc_msg *local_msgqueue; /* local message queue */
  373. void *remote_msgqueue_base; /* base address of kmalloc'd space */
  374. struct xpc_msg *remote_msgqueue;/* cached copy of remote partition's */
  375. /* local message queue */
  376. u64 remote_msgqueue_pa; /* phys addr of remote partition's */
  377. /* local message queue */
  378. atomic_t references; /* #of external references to queues */
  379. atomic_t n_on_msg_allocate_wq; /* #on msg allocation wait queue */
  380. wait_queue_head_t msg_allocate_wq; /* msg allocation wait queue */
  381. u8 delayed_IPI_flags; /* IPI flags received, but delayed */
  382. /* action until channel disconnected */
  383. /* queue of msg senders who want to be notified when msg received */
  384. atomic_t n_to_notify; /* #of msg senders to notify */
  385. struct xpc_notify *notify_queue;/* notify queue for messages sent */
  386. xpc_channel_func func; /* user's channel function */
  387. void *key; /* pointer to user's key */
  388. struct mutex msg_to_pull_mutex; /* next msg to pull serialization */
  389. struct completion wdisconnect_wait; /* wait for channel disconnect */
  390. struct xpc_openclose_args *local_openclose_args; /* args passed on */
  391. /* opening or closing of channel */
  392. /* various flavors of local and remote Get/Put values */
  393. struct xpc_gp *local_GP; /* local Get/Put values */
  394. struct xpc_gp remote_GP; /* remote Get/Put values */
  395. struct xpc_gp w_local_GP; /* working local Get/Put values */
  396. struct xpc_gp w_remote_GP; /* working remote Get/Put values */
  397. s64 next_msg_to_pull; /* Put value of next msg to pull */
  398. /* kthread management related fields */
  399. // >>> rethink having kthreads_assigned_limit and kthreads_idle_limit; perhaps
  400. // >>> allow the assigned limit be unbounded and let the idle limit be dynamic
  401. // >>> dependent on activity over the last interval of time
  402. atomic_t kthreads_assigned; /* #of kthreads assigned to channel */
  403. u32 kthreads_assigned_limit; /* limit on #of kthreads assigned */
  404. atomic_t kthreads_idle; /* #of kthreads idle waiting for work */
  405. u32 kthreads_idle_limit; /* limit on #of kthreads idle */
  406. atomic_t kthreads_active; /* #of kthreads actively working */
  407. // >>> following field is temporary
  408. u32 kthreads_created; /* total #of kthreads created */
  409. wait_queue_head_t idle_wq; /* idle kthread wait queue */
  410. } ____cacheline_aligned;
  411. /* struct xpc_channel flags */
  412. #define XPC_C_WASCONNECTED 0x00000001 /* channel was connected */
  413. #define XPC_C_ROPENREPLY 0x00000002 /* remote open channel reply */
  414. #define XPC_C_OPENREPLY 0x00000004 /* local open channel reply */
  415. #define XPC_C_ROPENREQUEST 0x00000008 /* remote open channel request */
  416. #define XPC_C_OPENREQUEST 0x00000010 /* local open channel request */
  417. #define XPC_C_SETUP 0x00000020 /* channel's msgqueues are alloc'd */
  418. #define XPC_C_CONNECTEDCALLOUT 0x00000040 /* connected callout initiated */
  419. #define XPC_C_CONNECTEDCALLOUT_MADE \
  420. 0x00000080 /* connected callout completed */
  421. #define XPC_C_CONNECTED 0x00000100 /* local channel is connected */
  422. #define XPC_C_CONNECTING 0x00000200 /* channel is being connected */
  423. #define XPC_C_RCLOSEREPLY 0x00000400 /* remote close channel reply */
  424. #define XPC_C_CLOSEREPLY 0x00000800 /* local close channel reply */
  425. #define XPC_C_RCLOSEREQUEST 0x00001000 /* remote close channel request */
  426. #define XPC_C_CLOSEREQUEST 0x00002000 /* local close channel request */
  427. #define XPC_C_DISCONNECTED 0x00004000 /* channel is disconnected */
  428. #define XPC_C_DISCONNECTING 0x00008000 /* channel is being disconnected */
  429. #define XPC_C_DISCONNECTINGCALLOUT \
  430. 0x00010000 /* disconnecting callout initiated */
  431. #define XPC_C_DISCONNECTINGCALLOUT_MADE \
  432. 0x00020000 /* disconnecting callout completed */
  433. #define XPC_C_WDISCONNECT 0x00040000 /* waiting for channel disconnect */
  434. /*
  435. * Manages channels on a partition basis. There is one of these structures
  436. * for each partition (a partition will never utilize the structure that
  437. * represents itself).
  438. */
  439. struct xpc_partition {
  440. /* XPC HB infrastructure */
  441. u8 remote_rp_version; /* version# of partition's rsvd pg */
  442. struct timespec remote_rp_stamp;/* time when rsvd pg was initialized */
  443. u64 remote_rp_pa; /* phys addr of partition's rsvd pg */
  444. u64 remote_vars_pa; /* phys addr of partition's vars */
  445. u64 remote_vars_part_pa; /* phys addr of partition's vars part */
  446. u64 last_heartbeat; /* HB at last read */
  447. u64 remote_amos_page_pa; /* phys addr of partition's amos page */
  448. int remote_act_nasid; /* active part's act/deact nasid */
  449. int remote_act_phys_cpuid; /* active part's act/deact phys cpuid */
  450. u32 act_IRQ_rcvd; /* IRQs since activation */
  451. spinlock_t act_lock; /* protect updating of act_state */
  452. u8 act_state; /* from XPC HB viewpoint */
  453. u8 remote_vars_version; /* version# of partition's vars */
  454. enum xpc_retval reason; /* reason partition is deactivating */
  455. int reason_line; /* line# deactivation initiated from */
  456. int reactivate_nasid; /* nasid in partition to reactivate */
  457. unsigned long disengage_request_timeout; /* timeout in jiffies */
  458. struct timer_list disengage_request_timer;
  459. /* XPC infrastructure referencing and teardown control */
  460. volatile u8 setup_state; /* infrastructure setup state */
  461. wait_queue_head_t teardown_wq; /* kthread waiting to teardown infra */
  462. atomic_t references; /* #of references to infrastructure */
  463. /*
  464. * NONE OF THE PRECEDING FIELDS OF THIS STRUCTURE WILL BE CLEARED WHEN
  465. * XPC SETS UP THE NECESSARY INFRASTRUCTURE TO SUPPORT CROSS PARTITION
  466. * COMMUNICATION. ALL OF THE FOLLOWING FIELDS WILL BE CLEARED. (THE
  467. * 'nchannels' FIELD MUST BE THE FIRST OF THE FIELDS TO BE CLEARED.)
  468. */
  469. u8 nchannels; /* #of defined channels supported */
  470. atomic_t nchannels_active; /* #of channels that are not DISCONNECTED */
  471. atomic_t nchannels_engaged;/* #of channels engaged with remote part */
  472. struct xpc_channel *channels;/* array of channel structures */
  473. void *local_GPs_base; /* base address of kmalloc'd space */
  474. struct xpc_gp *local_GPs; /* local Get/Put values */
  475. void *remote_GPs_base; /* base address of kmalloc'd space */
  476. struct xpc_gp *remote_GPs;/* copy of remote partition's local Get/Put */
  477. /* values */
  478. u64 remote_GPs_pa; /* phys address of remote partition's local */
  479. /* Get/Put values */
  480. /* fields used to pass args when opening or closing a channel */
  481. void *local_openclose_args_base; /* base address of kmalloc'd space */
  482. struct xpc_openclose_args *local_openclose_args; /* local's args */
  483. void *remote_openclose_args_base; /* base address of kmalloc'd space */
  484. struct xpc_openclose_args *remote_openclose_args; /* copy of remote's */
  485. /* args */
  486. u64 remote_openclose_args_pa; /* phys addr of remote's args */
  487. /* IPI sending, receiving and handling related fields */
  488. int remote_IPI_nasid; /* nasid of where to send IPIs */
  489. int remote_IPI_phys_cpuid; /* phys CPU ID of where to send IPIs */
  490. AMO_t *remote_IPI_amo_va; /* address of remote IPI AMO_t structure */
  491. AMO_t *local_IPI_amo_va; /* address of IPI AMO_t structure */
  492. u64 local_IPI_amo; /* IPI amo flags yet to be handled */
  493. char IPI_owner[8]; /* IPI owner's name */
  494. struct timer_list dropped_IPI_timer; /* dropped IPI timer */
  495. spinlock_t IPI_lock; /* IPI handler lock */
  496. /* channel manager related fields */
  497. atomic_t channel_mgr_requests; /* #of requests to activate chan mgr */
  498. wait_queue_head_t channel_mgr_wq; /* channel mgr's wait queue */
  499. } ____cacheline_aligned;
  500. /* struct xpc_partition act_state values (for XPC HB) */
  501. #define XPC_P_INACTIVE 0x00 /* partition is not active */
  502. #define XPC_P_ACTIVATION_REQ 0x01 /* created thread to activate */
  503. #define XPC_P_ACTIVATING 0x02 /* activation thread started */
  504. #define XPC_P_ACTIVE 0x03 /* xpc_partition_up() was called */
  505. #define XPC_P_DEACTIVATING 0x04 /* partition deactivation initiated */
  506. #define XPC_DEACTIVATE_PARTITION(_p, _reason) \
  507. xpc_deactivate_partition(__LINE__, (_p), (_reason))
  508. /* struct xpc_partition setup_state values */
  509. #define XPC_P_UNSET 0x00 /* infrastructure was never setup */
  510. #define XPC_P_SETUP 0x01 /* infrastructure is setup */
  511. #define XPC_P_WTEARDOWN 0x02 /* waiting to teardown infrastructure */
  512. #define XPC_P_TORNDOWN 0x03 /* infrastructure is torndown */
  513. /*
  514. * struct xpc_partition IPI_timer #of seconds to wait before checking for
  515. * dropped IPIs. These occur whenever an IPI amo write doesn't complete until
  516. * after the IPI was received.
  517. */
  518. #define XPC_P_DROPPED_IPI_WAIT (0.25 * HZ)
  519. /* number of seconds to wait for other partitions to disengage */
  520. #define XPC_DISENGAGE_REQUEST_DEFAULT_TIMELIMIT 90
  521. /* interval in seconds to print 'waiting disengagement' messages */
  522. #define XPC_DISENGAGE_PRINTMSG_INTERVAL 10
  523. #define XPC_PARTID(_p) ((partid_t) ((_p) - &xpc_partitions[0]))
  524. /* found in xp_main.c */
  525. extern struct xpc_registration xpc_registrations[];
  526. /* found in xpc_main.c */
  527. extern struct device *xpc_part;
  528. extern struct device *xpc_chan;
  529. extern int xpc_disengage_request_timelimit;
  530. extern int xpc_disengage_request_timedout;
  531. extern irqreturn_t xpc_notify_IRQ_handler(int, void *, struct pt_regs *);
  532. extern void xpc_dropped_IPI_check(struct xpc_partition *);
  533. extern void xpc_activate_partition(struct xpc_partition *);
  534. extern void xpc_activate_kthreads(struct xpc_channel *, int);
  535. extern void xpc_create_kthreads(struct xpc_channel *, int);
  536. extern void xpc_disconnect_wait(int);
  537. /* found in xpc_partition.c */
  538. extern int xpc_exiting;
  539. extern struct xpc_vars *xpc_vars;
  540. extern struct xpc_rsvd_page *xpc_rsvd_page;
  541. extern struct xpc_vars_part *xpc_vars_part;
  542. extern struct xpc_partition xpc_partitions[XP_MAX_PARTITIONS + 1];
  543. extern char xpc_remote_copy_buffer[];
  544. extern struct xpc_rsvd_page *xpc_rsvd_page_init(void);
  545. extern void xpc_allow_IPI_ops(void);
  546. extern void xpc_restrict_IPI_ops(void);
  547. extern int xpc_identify_act_IRQ_sender(void);
  548. extern int xpc_partition_disengaged(struct xpc_partition *);
  549. extern enum xpc_retval xpc_mark_partition_active(struct xpc_partition *);
  550. extern void xpc_mark_partition_inactive(struct xpc_partition *);
  551. extern void xpc_discovery(void);
  552. extern void xpc_check_remote_hb(void);
  553. extern void xpc_deactivate_partition(const int, struct xpc_partition *,
  554. enum xpc_retval);
  555. extern enum xpc_retval xpc_initiate_partid_to_nasids(partid_t, void *);
  556. /* found in xpc_channel.c */
  557. extern void xpc_initiate_connect(int);
  558. extern void xpc_initiate_disconnect(int);
  559. extern enum xpc_retval xpc_initiate_allocate(partid_t, int, u32, void **);
  560. extern enum xpc_retval xpc_initiate_send(partid_t, int, void *);
  561. extern enum xpc_retval xpc_initiate_send_notify(partid_t, int, void *,
  562. xpc_notify_func, void *);
  563. extern void xpc_initiate_received(partid_t, int, void *);
  564. extern enum xpc_retval xpc_setup_infrastructure(struct xpc_partition *);
  565. extern enum xpc_retval xpc_pull_remote_vars_part(struct xpc_partition *);
  566. extern void xpc_process_channel_activity(struct xpc_partition *);
  567. extern void xpc_connected_callout(struct xpc_channel *);
  568. extern void xpc_deliver_msg(struct xpc_channel *);
  569. extern void xpc_disconnect_channel(const int, struct xpc_channel *,
  570. enum xpc_retval, unsigned long *);
  571. extern void xpc_disconnect_callout(struct xpc_channel *, enum xpc_retval);
  572. extern void xpc_partition_going_down(struct xpc_partition *, enum xpc_retval);
  573. extern void xpc_teardown_infrastructure(struct xpc_partition *);
  574. static inline void
  575. xpc_wakeup_channel_mgr(struct xpc_partition *part)
  576. {
  577. if (atomic_inc_return(&part->channel_mgr_requests) == 1) {
  578. wake_up(&part->channel_mgr_wq);
  579. }
  580. }
  581. /*
  582. * These next two inlines are used to keep us from tearing down a channel's
  583. * msg queues while a thread may be referencing them.
  584. */
  585. static inline void
  586. xpc_msgqueue_ref(struct xpc_channel *ch)
  587. {
  588. atomic_inc(&ch->references);
  589. }
  590. static inline void
  591. xpc_msgqueue_deref(struct xpc_channel *ch)
  592. {
  593. s32 refs = atomic_dec_return(&ch->references);
  594. DBUG_ON(refs < 0);
  595. if (refs == 0) {
  596. xpc_wakeup_channel_mgr(&xpc_partitions[ch->partid]);
  597. }
  598. }
  599. #define XPC_DISCONNECT_CHANNEL(_ch, _reason, _irqflgs) \
  600. xpc_disconnect_channel(__LINE__, _ch, _reason, _irqflgs)
  601. /*
  602. * These two inlines are used to keep us from tearing down a partition's
  603. * setup infrastructure while a thread may be referencing it.
  604. */
  605. static inline void
  606. xpc_part_deref(struct xpc_partition *part)
  607. {
  608. s32 refs = atomic_dec_return(&part->references);
  609. DBUG_ON(refs < 0);
  610. if (refs == 0 && part->setup_state == XPC_P_WTEARDOWN) {
  611. wake_up(&part->teardown_wq);
  612. }
  613. }
  614. static inline int
  615. xpc_part_ref(struct xpc_partition *part)
  616. {
  617. int setup;
  618. atomic_inc(&part->references);
  619. setup = (part->setup_state == XPC_P_SETUP);
  620. if (!setup) {
  621. xpc_part_deref(part);
  622. }
  623. return setup;
  624. }
  625. /*
  626. * The following macro is to be used for the setting of the reason and
  627. * reason_line fields in both the struct xpc_channel and struct xpc_partition
  628. * structures.
  629. */
  630. #define XPC_SET_REASON(_p, _reason, _line) \
  631. { \
  632. (_p)->reason = _reason; \
  633. (_p)->reason_line = _line; \
  634. }
  635. /*
  636. * This next set of inlines are used to keep track of when a partition is
  637. * potentially engaged in accessing memory belonging to another partition.
  638. */
  639. static inline void
  640. xpc_mark_partition_engaged(struct xpc_partition *part)
  641. {
  642. unsigned long irq_flags;
  643. AMO_t *amo = (AMO_t *) __va(part->remote_amos_page_pa +
  644. (XPC_ENGAGED_PARTITIONS_AMO * sizeof(AMO_t)));
  645. local_irq_save(irq_flags);
  646. /* set bit corresponding to our partid in remote partition's AMO */
  647. FETCHOP_STORE_OP(TO_AMO((u64) &amo->variable), FETCHOP_OR,
  648. (1UL << sn_partition_id));
  649. /*
  650. * We must always use the nofault function regardless of whether we
  651. * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
  652. * didn't, we'd never know that the other partition is down and would
  653. * keep sending IPIs and AMOs to it until the heartbeat times out.
  654. */
  655. (void) xp_nofault_PIOR((u64 *) GLOBAL_MMR_ADDR(NASID_GET(&amo->
  656. variable), xp_nofault_PIOR_target));
  657. local_irq_restore(irq_flags);
  658. }
  659. static inline void
  660. xpc_mark_partition_disengaged(struct xpc_partition *part)
  661. {
  662. unsigned long irq_flags;
  663. AMO_t *amo = (AMO_t *) __va(part->remote_amos_page_pa +
  664. (XPC_ENGAGED_PARTITIONS_AMO * sizeof(AMO_t)));
  665. local_irq_save(irq_flags);
  666. /* clear bit corresponding to our partid in remote partition's AMO */
  667. FETCHOP_STORE_OP(TO_AMO((u64) &amo->variable), FETCHOP_AND,
  668. ~(1UL << sn_partition_id));
  669. /*
  670. * We must always use the nofault function regardless of whether we
  671. * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
  672. * didn't, we'd never know that the other partition is down and would
  673. * keep sending IPIs and AMOs to it until the heartbeat times out.
  674. */
  675. (void) xp_nofault_PIOR((u64 *) GLOBAL_MMR_ADDR(NASID_GET(&amo->
  676. variable), xp_nofault_PIOR_target));
  677. local_irq_restore(irq_flags);
  678. }
  679. static inline void
  680. xpc_request_partition_disengage(struct xpc_partition *part)
  681. {
  682. unsigned long irq_flags;
  683. AMO_t *amo = (AMO_t *) __va(part->remote_amos_page_pa +
  684. (XPC_DISENGAGE_REQUEST_AMO * sizeof(AMO_t)));
  685. local_irq_save(irq_flags);
  686. /* set bit corresponding to our partid in remote partition's AMO */
  687. FETCHOP_STORE_OP(TO_AMO((u64) &amo->variable), FETCHOP_OR,
  688. (1UL << sn_partition_id));
  689. /*
  690. * We must always use the nofault function regardless of whether we
  691. * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
  692. * didn't, we'd never know that the other partition is down and would
  693. * keep sending IPIs and AMOs to it until the heartbeat times out.
  694. */
  695. (void) xp_nofault_PIOR((u64 *) GLOBAL_MMR_ADDR(NASID_GET(&amo->
  696. variable), xp_nofault_PIOR_target));
  697. local_irq_restore(irq_flags);
  698. }
  699. static inline void
  700. xpc_cancel_partition_disengage_request(struct xpc_partition *part)
  701. {
  702. unsigned long irq_flags;
  703. AMO_t *amo = (AMO_t *) __va(part->remote_amos_page_pa +
  704. (XPC_DISENGAGE_REQUEST_AMO * sizeof(AMO_t)));
  705. local_irq_save(irq_flags);
  706. /* clear bit corresponding to our partid in remote partition's AMO */
  707. FETCHOP_STORE_OP(TO_AMO((u64) &amo->variable), FETCHOP_AND,
  708. ~(1UL << sn_partition_id));
  709. /*
  710. * We must always use the nofault function regardless of whether we
  711. * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
  712. * didn't, we'd never know that the other partition is down and would
  713. * keep sending IPIs and AMOs to it until the heartbeat times out.
  714. */
  715. (void) xp_nofault_PIOR((u64 *) GLOBAL_MMR_ADDR(NASID_GET(&amo->
  716. variable), xp_nofault_PIOR_target));
  717. local_irq_restore(irq_flags);
  718. }
  719. static inline u64
  720. xpc_partition_engaged(u64 partid_mask)
  721. {
  722. AMO_t *amo = xpc_vars->amos_page + XPC_ENGAGED_PARTITIONS_AMO;
  723. /* return our partition's AMO variable ANDed with partid_mask */
  724. return (FETCHOP_LOAD_OP(TO_AMO((u64) &amo->variable), FETCHOP_LOAD) &
  725. partid_mask);
  726. }
  727. static inline u64
  728. xpc_partition_disengage_requested(u64 partid_mask)
  729. {
  730. AMO_t *amo = xpc_vars->amos_page + XPC_DISENGAGE_REQUEST_AMO;
  731. /* return our partition's AMO variable ANDed with partid_mask */
  732. return (FETCHOP_LOAD_OP(TO_AMO((u64) &amo->variable), FETCHOP_LOAD) &
  733. partid_mask);
  734. }
  735. static inline void
  736. xpc_clear_partition_engaged(u64 partid_mask)
  737. {
  738. AMO_t *amo = xpc_vars->amos_page + XPC_ENGAGED_PARTITIONS_AMO;
  739. /* clear bit(s) based on partid_mask in our partition's AMO */
  740. FETCHOP_STORE_OP(TO_AMO((u64) &amo->variable), FETCHOP_AND,
  741. ~partid_mask);
  742. }
  743. static inline void
  744. xpc_clear_partition_disengage_request(u64 partid_mask)
  745. {
  746. AMO_t *amo = xpc_vars->amos_page + XPC_DISENGAGE_REQUEST_AMO;
  747. /* clear bit(s) based on partid_mask in our partition's AMO */
  748. FETCHOP_STORE_OP(TO_AMO((u64) &amo->variable), FETCHOP_AND,
  749. ~partid_mask);
  750. }
  751. /*
  752. * The following set of macros and inlines are used for the sending and
  753. * receiving of IPIs (also known as IRQs). There are two flavors of IPIs,
  754. * one that is associated with partition activity (SGI_XPC_ACTIVATE) and
  755. * the other that is associated with channel activity (SGI_XPC_NOTIFY).
  756. */
  757. static inline u64
  758. xpc_IPI_receive(AMO_t *amo)
  759. {
  760. return FETCHOP_LOAD_OP(TO_AMO((u64) &amo->variable), FETCHOP_CLEAR);
  761. }
  762. static inline enum xpc_retval
  763. xpc_IPI_send(AMO_t *amo, u64 flag, int nasid, int phys_cpuid, int vector)
  764. {
  765. int ret = 0;
  766. unsigned long irq_flags;
  767. local_irq_save(irq_flags);
  768. FETCHOP_STORE_OP(TO_AMO((u64) &amo->variable), FETCHOP_OR, flag);
  769. sn_send_IPI_phys(nasid, phys_cpuid, vector, 0);
  770. /*
  771. * We must always use the nofault function regardless of whether we
  772. * are on a Shub 1.1 system or a Shub 1.2 slice 0xc processor. If we
  773. * didn't, we'd never know that the other partition is down and would
  774. * keep sending IPIs and AMOs to it until the heartbeat times out.
  775. */
  776. ret = xp_nofault_PIOR((u64 *) GLOBAL_MMR_ADDR(NASID_GET(&amo->variable),
  777. xp_nofault_PIOR_target));
  778. local_irq_restore(irq_flags);
  779. return ((ret == 0) ? xpcSuccess : xpcPioReadError);
  780. }
  781. /*
  782. * IPIs associated with SGI_XPC_ACTIVATE IRQ.
  783. */
  784. /*
  785. * Flag the appropriate AMO variable and send an IPI to the specified node.
  786. */
  787. static inline void
  788. xpc_activate_IRQ_send(u64 amos_page_pa, int from_nasid, int to_nasid,
  789. int to_phys_cpuid)
  790. {
  791. int w_index = XPC_NASID_W_INDEX(from_nasid);
  792. int b_index = XPC_NASID_B_INDEX(from_nasid);
  793. AMO_t *amos = (AMO_t *) __va(amos_page_pa +
  794. (XPC_ACTIVATE_IRQ_AMOS * sizeof(AMO_t)));
  795. (void) xpc_IPI_send(&amos[w_index], (1UL << b_index), to_nasid,
  796. to_phys_cpuid, SGI_XPC_ACTIVATE);
  797. }
  798. static inline void
  799. xpc_IPI_send_activate(struct xpc_vars *vars)
  800. {
  801. xpc_activate_IRQ_send(vars->amos_page_pa, cnodeid_to_nasid(0),
  802. vars->act_nasid, vars->act_phys_cpuid);
  803. }
  804. static inline void
  805. xpc_IPI_send_activated(struct xpc_partition *part)
  806. {
  807. xpc_activate_IRQ_send(part->remote_amos_page_pa, cnodeid_to_nasid(0),
  808. part->remote_act_nasid, part->remote_act_phys_cpuid);
  809. }
  810. static inline void
  811. xpc_IPI_send_reactivate(struct xpc_partition *part)
  812. {
  813. xpc_activate_IRQ_send(xpc_vars->amos_page_pa, part->reactivate_nasid,
  814. xpc_vars->act_nasid, xpc_vars->act_phys_cpuid);
  815. }
  816. static inline void
  817. xpc_IPI_send_disengage(struct xpc_partition *part)
  818. {
  819. xpc_activate_IRQ_send(part->remote_amos_page_pa, cnodeid_to_nasid(0),
  820. part->remote_act_nasid, part->remote_act_phys_cpuid);
  821. }
  822. /*
  823. * IPIs associated with SGI_XPC_NOTIFY IRQ.
  824. */
  825. /*
  826. * Send an IPI to the remote partition that is associated with the
  827. * specified channel.
  828. */
  829. #define XPC_NOTIFY_IRQ_SEND(_ch, _ipi_f, _irq_f) \
  830. xpc_notify_IRQ_send(_ch, _ipi_f, #_ipi_f, _irq_f)
  831. static inline void
  832. xpc_notify_IRQ_send(struct xpc_channel *ch, u8 ipi_flag, char *ipi_flag_string,
  833. unsigned long *irq_flags)
  834. {
  835. struct xpc_partition *part = &xpc_partitions[ch->partid];
  836. enum xpc_retval ret;
  837. if (likely(part->act_state != XPC_P_DEACTIVATING)) {
  838. ret = xpc_IPI_send(part->remote_IPI_amo_va,
  839. (u64) ipi_flag << (ch->number * 8),
  840. part->remote_IPI_nasid,
  841. part->remote_IPI_phys_cpuid,
  842. SGI_XPC_NOTIFY);
  843. dev_dbg(xpc_chan, "%s sent to partid=%d, channel=%d, ret=%d\n",
  844. ipi_flag_string, ch->partid, ch->number, ret);
  845. if (unlikely(ret != xpcSuccess)) {
  846. if (irq_flags != NULL) {
  847. spin_unlock_irqrestore(&ch->lock, *irq_flags);
  848. }
  849. XPC_DEACTIVATE_PARTITION(part, ret);
  850. if (irq_flags != NULL) {
  851. spin_lock_irqsave(&ch->lock, *irq_flags);
  852. }
  853. }
  854. }
  855. }
  856. /*
  857. * Make it look like the remote partition, which is associated with the
  858. * specified channel, sent us an IPI. This faked IPI will be handled
  859. * by xpc_dropped_IPI_check().
  860. */
  861. #define XPC_NOTIFY_IRQ_SEND_LOCAL(_ch, _ipi_f) \
  862. xpc_notify_IRQ_send_local(_ch, _ipi_f, #_ipi_f)
  863. static inline void
  864. xpc_notify_IRQ_send_local(struct xpc_channel *ch, u8 ipi_flag,
  865. char *ipi_flag_string)
  866. {
  867. struct xpc_partition *part = &xpc_partitions[ch->partid];
  868. FETCHOP_STORE_OP(TO_AMO((u64) &part->local_IPI_amo_va->variable),
  869. FETCHOP_OR, ((u64) ipi_flag << (ch->number * 8)));
  870. dev_dbg(xpc_chan, "%s sent local from partid=%d, channel=%d\n",
  871. ipi_flag_string, ch->partid, ch->number);
  872. }
  873. /*
  874. * The sending and receiving of IPIs includes the setting of an AMO variable
  875. * to indicate the reason the IPI was sent. The 64-bit variable is divided
  876. * up into eight bytes, ordered from right to left. Byte zero pertains to
  877. * channel 0, byte one to channel 1, and so on. Each byte is described by
  878. * the following IPI flags.
  879. */
  880. #define XPC_IPI_CLOSEREQUEST 0x01
  881. #define XPC_IPI_CLOSEREPLY 0x02
  882. #define XPC_IPI_OPENREQUEST 0x04
  883. #define XPC_IPI_OPENREPLY 0x08
  884. #define XPC_IPI_MSGREQUEST 0x10
  885. /* given an AMO variable and a channel#, get its associated IPI flags */
  886. #define XPC_GET_IPI_FLAGS(_amo, _c) ((u8) (((_amo) >> ((_c) * 8)) & 0xff))
  887. #define XPC_SET_IPI_FLAGS(_amo, _c, _f) (_amo) |= ((u64) (_f) << ((_c) * 8))
  888. #define XPC_ANY_OPENCLOSE_IPI_FLAGS_SET(_amo) ((_amo) & 0x0f0f0f0f0f0f0f0f)
  889. #define XPC_ANY_MSG_IPI_FLAGS_SET(_amo) ((_amo) & 0x1010101010101010)
  890. static inline void
  891. xpc_IPI_send_closerequest(struct xpc_channel *ch, unsigned long *irq_flags)
  892. {
  893. struct xpc_openclose_args *args = ch->local_openclose_args;
  894. args->reason = ch->reason;
  895. XPC_NOTIFY_IRQ_SEND(ch, XPC_IPI_CLOSEREQUEST, irq_flags);
  896. }
  897. static inline void
  898. xpc_IPI_send_closereply(struct xpc_channel *ch, unsigned long *irq_flags)
  899. {
  900. XPC_NOTIFY_IRQ_SEND(ch, XPC_IPI_CLOSEREPLY, irq_flags);
  901. }
  902. static inline void
  903. xpc_IPI_send_openrequest(struct xpc_channel *ch, unsigned long *irq_flags)
  904. {
  905. struct xpc_openclose_args *args = ch->local_openclose_args;
  906. args->msg_size = ch->msg_size;
  907. args->local_nentries = ch->local_nentries;
  908. XPC_NOTIFY_IRQ_SEND(ch, XPC_IPI_OPENREQUEST, irq_flags);
  909. }
  910. static inline void
  911. xpc_IPI_send_openreply(struct xpc_channel *ch, unsigned long *irq_flags)
  912. {
  913. struct xpc_openclose_args *args = ch->local_openclose_args;
  914. args->remote_nentries = ch->remote_nentries;
  915. args->local_nentries = ch->local_nentries;
  916. args->local_msgqueue_pa = __pa(ch->local_msgqueue);
  917. XPC_NOTIFY_IRQ_SEND(ch, XPC_IPI_OPENREPLY, irq_flags);
  918. }
  919. static inline void
  920. xpc_IPI_send_msgrequest(struct xpc_channel *ch)
  921. {
  922. XPC_NOTIFY_IRQ_SEND(ch, XPC_IPI_MSGREQUEST, NULL);
  923. }
  924. static inline void
  925. xpc_IPI_send_local_msgrequest(struct xpc_channel *ch)
  926. {
  927. XPC_NOTIFY_IRQ_SEND_LOCAL(ch, XPC_IPI_MSGREQUEST);
  928. }
  929. /*
  930. * Memory for XPC's AMO variables is allocated by the MSPEC driver. These
  931. * pages are located in the lowest granule. The lowest granule uses 4k pages
  932. * for cached references and an alternate TLB handler to never provide a
  933. * cacheable mapping for the entire region. This will prevent speculative
  934. * reading of cached copies of our lines from being issued which will cause
  935. * a PI FSB Protocol error to be generated by the SHUB. For XPC, we need 64
  936. * AMO variables (based on XP_MAX_PARTITIONS) for message notification and an
  937. * additional 128 AMO variables (based on XP_NASID_MASK_WORDS) for partition
  938. * activation and 2 AMO variables for partition deactivation.
  939. */
  940. static inline AMO_t *
  941. xpc_IPI_init(int index)
  942. {
  943. AMO_t *amo = xpc_vars->amos_page + index;
  944. (void) xpc_IPI_receive(amo); /* clear AMO variable */
  945. return amo;
  946. }
  947. static inline enum xpc_retval
  948. xpc_map_bte_errors(bte_result_t error)
  949. {
  950. switch (error) {
  951. case BTE_SUCCESS: return xpcSuccess;
  952. case BTEFAIL_DIR: return xpcBteDirectoryError;
  953. case BTEFAIL_POISON: return xpcBtePoisonError;
  954. case BTEFAIL_WERR: return xpcBteWriteError;
  955. case BTEFAIL_ACCESS: return xpcBteAccessError;
  956. case BTEFAIL_PWERR: return xpcBtePWriteError;
  957. case BTEFAIL_PRERR: return xpcBtePReadError;
  958. case BTEFAIL_TOUT: return xpcBteTimeOutError;
  959. case BTEFAIL_XTERR: return xpcBteXtalkError;
  960. case BTEFAIL_NOTAVAIL: return xpcBteNotAvailable;
  961. default: return xpcBteUnmappedError;
  962. }
  963. }
  964. /*
  965. * Check to see if there is any channel activity to/from the specified
  966. * partition.
  967. */
  968. static inline void
  969. xpc_check_for_channel_activity(struct xpc_partition *part)
  970. {
  971. u64 IPI_amo;
  972. unsigned long irq_flags;
  973. IPI_amo = xpc_IPI_receive(part->local_IPI_amo_va);
  974. if (IPI_amo == 0) {
  975. return;
  976. }
  977. spin_lock_irqsave(&part->IPI_lock, irq_flags);
  978. part->local_IPI_amo |= IPI_amo;
  979. spin_unlock_irqrestore(&part->IPI_lock, irq_flags);
  980. dev_dbg(xpc_chan, "received IPI from partid=%d, IPI_amo=0x%lx\n",
  981. XPC_PARTID(part), IPI_amo);
  982. xpc_wakeup_channel_mgr(part);
  983. }
  984. #endif /* _ASM_IA64_SN_XPC_H */