Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 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 | * |
Olivier Deprez | 157378f | 2022-04-04 15:47:50 +0200 | [diff] [blame^] | 6 | * (C) Copyright 2020 Hewlett Packard Enterprise Development LP |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 7 | * Copyright (c) 2004-2008 Silicon Graphics, Inc. All Rights Reserved. |
| 8 | */ |
| 9 | |
| 10 | /* |
| 11 | * Cross Partition Communication (XPC) partition support. |
| 12 | * |
| 13 | * This is the part of XPC that detects the presence/absence of |
| 14 | * other partitions. It provides a heartbeat and monitors the |
| 15 | * heartbeats of other partitions. |
| 16 | * |
| 17 | */ |
| 18 | |
| 19 | #include <linux/device.h> |
| 20 | #include <linux/hardirq.h> |
| 21 | #include <linux/slab.h> |
| 22 | #include "xpc.h" |
| 23 | #include <asm/uv/uv_hub.h> |
| 24 | |
| 25 | /* XPC is exiting flag */ |
| 26 | int xpc_exiting; |
| 27 | |
| 28 | /* this partition's reserved page pointers */ |
| 29 | struct xpc_rsvd_page *xpc_rsvd_page; |
| 30 | static unsigned long *xpc_part_nasids; |
| 31 | unsigned long *xpc_mach_nasids; |
| 32 | |
| 33 | static int xpc_nasid_mask_nbytes; /* #of bytes in nasid mask */ |
| 34 | int xpc_nasid_mask_nlongs; /* #of longs in nasid mask */ |
| 35 | |
| 36 | struct xpc_partition *xpc_partitions; |
| 37 | |
| 38 | /* |
| 39 | * Guarantee that the kmalloc'd memory is cacheline aligned. |
| 40 | */ |
| 41 | void * |
| 42 | xpc_kmalloc_cacheline_aligned(size_t size, gfp_t flags, void **base) |
| 43 | { |
| 44 | /* see if kmalloc will give us cachline aligned memory by default */ |
| 45 | *base = kmalloc(size, flags); |
| 46 | if (*base == NULL) |
| 47 | return NULL; |
| 48 | |
| 49 | if ((u64)*base == L1_CACHE_ALIGN((u64)*base)) |
| 50 | return *base; |
| 51 | |
| 52 | kfree(*base); |
| 53 | |
| 54 | /* nope, we'll have to do it ourselves */ |
| 55 | *base = kmalloc(size + L1_CACHE_BYTES, flags); |
| 56 | if (*base == NULL) |
| 57 | return NULL; |
| 58 | |
| 59 | return (void *)L1_CACHE_ALIGN((u64)*base); |
| 60 | } |
| 61 | |
| 62 | /* |
| 63 | * Given a nasid, get the physical address of the partition's reserved page |
| 64 | * for that nasid. This function returns 0 on any error. |
| 65 | */ |
| 66 | static unsigned long |
| 67 | xpc_get_rsvd_page_pa(int nasid) |
| 68 | { |
| 69 | enum xp_retval ret; |
| 70 | u64 cookie = 0; |
| 71 | unsigned long rp_pa = nasid; /* seed with nasid */ |
| 72 | size_t len = 0; |
| 73 | size_t buf_len = 0; |
David Brazdil | 0f672f6 | 2019-12-10 10:32:29 +0000 | [diff] [blame] | 74 | void *buf = NULL; |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 75 | void *buf_base = NULL; |
| 76 | enum xp_retval (*get_partition_rsvd_page_pa) |
| 77 | (void *, u64 *, unsigned long *, size_t *) = |
| 78 | xpc_arch_ops.get_partition_rsvd_page_pa; |
| 79 | |
| 80 | while (1) { |
| 81 | |
| 82 | /* !!! rp_pa will need to be _gpa on UV. |
| 83 | * ??? So do we save it into the architecture specific parts |
| 84 | * ??? of the xpc_partition structure? Do we rename this |
| 85 | * ??? function or have two versions? Rename rp_pa for UV to |
| 86 | * ??? rp_gpa? |
| 87 | */ |
| 88 | ret = get_partition_rsvd_page_pa(buf, &cookie, &rp_pa, &len); |
| 89 | |
| 90 | dev_dbg(xpc_part, "SAL returned with ret=%d, cookie=0x%016lx, " |
| 91 | "address=0x%016lx, len=0x%016lx\n", ret, |
| 92 | (unsigned long)cookie, rp_pa, len); |
| 93 | |
| 94 | if (ret != xpNeedMoreInfo) |
| 95 | break; |
| 96 | |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 97 | if (len > buf_len) { |
David Brazdil | 0f672f6 | 2019-12-10 10:32:29 +0000 | [diff] [blame] | 98 | kfree(buf_base); |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 99 | buf_len = L1_CACHE_ALIGN(len); |
| 100 | buf = xpc_kmalloc_cacheline_aligned(buf_len, GFP_KERNEL, |
| 101 | &buf_base); |
| 102 | if (buf_base == NULL) { |
| 103 | dev_err(xpc_part, "unable to kmalloc " |
| 104 | "len=0x%016lx\n", buf_len); |
| 105 | ret = xpNoMemory; |
| 106 | break; |
| 107 | } |
| 108 | } |
| 109 | |
| 110 | ret = xp_remote_memcpy(xp_pa(buf), rp_pa, len); |
| 111 | if (ret != xpSuccess) { |
| 112 | dev_dbg(xpc_part, "xp_remote_memcpy failed %d\n", ret); |
| 113 | break; |
| 114 | } |
| 115 | } |
| 116 | |
| 117 | kfree(buf_base); |
| 118 | |
| 119 | if (ret != xpSuccess) |
| 120 | rp_pa = 0; |
| 121 | |
| 122 | dev_dbg(xpc_part, "reserved page at phys address 0x%016lx\n", rp_pa); |
| 123 | return rp_pa; |
| 124 | } |
| 125 | |
| 126 | /* |
| 127 | * Fill the partition reserved page with the information needed by |
| 128 | * other partitions to discover we are alive and establish initial |
| 129 | * communications. |
| 130 | */ |
| 131 | int |
| 132 | xpc_setup_rsvd_page(void) |
| 133 | { |
| 134 | int ret; |
| 135 | struct xpc_rsvd_page *rp; |
| 136 | unsigned long rp_pa; |
| 137 | unsigned long new_ts_jiffies; |
| 138 | |
| 139 | /* get the local reserved page's address */ |
| 140 | |
| 141 | preempt_disable(); |
| 142 | rp_pa = xpc_get_rsvd_page_pa(xp_cpu_to_nasid(smp_processor_id())); |
| 143 | preempt_enable(); |
| 144 | if (rp_pa == 0) { |
| 145 | dev_err(xpc_part, "SAL failed to locate the reserved page\n"); |
| 146 | return -ESRCH; |
| 147 | } |
| 148 | rp = (struct xpc_rsvd_page *)__va(xp_socket_pa(rp_pa)); |
| 149 | |
| 150 | if (rp->SAL_version < 3) { |
| 151 | /* SAL_versions < 3 had a SAL_partid defined as a u8 */ |
| 152 | rp->SAL_partid &= 0xff; |
| 153 | } |
| 154 | BUG_ON(rp->SAL_partid != xp_partition_id); |
| 155 | |
| 156 | if (rp->SAL_partid < 0 || rp->SAL_partid >= xp_max_npartitions) { |
| 157 | dev_err(xpc_part, "the reserved page's partid of %d is outside " |
| 158 | "supported range (< 0 || >= %d)\n", rp->SAL_partid, |
| 159 | xp_max_npartitions); |
| 160 | return -EINVAL; |
| 161 | } |
| 162 | |
| 163 | rp->version = XPC_RP_VERSION; |
| 164 | rp->max_npartitions = xp_max_npartitions; |
| 165 | |
| 166 | /* establish the actual sizes of the nasid masks */ |
| 167 | if (rp->SAL_version == 1) { |
| 168 | /* SAL_version 1 didn't set the nasids_size field */ |
| 169 | rp->SAL_nasids_size = 128; |
| 170 | } |
| 171 | xpc_nasid_mask_nbytes = rp->SAL_nasids_size; |
| 172 | xpc_nasid_mask_nlongs = BITS_TO_LONGS(rp->SAL_nasids_size * |
| 173 | BITS_PER_BYTE); |
| 174 | |
| 175 | /* setup the pointers to the various items in the reserved page */ |
| 176 | xpc_part_nasids = XPC_RP_PART_NASIDS(rp); |
| 177 | xpc_mach_nasids = XPC_RP_MACH_NASIDS(rp); |
| 178 | |
| 179 | ret = xpc_arch_ops.setup_rsvd_page(rp); |
| 180 | if (ret != 0) |
| 181 | return ret; |
| 182 | |
| 183 | /* |
| 184 | * Set timestamp of when reserved page was setup by XPC. |
| 185 | * This signifies to the remote partition that our reserved |
| 186 | * page is initialized. |
| 187 | */ |
| 188 | new_ts_jiffies = jiffies; |
| 189 | if (new_ts_jiffies == 0 || new_ts_jiffies == rp->ts_jiffies) |
| 190 | new_ts_jiffies++; |
| 191 | rp->ts_jiffies = new_ts_jiffies; |
| 192 | |
| 193 | xpc_rsvd_page = rp; |
| 194 | return 0; |
| 195 | } |
| 196 | |
| 197 | void |
| 198 | xpc_teardown_rsvd_page(void) |
| 199 | { |
| 200 | /* a zero timestamp indicates our rsvd page is not initialized */ |
| 201 | xpc_rsvd_page->ts_jiffies = 0; |
| 202 | } |
| 203 | |
| 204 | /* |
| 205 | * Get a copy of a portion of the remote partition's rsvd page. |
| 206 | * |
| 207 | * remote_rp points to a buffer that is cacheline aligned for BTE copies and |
| 208 | * is large enough to contain a copy of their reserved page header and |
| 209 | * part_nasids mask. |
| 210 | */ |
| 211 | enum xp_retval |
| 212 | xpc_get_remote_rp(int nasid, unsigned long *discovered_nasids, |
| 213 | struct xpc_rsvd_page *remote_rp, unsigned long *remote_rp_pa) |
| 214 | { |
| 215 | int l; |
| 216 | enum xp_retval ret; |
| 217 | |
| 218 | /* get the reserved page's physical address */ |
| 219 | |
| 220 | *remote_rp_pa = xpc_get_rsvd_page_pa(nasid); |
| 221 | if (*remote_rp_pa == 0) |
| 222 | return xpNoRsvdPageAddr; |
| 223 | |
| 224 | /* pull over the reserved page header and part_nasids mask */ |
| 225 | ret = xp_remote_memcpy(xp_pa(remote_rp), *remote_rp_pa, |
| 226 | XPC_RP_HEADER_SIZE + xpc_nasid_mask_nbytes); |
| 227 | if (ret != xpSuccess) |
| 228 | return ret; |
| 229 | |
| 230 | if (discovered_nasids != NULL) { |
| 231 | unsigned long *remote_part_nasids = |
| 232 | XPC_RP_PART_NASIDS(remote_rp); |
| 233 | |
| 234 | for (l = 0; l < xpc_nasid_mask_nlongs; l++) |
| 235 | discovered_nasids[l] |= remote_part_nasids[l]; |
| 236 | } |
| 237 | |
| 238 | /* zero timestamp indicates the reserved page has not been setup */ |
| 239 | if (remote_rp->ts_jiffies == 0) |
| 240 | return xpRsvdPageNotSet; |
| 241 | |
| 242 | if (XPC_VERSION_MAJOR(remote_rp->version) != |
| 243 | XPC_VERSION_MAJOR(XPC_RP_VERSION)) { |
| 244 | return xpBadVersion; |
| 245 | } |
| 246 | |
| 247 | /* check that both remote and local partids are valid for each side */ |
| 248 | if (remote_rp->SAL_partid < 0 || |
| 249 | remote_rp->SAL_partid >= xp_max_npartitions || |
| 250 | remote_rp->max_npartitions <= xp_partition_id) { |
| 251 | return xpInvalidPartid; |
| 252 | } |
| 253 | |
| 254 | if (remote_rp->SAL_partid == xp_partition_id) |
| 255 | return xpLocalPartid; |
| 256 | |
| 257 | return xpSuccess; |
| 258 | } |
| 259 | |
| 260 | /* |
| 261 | * See if the other side has responded to a partition deactivate request |
| 262 | * from us. Though we requested the remote partition to deactivate with regard |
| 263 | * to us, we really only need to wait for the other side to disengage from us. |
| 264 | */ |
| 265 | int |
| 266 | xpc_partition_disengaged(struct xpc_partition *part) |
| 267 | { |
| 268 | short partid = XPC_PARTID(part); |
| 269 | int disengaged; |
| 270 | |
| 271 | disengaged = !xpc_arch_ops.partition_engaged(partid); |
| 272 | if (part->disengage_timeout) { |
| 273 | if (!disengaged) { |
| 274 | if (time_is_after_jiffies(part->disengage_timeout)) { |
| 275 | /* timelimit hasn't been reached yet */ |
| 276 | return 0; |
| 277 | } |
| 278 | |
| 279 | /* |
| 280 | * Other side hasn't responded to our deactivate |
| 281 | * request in a timely fashion, so assume it's dead. |
| 282 | */ |
| 283 | |
| 284 | dev_info(xpc_part, "deactivate request to remote " |
| 285 | "partition %d timed out\n", partid); |
| 286 | xpc_disengage_timedout = 1; |
| 287 | xpc_arch_ops.assume_partition_disengaged(partid); |
| 288 | disengaged = 1; |
| 289 | } |
| 290 | part->disengage_timeout = 0; |
| 291 | |
| 292 | /* cancel the timer function, provided it's not us */ |
| 293 | if (!in_interrupt()) |
| 294 | del_singleshot_timer_sync(&part->disengage_timer); |
| 295 | |
| 296 | DBUG_ON(part->act_state != XPC_P_AS_DEACTIVATING && |
| 297 | part->act_state != XPC_P_AS_INACTIVE); |
| 298 | if (part->act_state != XPC_P_AS_INACTIVE) |
| 299 | xpc_wakeup_channel_mgr(part); |
| 300 | |
| 301 | xpc_arch_ops.cancel_partition_deactivation_request(part); |
| 302 | } |
| 303 | return disengaged; |
| 304 | } |
| 305 | |
| 306 | /* |
| 307 | * Mark specified partition as active. |
| 308 | */ |
| 309 | enum xp_retval |
| 310 | xpc_mark_partition_active(struct xpc_partition *part) |
| 311 | { |
| 312 | unsigned long irq_flags; |
| 313 | enum xp_retval ret; |
| 314 | |
| 315 | dev_dbg(xpc_part, "setting partition %d to ACTIVE\n", XPC_PARTID(part)); |
| 316 | |
| 317 | spin_lock_irqsave(&part->act_lock, irq_flags); |
| 318 | if (part->act_state == XPC_P_AS_ACTIVATING) { |
| 319 | part->act_state = XPC_P_AS_ACTIVE; |
| 320 | ret = xpSuccess; |
| 321 | } else { |
| 322 | DBUG_ON(part->reason == xpSuccess); |
| 323 | ret = part->reason; |
| 324 | } |
| 325 | spin_unlock_irqrestore(&part->act_lock, irq_flags); |
| 326 | |
| 327 | return ret; |
| 328 | } |
| 329 | |
| 330 | /* |
| 331 | * Start the process of deactivating the specified partition. |
| 332 | */ |
| 333 | void |
| 334 | xpc_deactivate_partition(const int line, struct xpc_partition *part, |
| 335 | enum xp_retval reason) |
| 336 | { |
| 337 | unsigned long irq_flags; |
| 338 | |
| 339 | spin_lock_irqsave(&part->act_lock, irq_flags); |
| 340 | |
| 341 | if (part->act_state == XPC_P_AS_INACTIVE) { |
| 342 | XPC_SET_REASON(part, reason, line); |
| 343 | spin_unlock_irqrestore(&part->act_lock, irq_flags); |
| 344 | if (reason == xpReactivating) { |
| 345 | /* we interrupt ourselves to reactivate partition */ |
| 346 | xpc_arch_ops.request_partition_reactivation(part); |
| 347 | } |
| 348 | return; |
| 349 | } |
| 350 | if (part->act_state == XPC_P_AS_DEACTIVATING) { |
| 351 | if ((part->reason == xpUnloading && reason != xpUnloading) || |
| 352 | reason == xpReactivating) { |
| 353 | XPC_SET_REASON(part, reason, line); |
| 354 | } |
| 355 | spin_unlock_irqrestore(&part->act_lock, irq_flags); |
| 356 | return; |
| 357 | } |
| 358 | |
| 359 | part->act_state = XPC_P_AS_DEACTIVATING; |
| 360 | XPC_SET_REASON(part, reason, line); |
| 361 | |
| 362 | spin_unlock_irqrestore(&part->act_lock, irq_flags); |
| 363 | |
| 364 | /* ask remote partition to deactivate with regard to us */ |
| 365 | xpc_arch_ops.request_partition_deactivation(part); |
| 366 | |
| 367 | /* set a timelimit on the disengage phase of the deactivation request */ |
| 368 | part->disengage_timeout = jiffies + (xpc_disengage_timelimit * HZ); |
| 369 | part->disengage_timer.expires = part->disengage_timeout; |
| 370 | add_timer(&part->disengage_timer); |
| 371 | |
| 372 | dev_dbg(xpc_part, "bringing partition %d down, reason = %d\n", |
| 373 | XPC_PARTID(part), reason); |
| 374 | |
| 375 | xpc_partition_going_down(part, reason); |
| 376 | } |
| 377 | |
| 378 | /* |
| 379 | * Mark specified partition as inactive. |
| 380 | */ |
| 381 | void |
| 382 | xpc_mark_partition_inactive(struct xpc_partition *part) |
| 383 | { |
| 384 | unsigned long irq_flags; |
| 385 | |
| 386 | dev_dbg(xpc_part, "setting partition %d to INACTIVE\n", |
| 387 | XPC_PARTID(part)); |
| 388 | |
| 389 | spin_lock_irqsave(&part->act_lock, irq_flags); |
| 390 | part->act_state = XPC_P_AS_INACTIVE; |
| 391 | spin_unlock_irqrestore(&part->act_lock, irq_flags); |
| 392 | part->remote_rp_pa = 0; |
| 393 | } |
| 394 | |
| 395 | /* |
| 396 | * SAL has provided a partition and machine mask. The partition mask |
| 397 | * contains a bit for each even nasid in our partition. The machine |
| 398 | * mask contains a bit for each even nasid in the entire machine. |
| 399 | * |
| 400 | * Using those two bit arrays, we can determine which nasids are |
| 401 | * known in the machine. Each should also have a reserved page |
| 402 | * initialized if they are available for partitioning. |
| 403 | */ |
| 404 | void |
| 405 | xpc_discovery(void) |
| 406 | { |
| 407 | void *remote_rp_base; |
| 408 | struct xpc_rsvd_page *remote_rp; |
| 409 | unsigned long remote_rp_pa; |
| 410 | int region; |
| 411 | int region_size; |
| 412 | int max_regions; |
| 413 | int nasid; |
| 414 | unsigned long *discovered_nasids; |
| 415 | enum xp_retval ret; |
| 416 | |
| 417 | remote_rp = xpc_kmalloc_cacheline_aligned(XPC_RP_HEADER_SIZE + |
| 418 | xpc_nasid_mask_nbytes, |
| 419 | GFP_KERNEL, &remote_rp_base); |
| 420 | if (remote_rp == NULL) |
| 421 | return; |
| 422 | |
| 423 | discovered_nasids = kcalloc(xpc_nasid_mask_nlongs, sizeof(long), |
| 424 | GFP_KERNEL); |
| 425 | if (discovered_nasids == NULL) { |
| 426 | kfree(remote_rp_base); |
| 427 | return; |
| 428 | } |
| 429 | |
| 430 | /* |
| 431 | * The term 'region' in this context refers to the minimum number of |
| 432 | * nodes that can comprise an access protection grouping. The access |
| 433 | * protection is in regards to memory, IOI and IPI. |
| 434 | */ |
| 435 | region_size = xp_region_size; |
| 436 | |
Olivier Deprez | 157378f | 2022-04-04 15:47:50 +0200 | [diff] [blame^] | 437 | if (is_uv_system()) |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 438 | max_regions = 256; |
| 439 | else { |
| 440 | max_regions = 64; |
| 441 | |
| 442 | switch (region_size) { |
| 443 | case 128: |
| 444 | max_regions *= 2; |
Olivier Deprez | 157378f | 2022-04-04 15:47:50 +0200 | [diff] [blame^] | 445 | fallthrough; |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 446 | case 64: |
| 447 | max_regions *= 2; |
Olivier Deprez | 157378f | 2022-04-04 15:47:50 +0200 | [diff] [blame^] | 448 | fallthrough; |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 449 | case 32: |
| 450 | max_regions *= 2; |
| 451 | region_size = 16; |
Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame] | 452 | } |
| 453 | } |
| 454 | |
| 455 | for (region = 0; region < max_regions; region++) { |
| 456 | |
| 457 | if (xpc_exiting) |
| 458 | break; |
| 459 | |
| 460 | dev_dbg(xpc_part, "searching region %d\n", region); |
| 461 | |
| 462 | for (nasid = (region * region_size * 2); |
| 463 | nasid < ((region + 1) * region_size * 2); nasid += 2) { |
| 464 | |
| 465 | if (xpc_exiting) |
| 466 | break; |
| 467 | |
| 468 | dev_dbg(xpc_part, "checking nasid %d\n", nasid); |
| 469 | |
| 470 | if (test_bit(nasid / 2, xpc_part_nasids)) { |
| 471 | dev_dbg(xpc_part, "PROM indicates Nasid %d is " |
| 472 | "part of the local partition; skipping " |
| 473 | "region\n", nasid); |
| 474 | break; |
| 475 | } |
| 476 | |
| 477 | if (!(test_bit(nasid / 2, xpc_mach_nasids))) { |
| 478 | dev_dbg(xpc_part, "PROM indicates Nasid %d was " |
| 479 | "not on Numa-Link network at reset\n", |
| 480 | nasid); |
| 481 | continue; |
| 482 | } |
| 483 | |
| 484 | if (test_bit(nasid / 2, discovered_nasids)) { |
| 485 | dev_dbg(xpc_part, "Nasid %d is part of a " |
| 486 | "partition which was previously " |
| 487 | "discovered\n", nasid); |
| 488 | continue; |
| 489 | } |
| 490 | |
| 491 | /* pull over the rsvd page header & part_nasids mask */ |
| 492 | |
| 493 | ret = xpc_get_remote_rp(nasid, discovered_nasids, |
| 494 | remote_rp, &remote_rp_pa); |
| 495 | if (ret != xpSuccess) { |
| 496 | dev_dbg(xpc_part, "unable to get reserved page " |
| 497 | "from nasid %d, reason=%d\n", nasid, |
| 498 | ret); |
| 499 | |
| 500 | if (ret == xpLocalPartid) |
| 501 | break; |
| 502 | |
| 503 | continue; |
| 504 | } |
| 505 | |
| 506 | xpc_arch_ops.request_partition_activation(remote_rp, |
| 507 | remote_rp_pa, nasid); |
| 508 | } |
| 509 | } |
| 510 | |
| 511 | kfree(discovered_nasids); |
| 512 | kfree(remote_rp_base); |
| 513 | } |
| 514 | |
| 515 | /* |
| 516 | * Given a partid, get the nasids owned by that partition from the |
| 517 | * remote partition's reserved page. |
| 518 | */ |
| 519 | enum xp_retval |
| 520 | xpc_initiate_partid_to_nasids(short partid, void *nasid_mask) |
| 521 | { |
| 522 | struct xpc_partition *part; |
| 523 | unsigned long part_nasid_pa; |
| 524 | |
| 525 | part = &xpc_partitions[partid]; |
| 526 | if (part->remote_rp_pa == 0) |
| 527 | return xpPartitionDown; |
| 528 | |
| 529 | memset(nasid_mask, 0, xpc_nasid_mask_nbytes); |
| 530 | |
| 531 | part_nasid_pa = (unsigned long)XPC_RP_PART_NASIDS(part->remote_rp_pa); |
| 532 | |
| 533 | return xp_remote_memcpy(xp_pa(nasid_mask), part_nasid_pa, |
| 534 | xpc_nasid_mask_nbytes); |
| 535 | } |