1 // SPDX-License-Identifier: BSD-2-Clause
2 /*
3 * Copyright (c) 2020-2025, Linaro Limited.
4 * Copyright (c) 2019-2024, Arm Limited. All rights reserved.
5 */
6
7 #include <assert.h>
8 #include <ffa.h>
9 #include <initcall.h>
10 #include <io.h>
11 #include <kernel/dt.h>
12 #include <kernel/interrupt.h>
13 #include <kernel/notif.h>
14 #include <kernel/panic.h>
15 #include <kernel/secure_partition.h>
16 #include <kernel/spinlock.h>
17 #include <kernel/spmc_sp_handler.h>
18 #include <kernel/tee_misc.h>
19 #include <kernel/thread.h>
20 #include <kernel/thread_private.h>
21 #include <kernel/thread_spmc.h>
22 #include <kernel/virtualization.h>
23 #include <libfdt.h>
24 #include <mm/core_mmu.h>
25 #include <mm/mobj.h>
26 #include <optee_ffa.h>
27 #include <optee_msg.h>
28 #include <optee_rpc_cmd.h>
29 #include <sm/optee_smc.h>
30 #include <string.h>
31 #include <sys/queue.h>
32 #include <tee/entry_std.h>
33 #include <tee/uuid.h>
34 #include <tee_api_types.h>
35 #include <types_ext.h>
36 #include <util.h>
37
38 #if defined(CFG_CORE_SEL1_SPMC)
39 struct mem_op_state {
40 bool mem_share;
41 struct mobj_ffa *mf;
42 unsigned int page_count;
43 unsigned int region_count;
44 unsigned int current_page_idx;
45 };
46
47 struct mem_frag_state {
48 struct mem_op_state op;
49 tee_mm_entry_t *mm;
50 unsigned int frag_offset;
51 SLIST_ENTRY(mem_frag_state) link;
52 };
53 #endif
54
55 struct notif_vm_bitmap {
56 bool initialized;
57 int do_bottom_half_value;
58 uint64_t pending;
59 uint64_t bound;
60 };
61
62 STAILQ_HEAD(spmc_lsp_desc_head, spmc_lsp_desc);
63
64 static struct spmc_lsp_desc_head lsp_head __nex_data =
65 STAILQ_HEAD_INITIALIZER(lsp_head);
66
67 static unsigned int spmc_notif_lock __nex_data = SPINLOCK_UNLOCK;
68 static bool spmc_notif_is_ready __nex_bss;
69 static int notif_intid __nex_data __maybe_unused = -1;
70
71 /* Id used to look up the guest specific struct notif_vm_bitmap */
72 static unsigned int notif_vm_bitmap_id __nex_bss;
73 /* Notification state when ns-virtualization isn't enabled */
74 static struct notif_vm_bitmap default_notif_vm_bitmap;
75
76 /* Initialized in spmc_init() below */
77 static struct spmc_lsp_desc optee_core_lsp;
78 #ifdef CFG_CORE_SEL1_SPMC
79 /*
80 * Representation of the internal SPMC when OP-TEE is the S-EL1 SPMC.
81 * Initialized in spmc_init() below.
82 */
83 static struct spmc_lsp_desc optee_spmc_lsp;
84 /* FF-A ID of the SPMD. This is only valid when OP-TEE is the S-EL1 SPMC. */
85 static uint16_t spmd_id __nex_bss;
86
87 /*
88 * If struct ffa_rxtx::size is 0 RX/TX buffers are not mapped or initialized.
89 *
90 * struct ffa_rxtx::spin_lock protects the variables below from concurrent
91 * access this includes the use of content of struct ffa_rxtx::rx and
92 * @frag_state_head.
93 *
94 * struct ffa_rxtx::tx_buf_is_mine is true when we may write to struct
95 * ffa_rxtx::tx and false when it is owned by normal world.
96 *
97 * Note that we can't prevent normal world from updating the content of
98 * these buffers so we must always be careful when reading. while we hold
99 * the lock.
100 */
101
102 static struct ffa_rxtx my_rxtx __nex_bss;
103
is_nw_buf(struct ffa_rxtx * rxtx)104 static bool is_nw_buf(struct ffa_rxtx *rxtx)
105 {
106 return rxtx == &my_rxtx;
107 }
108
109 static SLIST_HEAD(mem_frag_state_head, mem_frag_state) frag_state_head =
110 SLIST_HEAD_INITIALIZER(&frag_state_head);
111
112 #else
113 /* FF-A ID of the external SPMC */
114 static uint16_t spmc_id __nex_bss;
115 static uint8_t __rx_buf[SMALL_PAGE_SIZE] __aligned(SMALL_PAGE_SIZE) __nex_bss;
116 static uint8_t __tx_buf[SMALL_PAGE_SIZE] __aligned(SMALL_PAGE_SIZE) __nex_bss;
117 static struct ffa_rxtx my_rxtx __nex_data = {
118 .rx = __rx_buf,
119 .tx = __tx_buf,
120 .size = sizeof(__rx_buf),
121 };
122 #endif
123
spmc_is_reserved_id(uint16_t id)124 bool spmc_is_reserved_id(uint16_t id)
125 {
126 #ifdef CFG_CORE_SEL1_SPMC
127 return id == spmd_id;
128 #else
129 return id == spmc_id;
130 #endif
131 }
132
spmc_find_lsp_by_sp_id(uint16_t sp_id)133 struct spmc_lsp_desc *spmc_find_lsp_by_sp_id(uint16_t sp_id)
134 {
135 struct spmc_lsp_desc *desc = NULL;
136
137 STAILQ_FOREACH(desc, &lsp_head, link)
138 if (desc->sp_id == sp_id)
139 return desc;
140
141 return NULL;
142 }
143
swap_src_dst(uint32_t src_dst)144 static uint32_t swap_src_dst(uint32_t src_dst)
145 {
146 return (src_dst >> 16) | (src_dst << 16);
147 }
148
get_sender_id(uint32_t src_dst)149 static uint16_t get_sender_id(uint32_t src_dst)
150 {
151 return src_dst >> 16;
152 }
153
spmc_set_args(struct thread_smc_1_2_regs * args,uint32_t fid,uint32_t src_dst,uint32_t w2,uint32_t w3,uint32_t w4,uint32_t w5)154 void spmc_set_args(struct thread_smc_1_2_regs *args, uint32_t fid,
155 uint32_t src_dst, uint32_t w2, uint32_t w3, uint32_t w4,
156 uint32_t w5)
157 {
158 *args = (struct thread_smc_1_2_regs){
159 .a0 = fid,
160 .a1 = src_dst,
161 .a2 = w2,
162 .a3 = w3,
163 .a4 = w4,
164 .a5 = w5,
165 };
166 }
167
set_simple_ret_val(struct thread_smc_1_2_regs * args,int ffa_ret)168 static void set_simple_ret_val(struct thread_smc_1_2_regs *args, int ffa_ret)
169 {
170 if (ffa_ret)
171 spmc_set_args(args, FFA_ERROR, 0, ffa_ret, 0, 0, 0);
172 else
173 spmc_set_args(args, FFA_SUCCESS_32, 0, 0, 0, 0, 0);
174 }
175
spmc_exchange_version(uint32_t vers,struct ffa_rxtx * rxtx)176 uint32_t spmc_exchange_version(uint32_t vers, struct ffa_rxtx *rxtx)
177 {
178 uint32_t major_vers = FFA_GET_MAJOR_VERSION(vers);
179 uint32_t minor_vers = FFA_GET_MINOR_VERSION(vers);
180 uint32_t my_vers = FFA_VERSION_1_2;
181 uint32_t my_major_vers = 0;
182 uint32_t my_minor_vers = 0;
183
184 my_major_vers = FFA_GET_MAJOR_VERSION(my_vers);
185 my_minor_vers = FFA_GET_MINOR_VERSION(my_vers);
186
187 /*
188 * No locking, if the caller does concurrent calls to this it's
189 * only making a mess for itself. We must be able to renegotiate
190 * the FF-A version in order to support differing versions between
191 * the loader and the driver.
192 *
193 * Callers should use the version requested if we return a matching
194 * major version and a matching or larger minor version. The caller
195 * should downgrade to our minor version if our minor version is
196 * smaller. Regardless, always return our version as recommended by
197 * the specification.
198 */
199 if (major_vers == my_major_vers) {
200 if (minor_vers > my_minor_vers)
201 rxtx->ffa_vers = my_vers;
202 else
203 rxtx->ffa_vers = vers;
204 }
205
206 return my_vers;
207 }
208
is_ffa_success(uint32_t fid)209 static bool is_ffa_success(uint32_t fid)
210 {
211 #ifdef ARM64
212 if (fid == FFA_SUCCESS_64)
213 return true;
214 #endif
215 return fid == FFA_SUCCESS_32;
216 }
217
get_ffa_ret_code(const struct thread_smc_args * args)218 static int32_t get_ffa_ret_code(const struct thread_smc_args *args)
219 {
220 if (is_ffa_success(args->a0))
221 return FFA_OK;
222 if (args->a0 == FFA_ERROR && args->a2)
223 return args->a2;
224 return FFA_NOT_SUPPORTED;
225 }
226
ffa_simple_call(uint32_t fid,unsigned long a1,unsigned long a2,unsigned long a3,unsigned long a4)227 static int ffa_simple_call(uint32_t fid, unsigned long a1, unsigned long a2,
228 unsigned long a3, unsigned long a4)
229 {
230 struct thread_smc_args args = {
231 .a0 = fid,
232 .a1 = a1,
233 .a2 = a2,
234 .a3 = a3,
235 .a4 = a4,
236 };
237
238 thread_smccc(&args);
239
240 return get_ffa_ret_code(&args);
241 }
242
ffa_features(uint32_t id)243 static int __maybe_unused ffa_features(uint32_t id)
244 {
245 return ffa_simple_call(FFA_FEATURES, id, 0, 0, 0);
246 }
247
ffa_set_notification(uint16_t dst,uint16_t src,uint32_t flags,uint64_t bitmap)248 static int __maybe_unused ffa_set_notification(uint16_t dst, uint16_t src,
249 uint32_t flags, uint64_t bitmap)
250 {
251 return ffa_simple_call(FFA_NOTIFICATION_SET,
252 SHIFT_U32(src, 16) | dst, flags,
253 low32_from_64(bitmap), high32_from_64(bitmap));
254 }
255
256 #if defined(CFG_CORE_SEL1_SPMC)
handle_features(struct thread_smc_1_2_regs * args)257 static void handle_features(struct thread_smc_1_2_regs *args)
258 {
259 uint32_t ret_fid = FFA_ERROR;
260 uint32_t ret_w2 = FFA_NOT_SUPPORTED;
261
262 switch (args->a1) {
263 case FFA_FEATURE_SCHEDULE_RECV_INTR:
264 if (spmc_notif_is_ready) {
265 ret_fid = FFA_SUCCESS_32;
266 ret_w2 = notif_intid;
267 }
268 break;
269
270 #ifdef ARM64
271 case FFA_RXTX_MAP_64:
272 #endif
273 case FFA_RXTX_MAP_32:
274 ret_fid = FFA_SUCCESS_32;
275 ret_w2 = 0; /* 4kB Minimum buffer size and alignment boundary */
276 break;
277 #ifdef ARM64
278 case FFA_MEM_SHARE_64:
279 #endif
280 case FFA_MEM_SHARE_32:
281 ret_fid = FFA_SUCCESS_32;
282 /*
283 * Partition manager supports transmission of a memory
284 * transaction descriptor in a buffer dynamically allocated
285 * by the endpoint.
286 */
287 ret_w2 = BIT(0);
288 break;
289
290 case FFA_ERROR:
291 case FFA_VERSION:
292 case FFA_SUCCESS_32:
293 #ifdef ARM64
294 case FFA_SUCCESS_64:
295 #endif
296 case FFA_FEATURES:
297 case FFA_SPM_ID_GET:
298 case FFA_MEM_FRAG_TX:
299 case FFA_MEM_RECLAIM:
300 case FFA_MSG_SEND_DIRECT_REQ_64:
301 case FFA_MSG_SEND_DIRECT_REQ_32:
302 case FFA_INTERRUPT:
303 case FFA_PARTITION_INFO_GET:
304 case FFA_RXTX_UNMAP:
305 case FFA_RX_RELEASE:
306 case FFA_FEATURE_MANAGED_EXIT_INTR:
307 case FFA_NOTIFICATION_BITMAP_CREATE:
308 case FFA_NOTIFICATION_BITMAP_DESTROY:
309 case FFA_NOTIFICATION_BIND:
310 case FFA_NOTIFICATION_UNBIND:
311 case FFA_NOTIFICATION_SET:
312 case FFA_NOTIFICATION_GET:
313 case FFA_NOTIFICATION_INFO_GET_32:
314 #ifdef ARM64
315 case FFA_NOTIFICATION_INFO_GET_64:
316 #endif
317 ret_fid = FFA_SUCCESS_32;
318 ret_w2 = FFA_PARAM_MBZ;
319 break;
320 default:
321 break;
322 }
323
324 spmc_set_args(args, ret_fid, FFA_PARAM_MBZ, ret_w2, FFA_PARAM_MBZ,
325 FFA_PARAM_MBZ, FFA_PARAM_MBZ);
326 }
327
map_buf(paddr_t pa,unsigned int sz,void ** va_ret)328 static int map_buf(paddr_t pa, unsigned int sz, void **va_ret)
329 {
330 tee_mm_entry_t *mm = NULL;
331
332 if (!core_pbuf_is(CORE_MEM_NON_SEC, pa, sz))
333 return FFA_INVALID_PARAMETERS;
334
335 mm = tee_mm_alloc(&core_virt_shm_pool, sz);
336 if (!mm)
337 return FFA_NO_MEMORY;
338
339 if (core_mmu_map_contiguous_pages(tee_mm_get_smem(mm), pa,
340 sz / SMALL_PAGE_SIZE,
341 MEM_AREA_NSEC_SHM)) {
342 tee_mm_free(mm);
343 return FFA_INVALID_PARAMETERS;
344 }
345
346 *va_ret = (void *)tee_mm_get_smem(mm);
347 return 0;
348 }
349
spmc_handle_spm_id_get(struct thread_smc_1_2_regs * args)350 void spmc_handle_spm_id_get(struct thread_smc_1_2_regs *args)
351 {
352 spmc_set_args(args, FFA_SUCCESS_32, FFA_PARAM_MBZ, optee_spmc_lsp.sp_id,
353 FFA_PARAM_MBZ, FFA_PARAM_MBZ, FFA_PARAM_MBZ);
354 }
355
unmap_buf(void * va,size_t sz)356 static void unmap_buf(void *va, size_t sz)
357 {
358 tee_mm_entry_t *mm = tee_mm_find(&core_virt_shm_pool, (vaddr_t)va);
359
360 assert(mm);
361 core_mmu_unmap_pages(tee_mm_get_smem(mm), sz / SMALL_PAGE_SIZE);
362 tee_mm_free(mm);
363 }
364
spmc_handle_rxtx_map(struct thread_smc_1_2_regs * args,struct ffa_rxtx * rxtx)365 void spmc_handle_rxtx_map(struct thread_smc_1_2_regs *args,
366 struct ffa_rxtx *rxtx)
367 {
368 int rc = 0;
369 unsigned int sz = 0;
370 paddr_t rx_pa = 0;
371 paddr_t tx_pa = 0;
372 void *rx = NULL;
373 void *tx = NULL;
374
375 cpu_spin_lock(&rxtx->spinlock);
376
377 if (args->a3 & GENMASK_64(63, 6)) {
378 rc = FFA_INVALID_PARAMETERS;
379 goto out;
380 }
381
382 sz = args->a3 * SMALL_PAGE_SIZE;
383 if (!sz) {
384 rc = FFA_INVALID_PARAMETERS;
385 goto out;
386 }
387 /* TX/RX are swapped compared to the caller */
388 tx_pa = args->a2;
389 rx_pa = args->a1;
390
391 if (rxtx->size) {
392 rc = FFA_DENIED;
393 goto out;
394 }
395
396 /*
397 * If the buffer comes from a SP the address is virtual and already
398 * mapped.
399 */
400 if (is_nw_buf(rxtx)) {
401 if (IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
402 enum teecore_memtypes mt = MEM_AREA_NEX_NSEC_SHM;
403 bool tx_alloced = false;
404
405 /*
406 * With virtualization we establish this mapping in
407 * the nexus mapping which then is replicated to
408 * each partition.
409 *
410 * This means that this mapping must be done before
411 * any partition is created and then must not be
412 * changed.
413 */
414
415 /*
416 * core_mmu_add_mapping() may reuse previous
417 * mappings. First check if there's any mappings to
418 * reuse so we know how to clean up in case of
419 * failure.
420 */
421 tx = phys_to_virt(tx_pa, mt, sz);
422 rx = phys_to_virt(rx_pa, mt, sz);
423 if (!tx) {
424 tx = core_mmu_add_mapping(mt, tx_pa, sz);
425 if (!tx) {
426 rc = FFA_NO_MEMORY;
427 goto out;
428 }
429 tx_alloced = true;
430 }
431 if (!rx)
432 rx = core_mmu_add_mapping(mt, rx_pa, sz);
433
434 if (!rx) {
435 if (tx_alloced && tx)
436 core_mmu_remove_mapping(mt, tx, sz);
437 rc = FFA_NO_MEMORY;
438 goto out;
439 }
440 } else {
441 rc = map_buf(tx_pa, sz, &tx);
442 if (rc)
443 goto out;
444 rc = map_buf(rx_pa, sz, &rx);
445 if (rc) {
446 unmap_buf(tx, sz);
447 goto out;
448 }
449 }
450 rxtx->tx = tx;
451 rxtx->rx = rx;
452 } else {
453 if ((tx_pa & SMALL_PAGE_MASK) || (rx_pa & SMALL_PAGE_MASK)) {
454 rc = FFA_INVALID_PARAMETERS;
455 goto out;
456 }
457
458 if (!virt_to_phys((void *)tx_pa) ||
459 !virt_to_phys((void *)rx_pa)) {
460 rc = FFA_INVALID_PARAMETERS;
461 goto out;
462 }
463
464 rxtx->tx = (void *)tx_pa;
465 rxtx->rx = (void *)rx_pa;
466 }
467
468 rxtx->size = sz;
469 rxtx->tx_is_mine = true;
470 DMSG("Mapped tx %#"PRIxPA" size %#x @ %p", tx_pa, sz, tx);
471 DMSG("Mapped rx %#"PRIxPA" size %#x @ %p", rx_pa, sz, rx);
472 out:
473 cpu_spin_unlock(&rxtx->spinlock);
474 set_simple_ret_val(args, rc);
475 }
476
spmc_handle_rxtx_unmap(struct thread_smc_1_2_regs * args,struct ffa_rxtx * rxtx)477 void spmc_handle_rxtx_unmap(struct thread_smc_1_2_regs *args,
478 struct ffa_rxtx *rxtx)
479 {
480 int rc = FFA_INVALID_PARAMETERS;
481
482 cpu_spin_lock(&rxtx->spinlock);
483
484 if (!rxtx->size)
485 goto out;
486
487 /*
488 * We don't unmap the SP memory as the SP might still use it.
489 * We avoid to make changes to nexus mappings at this stage since
490 * there currently isn't a way to replicate those changes to all
491 * partitions.
492 */
493 if (is_nw_buf(rxtx) && !IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
494 unmap_buf(rxtx->rx, rxtx->size);
495 unmap_buf(rxtx->tx, rxtx->size);
496 }
497 rxtx->size = 0;
498 rxtx->rx = NULL;
499 rxtx->tx = NULL;
500 rc = 0;
501 out:
502 cpu_spin_unlock(&rxtx->spinlock);
503 set_simple_ret_val(args, rc);
504 }
505
spmc_handle_rx_release(struct thread_smc_1_2_regs * args,struct ffa_rxtx * rxtx)506 void spmc_handle_rx_release(struct thread_smc_1_2_regs *args,
507 struct ffa_rxtx *rxtx)
508 {
509 int rc = 0;
510
511 cpu_spin_lock(&rxtx->spinlock);
512 /* The senders RX is our TX */
513 if (!rxtx->size || rxtx->tx_is_mine) {
514 rc = FFA_DENIED;
515 } else {
516 rc = 0;
517 rxtx->tx_is_mine = true;
518 }
519 cpu_spin_unlock(&rxtx->spinlock);
520
521 set_simple_ret_val(args, rc);
522 }
523
is_nil_uuid(uint32_t w0,uint32_t w1,uint32_t w2,uint32_t w3)524 static bool is_nil_uuid(uint32_t w0, uint32_t w1, uint32_t w2, uint32_t w3)
525 {
526 return !w0 && !w1 && !w2 && !w3;
527 }
528
spmc_fill_partition_entry(uint32_t ffa_vers,void * buf,size_t blen,size_t idx,uint16_t endpoint_id,uint16_t execution_context,uint32_t part_props,const uint32_t uuid_words[4])529 TEE_Result spmc_fill_partition_entry(uint32_t ffa_vers, void *buf, size_t blen,
530 size_t idx, uint16_t endpoint_id,
531 uint16_t execution_context,
532 uint32_t part_props,
533 const uint32_t uuid_words[4])
534 {
535 struct ffa_partition_info_x *fpi = NULL;
536 size_t fpi_size = sizeof(*fpi);
537
538 if (ffa_vers >= FFA_VERSION_1_1)
539 fpi_size += FFA_UUID_SIZE;
540
541 if ((idx + 1) * fpi_size > blen)
542 return TEE_ERROR_OUT_OF_MEMORY;
543
544 fpi = (void *)((vaddr_t)buf + idx * fpi_size);
545 fpi->id = endpoint_id;
546 /* Number of execution contexts implemented by this partition */
547 fpi->execution_context = execution_context;
548
549 fpi->partition_properties = part_props;
550
551 /* In FF-A 1.0 only bits [2:0] are defined, let's mask others */
552 if (ffa_vers < FFA_VERSION_1_1)
553 fpi->partition_properties &= FFA_PART_PROP_DIRECT_REQ_RECV |
554 FFA_PART_PROP_DIRECT_REQ_SEND |
555 FFA_PART_PROP_INDIRECT_MSGS;
556
557 if (ffa_vers >= FFA_VERSION_1_1) {
558 if (uuid_words)
559 memcpy(fpi->uuid, uuid_words, FFA_UUID_SIZE);
560 else
561 memset(fpi->uuid, 0, FFA_UUID_SIZE);
562 }
563
564 return TEE_SUCCESS;
565 }
566
lsp_partition_info_get(uint32_t ffa_vers,void * buf,size_t buf_size,size_t * elem_count,const uint32_t uuid_words[4],bool count_only)567 static TEE_Result lsp_partition_info_get(uint32_t ffa_vers, void *buf,
568 size_t buf_size, size_t *elem_count,
569 const uint32_t uuid_words[4],
570 bool count_only)
571 {
572 struct spmc_lsp_desc *desc = NULL;
573 TEE_Result res = TEE_SUCCESS;
574 size_t c = *elem_count;
575
576 STAILQ_FOREACH(desc, &lsp_head, link) {
577 /*
578 * LSPs (OP-TEE SPMC) without an assigned UUID are not
579 * proper LSPs and shouldn't be reported here.
580 */
581 if (is_nil_uuid(desc->uuid_words[0], desc->uuid_words[1],
582 desc->uuid_words[2], desc->uuid_words[3]))
583 continue;
584
585 if (uuid_words && memcmp(uuid_words, desc->uuid_words,
586 sizeof(desc->uuid_words)))
587 continue;
588
589 if (!count_only && !res)
590 res = spmc_fill_partition_entry(ffa_vers, buf, buf_size,
591 c, desc->sp_id,
592 CFG_TEE_CORE_NB_CORE,
593 desc->properties,
594 desc->uuid_words);
595 c++;
596 }
597
598 *elem_count = c;
599
600 return res;
601 }
602
spmc_handle_partition_info_get(struct thread_smc_1_2_regs * args,struct ffa_rxtx * rxtx)603 void spmc_handle_partition_info_get(struct thread_smc_1_2_regs *args,
604 struct ffa_rxtx *rxtx)
605 {
606 TEE_Result res = TEE_SUCCESS;
607 uint32_t ret_fid = FFA_ERROR;
608 uint32_t fpi_size = 0;
609 uint32_t rc = 0;
610 bool count_only = args->a5 & FFA_PARTITION_INFO_GET_COUNT_FLAG;
611 uint32_t uuid_words[4] = { args->a1, args->a2, args->a3, args->a4, };
612 uint32_t *uuid = uuid_words;
613 size_t count = 0;
614
615 if (!count_only) {
616 cpu_spin_lock(&rxtx->spinlock);
617
618 if (!rxtx->size || !rxtx->tx_is_mine) {
619 rc = FFA_BUSY;
620 goto out;
621 }
622 }
623
624 if (is_nil_uuid(uuid[0], uuid[1], uuid[2], uuid[3]))
625 uuid = NULL;
626
627 if (lsp_partition_info_get(rxtx->ffa_vers, rxtx->tx, rxtx->size,
628 &count, uuid, count_only)) {
629 ret_fid = FFA_ERROR;
630 rc = FFA_INVALID_PARAMETERS;
631 goto out;
632 }
633 if (IS_ENABLED(CFG_SECURE_PARTITION)) {
634 res = sp_partition_info_get(rxtx->ffa_vers, rxtx->tx,
635 rxtx->size, uuid, &count,
636 count_only);
637 if (res != TEE_SUCCESS) {
638 ret_fid = FFA_ERROR;
639 rc = FFA_INVALID_PARAMETERS;
640 goto out;
641 }
642 }
643
644 rc = count;
645 ret_fid = FFA_SUCCESS_32;
646 out:
647 if (ret_fid == FFA_SUCCESS_32 && !count_only &&
648 rxtx->ffa_vers >= FFA_VERSION_1_1)
649 fpi_size = sizeof(struct ffa_partition_info_x) + FFA_UUID_SIZE;
650
651 spmc_set_args(args, ret_fid, FFA_PARAM_MBZ, rc, fpi_size,
652 FFA_PARAM_MBZ, FFA_PARAM_MBZ);
653 if (!count_only) {
654 rxtx->tx_is_mine = false;
655 cpu_spin_unlock(&rxtx->spinlock);
656 }
657 }
658
spmc_handle_run(struct thread_smc_1_2_regs * args)659 static void spmc_handle_run(struct thread_smc_1_2_regs *args)
660 {
661 uint16_t endpoint = FFA_TARGET_INFO_GET_SP_ID(args->a1);
662 uint16_t thread_id = FFA_TARGET_INFO_GET_VCPU_ID(args->a1);
663 uint32_t rc = FFA_INVALID_PARAMETERS;
664
665 /*
666 * OP-TEE core threads are only preemted using controlled exit so
667 * FFA_RUN mustn't be used to resume such threads.
668 *
669 * The OP-TEE SPMC is not preemted at all, it's an error to try to
670 * resume that ID.
671 */
672 if (spmc_find_lsp_by_sp_id(endpoint))
673 goto out;
674
675 /*
676 * The endpoint should be a S-EL0 SP, try to resume the SP from
677 * preempted into busy state.
678 */
679 rc = spmc_sp_resume_from_preempted(endpoint, thread_id);
680 out:
681 set_simple_ret_val(args, rc);
682 }
683 #endif /*CFG_CORE_SEL1_SPMC*/
684
get_notif_vm_bitmap(struct guest_partition * prtn,uint16_t vm_id)685 static struct notif_vm_bitmap *get_notif_vm_bitmap(struct guest_partition *prtn,
686 uint16_t vm_id)
687 {
688 if (IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
689 if (!prtn)
690 return NULL;
691 assert(vm_id == virt_get_guest_id(prtn));
692 return virt_get_guest_spec_data(prtn, notif_vm_bitmap_id);
693 }
694 if (vm_id)
695 return NULL;
696 return &default_notif_vm_bitmap;
697 }
698
spmc_enable_async_notif(uint32_t bottom_half_value,uint16_t vm_id)699 static uint32_t spmc_enable_async_notif(uint32_t bottom_half_value,
700 uint16_t vm_id)
701 {
702 struct guest_partition *prtn = NULL;
703 struct notif_vm_bitmap *nvb = NULL;
704 uint32_t old_itr_status = 0;
705 uint32_t res = 0;
706
707 if (!spmc_notif_is_ready) {
708 /*
709 * This should never happen, not if normal world respects the
710 * exchanged capabilities.
711 */
712 EMSG("Asynchronous notifications are not ready");
713 return TEE_ERROR_NOT_IMPLEMENTED;
714 }
715
716 if (bottom_half_value >= OPTEE_FFA_MAX_ASYNC_NOTIF_VALUE) {
717 EMSG("Invalid bottom half value %"PRIu32, bottom_half_value);
718 return TEE_ERROR_BAD_PARAMETERS;
719 }
720
721 prtn = virt_get_guest(vm_id);
722 nvb = get_notif_vm_bitmap(prtn, vm_id);
723 if (!nvb) {
724 res = TEE_ERROR_BAD_PARAMETERS;
725 goto out;
726 }
727
728 old_itr_status = cpu_spin_lock_xsave(&spmc_notif_lock);
729 nvb->do_bottom_half_value = bottom_half_value;
730 cpu_spin_unlock_xrestore(&spmc_notif_lock, old_itr_status);
731
732 notif_deliver_atomic_event(NOTIF_EVENT_STARTED, vm_id);
733 res = TEE_SUCCESS;
734 out:
735 virt_put_guest(prtn);
736 return res;
737 }
738
get_direct_resp_fid(uint32_t fid)739 static uint32_t get_direct_resp_fid(uint32_t fid)
740 {
741 assert(fid == FFA_MSG_SEND_DIRECT_REQ_64 ||
742 fid == FFA_MSG_SEND_DIRECT_REQ_32);
743
744 if (OPTEE_SMC_IS_64(fid))
745 return FFA_MSG_SEND_DIRECT_RESP_64;
746 return FFA_MSG_SEND_DIRECT_RESP_32;
747 }
748
handle_yielding_call(struct thread_smc_1_2_regs * args)749 static void handle_yielding_call(struct thread_smc_1_2_regs *args)
750 {
751 uint32_t direct_resp_fid = get_direct_resp_fid(args->a0);
752 TEE_Result res = TEE_SUCCESS;
753
754 thread_check_canaries();
755
756 #ifdef ARM64
757 /* Saving this for an eventual RPC */
758 thread_get_core_local()->direct_resp_fid = direct_resp_fid;
759 #endif
760
761 if (args->a3 == OPTEE_FFA_YIELDING_CALL_RESUME) {
762 /* Note connection to struct thread_rpc_arg::ret */
763 thread_resume_from_rpc(args->a7, args->a4, args->a5, args->a6,
764 0);
765 res = TEE_ERROR_BAD_PARAMETERS;
766 } else {
767 thread_alloc_and_run(args->a1, args->a3, args->a4, args->a5,
768 args->a6, args->a7);
769 res = TEE_ERROR_BUSY;
770 }
771 spmc_set_args(args, direct_resp_fid, swap_src_dst(args->a1),
772 0, res, 0, 0);
773 }
774
handle_unregister_shm(uint32_t a4,uint32_t a5)775 static uint32_t handle_unregister_shm(uint32_t a4, uint32_t a5)
776 {
777 uint64_t cookie = reg_pair_to_64(a5, a4);
778 uint32_t res = 0;
779
780 res = mobj_ffa_unregister_by_cookie(cookie);
781 switch (res) {
782 case TEE_SUCCESS:
783 case TEE_ERROR_ITEM_NOT_FOUND:
784 return 0;
785 case TEE_ERROR_BUSY:
786 EMSG("res %#"PRIx32, res);
787 return FFA_BUSY;
788 default:
789 EMSG("res %#"PRIx32, res);
790 return FFA_INVALID_PARAMETERS;
791 }
792 }
793
handle_blocking_call(struct thread_smc_1_2_regs * args)794 static void handle_blocking_call(struct thread_smc_1_2_regs *args)
795 {
796 uint32_t direct_resp_fid = get_direct_resp_fid(args->a0);
797 uint32_t sec_caps = 0;
798
799 switch (args->a3) {
800 case OPTEE_FFA_GET_API_VERSION:
801 spmc_set_args(args, direct_resp_fid, swap_src_dst(args->a1), 0,
802 OPTEE_FFA_VERSION_MAJOR, OPTEE_FFA_VERSION_MINOR,
803 0);
804 break;
805 case OPTEE_FFA_GET_OS_VERSION:
806 spmc_set_args(args, direct_resp_fid, swap_src_dst(args->a1), 0,
807 CFG_OPTEE_REVISION_MAJOR,
808 CFG_OPTEE_REVISION_MINOR,
809 TEE_IMPL_GIT_SHA1 >> 32);
810 break;
811 case OPTEE_FFA_EXCHANGE_CAPABILITIES:
812 sec_caps = OPTEE_FFA_SEC_CAP_ARG_OFFSET;
813 if (spmc_notif_is_ready)
814 sec_caps |= OPTEE_FFA_SEC_CAP_ASYNC_NOTIF;
815 if (IS_ENABLED(CFG_RPMB_ANNOUNCE_PROBE_CAP))
816 sec_caps |= OPTEE_FFA_SEC_CAP_RPMB_PROBE;
817 if (IS_ENABLED(CFG_CORE_DYN_PROTMEM))
818 sec_caps |= OPTEE_FFA_SEC_CAP_PROTMEM;
819 spmc_set_args(args, direct_resp_fid,
820 swap_src_dst(args->a1), 0, 0,
821 THREAD_RPC_MAX_NUM_PARAMS, sec_caps);
822 break;
823 case OPTEE_FFA_UNREGISTER_SHM:
824 spmc_set_args(args, direct_resp_fid, swap_src_dst(args->a1), 0,
825 handle_unregister_shm(args->a4, args->a5), 0, 0);
826 break;
827 case OPTEE_FFA_ENABLE_ASYNC_NOTIF:
828 spmc_set_args(args, direct_resp_fid,
829 swap_src_dst(args->a1), 0,
830 spmc_enable_async_notif(args->a4,
831 FFA_SRC(args->a1)),
832 0, 0);
833 break;
834 #ifdef CFG_CORE_DYN_PROTMEM
835 case OPTEE_FFA_RELEASE_PROTMEM:
836 spmc_set_args(args, direct_resp_fid, swap_src_dst(args->a1), 0,
837 handle_unregister_shm(args->a4, args->a5), 0, 0);
838 break;
839 #endif
840 default:
841 EMSG("Unhandled blocking service ID %#"PRIx32,
842 (uint32_t)args->a3);
843 spmc_set_args(args, direct_resp_fid, swap_src_dst(args->a1), 0,
844 TEE_ERROR_BAD_PARAMETERS, 0, 0);
845 }
846 }
847
handle_framework_direct_request(struct thread_smc_1_2_regs * args)848 static void handle_framework_direct_request(struct thread_smc_1_2_regs *args)
849 {
850 uint32_t direct_resp_fid = get_direct_resp_fid(args->a0);
851 uint32_t w0 = FFA_ERROR;
852 uint32_t w1 = FFA_PARAM_MBZ;
853 uint32_t w2 = FFA_NOT_SUPPORTED;
854 uint32_t w3 = FFA_PARAM_MBZ;
855
856 switch (args->a2 & FFA_MSG_TYPE_MASK) {
857 case FFA_MSG_SEND_VM_CREATED:
858 if (IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
859 uint16_t guest_id = args->a5;
860 TEE_Result res = virt_guest_created(guest_id);
861
862 w0 = direct_resp_fid;
863 w1 = swap_src_dst(args->a1);
864 w2 = FFA_MSG_FLAG_FRAMEWORK | FFA_MSG_RESP_VM_CREATED;
865 if (res == TEE_SUCCESS)
866 w3 = FFA_OK;
867 else if (res == TEE_ERROR_OUT_OF_MEMORY)
868 w3 = FFA_DENIED;
869 else
870 w3 = FFA_INVALID_PARAMETERS;
871 }
872 break;
873 case FFA_MSG_SEND_VM_DESTROYED:
874 if (IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
875 uint16_t guest_id = args->a5;
876 TEE_Result res = virt_guest_destroyed(guest_id);
877
878 w0 = direct_resp_fid;
879 w1 = swap_src_dst(args->a1);
880 w2 = FFA_MSG_FLAG_FRAMEWORK | FFA_MSG_RESP_VM_DESTROYED;
881 if (res == TEE_SUCCESS)
882 w3 = FFA_OK;
883 else
884 w3 = FFA_INVALID_PARAMETERS;
885 }
886 break;
887 case FFA_MSG_VERSION_REQ:
888 w0 = direct_resp_fid;
889 w1 = swap_src_dst(args->a1);
890 w2 = FFA_MSG_FLAG_FRAMEWORK | FFA_MSG_VERSION_RESP;
891 w3 = spmc_exchange_version(args->a3, &my_rxtx);
892 break;
893 default:
894 break;
895 }
896 spmc_set_args(args, w0, w1, w2, w3, FFA_PARAM_MBZ, FFA_PARAM_MBZ);
897 }
898
optee_lsp_handle_direct_request(struct thread_smc_1_2_regs * args)899 static void optee_lsp_handle_direct_request(struct thread_smc_1_2_regs *args)
900 {
901 if (args->a2 & FFA_MSG_FLAG_FRAMEWORK) {
902 handle_framework_direct_request(args);
903 return;
904 }
905
906 if (IS_ENABLED(CFG_NS_VIRTUALIZATION) &&
907 virt_set_guest(get_sender_id(args->a1))) {
908 spmc_set_args(args, get_direct_resp_fid(args->a0),
909 swap_src_dst(args->a1), 0,
910 TEE_ERROR_ITEM_NOT_FOUND, 0, 0);
911 return;
912 }
913
914 if (args->a3 & BIT32(OPTEE_FFA_YIELDING_CALL_BIT))
915 handle_yielding_call(args);
916 else
917 handle_blocking_call(args);
918
919 /*
920 * Note that handle_yielding_call() typically only returns if a
921 * thread cannot be allocated or found. virt_unset_guest() is also
922 * called from thread_state_suspend() and thread_state_free().
923 */
924 if (IS_ENABLED(CFG_NS_VIRTUALIZATION))
925 virt_unset_guest();
926 }
927
928 static void __maybe_unused
optee_spmc_lsp_handle_direct_request(struct thread_smc_1_2_regs * args)929 optee_spmc_lsp_handle_direct_request(struct thread_smc_1_2_regs *args)
930 {
931 if (args->a2 & FFA_MSG_FLAG_FRAMEWORK)
932 handle_framework_direct_request(args);
933 else
934 set_simple_ret_val(args, FFA_INVALID_PARAMETERS);
935 }
936
handle_direct_request(struct thread_smc_1_2_regs * args)937 static void handle_direct_request(struct thread_smc_1_2_regs *args)
938 {
939 struct spmc_lsp_desc *lsp = spmc_find_lsp_by_sp_id(FFA_DST(args->a1));
940
941 if (lsp) {
942 lsp->direct_req(args);
943 } else {
944 int rc = spmc_sp_start_thread(args);
945
946 /*
947 * spmc_sp_start_thread() returns here if the SPs aren't
948 * supported or if all threads are busy.
949 */
950 set_simple_ret_val(args, rc);
951 }
952 }
953
spmc_read_mem_transaction(uint32_t ffa_vers,void * buf,size_t blen,uint32_t tot_len,uint32_t frag_len,struct ffa_mem_transaction_x * trans)954 int spmc_read_mem_transaction(uint32_t ffa_vers, void *buf, size_t blen,
955 uint32_t tot_len, uint32_t frag_len,
956 struct ffa_mem_transaction_x *trans)
957 {
958 uint16_t mem_reg_attr = 0;
959 uint32_t flags = 0;
960 uint32_t count = 0;
961 uint32_t offs = 0;
962 uint32_t size = 0;
963 size_t n = 0;
964
965 if (!IS_ALIGNED_WITH_TYPE(buf, uint64_t) || frag_len > tot_len ||
966 frag_len > blen)
967 return FFA_INVALID_PARAMETERS;
968
969 if (ffa_vers >= FFA_VERSION_1_1) {
970 struct ffa_mem_transaction_1_1 *descr = NULL;
971
972 if (frag_len < sizeof(*descr))
973 return FFA_INVALID_PARAMETERS;
974
975 descr = buf;
976 trans->sender_id = READ_ONCE(descr->sender_id);
977 mem_reg_attr = READ_ONCE(descr->mem_reg_attr);
978 flags = READ_ONCE(descr->flags);
979 trans->global_handle = READ_ONCE(descr->global_handle);
980 trans->tag = READ_ONCE(descr->tag);
981
982 count = READ_ONCE(descr->mem_access_count);
983 size = READ_ONCE(descr->mem_access_size);
984 offs = READ_ONCE(descr->mem_access_offs);
985 } else {
986 struct ffa_mem_transaction_1_0 *descr = NULL;
987
988 if (frag_len < sizeof(*descr))
989 return FFA_INVALID_PARAMETERS;
990
991 descr = buf;
992 trans->sender_id = READ_ONCE(descr->sender_id);
993 mem_reg_attr = READ_ONCE(descr->mem_reg_attr);
994 flags = READ_ONCE(descr->flags);
995 trans->global_handle = READ_ONCE(descr->global_handle);
996 trans->tag = READ_ONCE(descr->tag);
997
998 count = READ_ONCE(descr->mem_access_count);
999 size = sizeof(descr->mem_access_array[0]);
1000 offs = offsetof(struct ffa_mem_transaction_1_0,
1001 mem_access_array);
1002 }
1003
1004 if (mem_reg_attr > UINT8_MAX || flags > UINT8_MAX ||
1005 size > UINT8_MAX || count > UINT8_MAX || offs > UINT16_MAX ||
1006 offs % 16)
1007 return FFA_INVALID_PARAMETERS;
1008
1009 /* Check that the endpoint memory access descriptor array fits */
1010 if (MUL_OVERFLOW(size, count, &n) || ADD_OVERFLOW(offs, n, &n) ||
1011 n > frag_len)
1012 return FFA_INVALID_PARAMETERS;
1013
1014 trans->mem_reg_attr = mem_reg_attr;
1015 trans->flags = flags;
1016 trans->mem_access_size = size;
1017 trans->mem_access_count = count;
1018 trans->mem_access_offs = offs;
1019 return 0;
1020 }
1021
1022 #if defined(CFG_CORE_SEL1_SPMC)
get_acc_perms(vaddr_t mem_acc_base,unsigned int mem_access_size,unsigned int mem_access_count,uint8_t * acc_perms,unsigned int * region_offs)1023 static int get_acc_perms(vaddr_t mem_acc_base, unsigned int mem_access_size,
1024 unsigned int mem_access_count, uint8_t *acc_perms,
1025 unsigned int *region_offs)
1026 {
1027 struct ffa_mem_access_common *mem_acc = NULL;
1028 struct ffa_mem_access_perm *descr = NULL;
1029 unsigned int n = 0;
1030
1031 for (n = 0; n < mem_access_count; n++) {
1032 mem_acc = (void *)(mem_acc_base + mem_access_size * n);
1033 descr = &mem_acc->access_perm;
1034 if (READ_ONCE(descr->endpoint_id) == optee_core_lsp.sp_id) {
1035 *acc_perms = READ_ONCE(descr->perm);
1036 *region_offs = READ_ONCE(mem_acc[n].region_offs);
1037 return 0;
1038 }
1039 }
1040
1041 return FFA_INVALID_PARAMETERS;
1042 }
1043
mem_op_init(bool mem_share,struct ffa_mem_transaction_x * mem_trans,void * buf,size_t blen,unsigned int * page_count,unsigned int * region_count,size_t * addr_range_offs)1044 static int mem_op_init(bool mem_share, struct ffa_mem_transaction_x *mem_trans,
1045 void *buf, size_t blen, unsigned int *page_count,
1046 unsigned int *region_count, size_t *addr_range_offs)
1047 {
1048 const uint8_t exp_mem_acc_perm = FFA_MEM_ACC_RW;
1049 struct ffa_mem_region *region_descr = NULL;
1050 unsigned int region_descr_offs = 0;
1051 uint16_t exp_mem_reg_attr = 0;
1052 uint8_t mem_acc_perm = 0;
1053 size_t n = 0;
1054
1055 if (mem_share)
1056 exp_mem_reg_attr = FFA_NORMAL_MEM_REG_ATTR;
1057 if (mem_trans->mem_reg_attr != exp_mem_reg_attr)
1058 return FFA_INVALID_PARAMETERS;
1059
1060 /* Check that the access permissions matches what's expected */
1061 if (get_acc_perms((vaddr_t)buf + mem_trans->mem_access_offs,
1062 mem_trans->mem_access_size,
1063 mem_trans->mem_access_count,
1064 &mem_acc_perm, ®ion_descr_offs) ||
1065 mem_acc_perm != exp_mem_acc_perm)
1066 return FFA_INVALID_PARAMETERS;
1067
1068 /* Check that the Composite memory region descriptor fits */
1069 if (ADD_OVERFLOW(region_descr_offs, sizeof(*region_descr), &n) ||
1070 n > blen)
1071 return FFA_INVALID_PARAMETERS;
1072
1073 if (!IS_ALIGNED_WITH_TYPE((vaddr_t)buf + region_descr_offs,
1074 struct ffa_mem_region))
1075 return FFA_INVALID_PARAMETERS;
1076
1077 region_descr = (struct ffa_mem_region *)((vaddr_t)buf +
1078 region_descr_offs);
1079 *page_count = READ_ONCE(region_descr->total_page_count);
1080 *region_count = READ_ONCE(region_descr->address_range_count);
1081 *addr_range_offs = n;
1082 return 0;
1083 }
1084
add_mem_op_helper(struct mem_op_state * s,void * buf,size_t flen)1085 static int add_mem_op_helper(struct mem_op_state *s, void *buf, size_t flen)
1086 {
1087 unsigned int region_count = flen / sizeof(struct ffa_address_range);
1088 struct ffa_address_range *arange = NULL;
1089 unsigned int n = 0;
1090
1091 if (region_count > s->region_count)
1092 region_count = s->region_count;
1093
1094 if (!IS_ALIGNED_WITH_TYPE(buf, struct ffa_address_range))
1095 return FFA_INVALID_PARAMETERS;
1096 arange = buf;
1097
1098 for (n = 0; n < region_count; n++) {
1099 unsigned int page_count = READ_ONCE(arange[n].page_count);
1100 uint64_t addr = READ_ONCE(arange[n].address);
1101
1102 if (mobj_ffa_add_pages_at(s->mf, &s->current_page_idx,
1103 addr, page_count))
1104 return FFA_INVALID_PARAMETERS;
1105 }
1106
1107 s->region_count -= region_count;
1108 if (s->region_count)
1109 return region_count * sizeof(*arange);
1110
1111 if (s->current_page_idx != s->page_count)
1112 return FFA_INVALID_PARAMETERS;
1113
1114 return 0;
1115 }
1116
add_mem_op_frag(struct mem_frag_state * s,void * buf,size_t flen)1117 static int add_mem_op_frag(struct mem_frag_state *s, void *buf, size_t flen)
1118 {
1119 int rc = 0;
1120
1121 rc = add_mem_op_helper(&s->op, buf, flen);
1122 if (rc >= 0) {
1123 if (!ADD_OVERFLOW(s->frag_offset, rc, &s->frag_offset)) {
1124 /* We're not at the end of the descriptor yet */
1125 if (s->op.region_count)
1126 return s->frag_offset;
1127
1128 /* We're done */
1129 rc = 0;
1130 } else {
1131 rc = FFA_INVALID_PARAMETERS;
1132 }
1133 }
1134
1135 SLIST_REMOVE(&frag_state_head, s, mem_frag_state, link);
1136 if (rc < 0) {
1137 mobj_ffa_sel1_spmc_delete(s->op.mf);
1138 } else {
1139 if (mobj_ffa_push_to_inactive(s->op.mf)) {
1140 rc = FFA_INVALID_PARAMETERS;
1141 mobj_ffa_sel1_spmc_delete(s->op.mf);
1142 }
1143 }
1144 free(s);
1145
1146 return rc;
1147 }
1148
is_sp_op(struct ffa_mem_transaction_x * mem_trans,void * buf)1149 static bool is_sp_op(struct ffa_mem_transaction_x *mem_trans, void *buf)
1150 {
1151 struct ffa_mem_access_common *mem_acc = NULL;
1152 struct ffa_mem_access_perm *perm = NULL;
1153
1154 if (!IS_ENABLED(CFG_SECURE_PARTITION))
1155 return false;
1156
1157 if (mem_trans->mem_access_count < 1)
1158 return false;
1159
1160 mem_acc = (void *)((vaddr_t)buf + mem_trans->mem_access_offs);
1161 perm = &mem_acc->access_perm;
1162
1163 /*
1164 * perm->endpoint_id is read here only to check if the endpoint is
1165 * OP-TEE. We do read it later on again, but there are some additional
1166 * checks there to make sure that the data is correct.
1167 */
1168 return READ_ONCE(perm->endpoint_id) != optee_core_lsp.sp_id;
1169 }
1170
add_mem_op(bool mem_share,struct ffa_mem_transaction_x * mem_trans,tee_mm_entry_t * mm,void * buf,size_t blen,size_t flen,uint64_t * global_handle)1171 static int add_mem_op(bool mem_share, struct ffa_mem_transaction_x *mem_trans,
1172 tee_mm_entry_t *mm, void *buf, size_t blen, size_t flen,
1173 uint64_t *global_handle)
1174 {
1175 int rc = 0;
1176 struct mem_op_state op = { .mem_share = mem_share, };
1177 size_t addr_range_offs = 0;
1178 uint64_t cookie = OPTEE_MSG_FMEM_INVALID_GLOBAL_ID;
1179 enum mobj_use_case use_case = MOBJ_USE_CASE_NS_SHM;
1180 size_t n = 0;
1181
1182 rc = mem_op_init(mem_share, mem_trans, buf, flen, &op.page_count,
1183 &op.region_count, &addr_range_offs);
1184 if (rc)
1185 return rc;
1186
1187 if (!op.page_count || !op.region_count)
1188 return FFA_INVALID_PARAMETERS;
1189
1190 if (MUL_OVERFLOW(op.region_count,
1191 sizeof(struct ffa_address_range), &n) ||
1192 ADD_OVERFLOW(n, addr_range_offs, &n) || n > blen)
1193 return FFA_INVALID_PARAMETERS;
1194
1195 if (mem_trans->global_handle)
1196 cookie = mem_trans->global_handle;
1197 if (!mem_share)
1198 use_case = mem_trans->tag;
1199 op.mf = mobj_ffa_sel1_spmc_new(cookie, op.page_count, use_case);
1200 if (!op.mf)
1201 return FFA_NO_MEMORY;
1202
1203 if (flen != blen) {
1204 struct mem_frag_state *s = calloc(1, sizeof(*s));
1205
1206 if (!s) {
1207 rc = FFA_NO_MEMORY;
1208 goto err;
1209 }
1210 s->op = op;
1211 s->mm = mm;
1212 s->frag_offset = addr_range_offs;
1213
1214 SLIST_INSERT_HEAD(&frag_state_head, s, link);
1215 rc = add_mem_op_frag(s, (char *)buf + addr_range_offs,
1216 flen - addr_range_offs);
1217
1218 if (rc >= 0)
1219 *global_handle = mobj_ffa_get_cookie(op.mf);
1220
1221 return rc;
1222 }
1223
1224 rc = add_mem_op_helper(&op, (char *)buf + addr_range_offs,
1225 flen - addr_range_offs);
1226 if (rc) {
1227 /*
1228 * Number of consumed bytes may be returned instead of 0 for
1229 * done.
1230 */
1231 rc = FFA_INVALID_PARAMETERS;
1232 goto err;
1233 }
1234
1235 if (mobj_ffa_push_to_inactive(op.mf)) {
1236 rc = FFA_INVALID_PARAMETERS;
1237 goto err;
1238 }
1239 *global_handle = mobj_ffa_get_cookie(op.mf);
1240
1241 return 0;
1242 err:
1243 mobj_ffa_sel1_spmc_delete(op.mf);
1244 return rc;
1245 }
1246
handle_mem_op_tmem(bool share_mem,paddr_t pbuf,size_t tot_len,size_t frag_len,unsigned int page_count,uint64_t * global_handle,struct ffa_rxtx * rxtx)1247 static int handle_mem_op_tmem(bool share_mem, paddr_t pbuf, size_t tot_len,
1248 size_t frag_len, unsigned int page_count,
1249 uint64_t *global_handle, struct ffa_rxtx *rxtx)
1250 {
1251 struct ffa_mem_transaction_x mem_trans = { };
1252 int rc = 0;
1253 size_t len = 0;
1254 void *buf = NULL;
1255 tee_mm_entry_t *mm = NULL;
1256 vaddr_t offs = pbuf & SMALL_PAGE_MASK;
1257
1258 if (MUL_OVERFLOW(page_count, SMALL_PAGE_SIZE, &len))
1259 return FFA_INVALID_PARAMETERS;
1260 if (!core_pbuf_is(CORE_MEM_NON_SEC, pbuf, len))
1261 return FFA_INVALID_PARAMETERS;
1262
1263 /*
1264 * Check that the length reported in flen is covered by len even
1265 * if the offset is taken into account.
1266 */
1267 if (len < frag_len || len - offs < frag_len)
1268 return FFA_INVALID_PARAMETERS;
1269
1270 mm = tee_mm_alloc(&core_virt_shm_pool, len);
1271 if (!mm)
1272 return FFA_NO_MEMORY;
1273
1274 if (core_mmu_map_contiguous_pages(tee_mm_get_smem(mm), pbuf,
1275 page_count, MEM_AREA_NSEC_SHM)) {
1276 rc = FFA_INVALID_PARAMETERS;
1277 goto out;
1278 }
1279 buf = (void *)(tee_mm_get_smem(mm) + offs);
1280
1281 cpu_spin_lock(&rxtx->spinlock);
1282 rc = spmc_read_mem_transaction(rxtx->ffa_vers, buf, len - offs,
1283 frag_len, tot_len, &mem_trans);
1284 if (rc)
1285 goto unlock;
1286
1287 if (is_sp_op(&mem_trans, buf)) {
1288 if (!share_mem) {
1289 rc = FFA_DENIED;
1290 goto unlock;
1291 }
1292 rc = spmc_sp_add_share(&mem_trans, buf, tot_len, frag_len,
1293 global_handle, NULL);
1294 goto unlock;
1295 }
1296
1297 if (IS_ENABLED(CFG_NS_VIRTUALIZATION) &&
1298 virt_set_guest(mem_trans.sender_id)) {
1299 rc = FFA_DENIED;
1300 goto unlock;
1301 }
1302
1303 rc = add_mem_op(share_mem, &mem_trans, mm, buf, tot_len, frag_len,
1304 global_handle);
1305
1306 if (IS_ENABLED(CFG_NS_VIRTUALIZATION))
1307 virt_unset_guest();
1308
1309 unlock:
1310 cpu_spin_unlock(&rxtx->spinlock);
1311 if (rc > 0)
1312 return rc;
1313
1314 core_mmu_unmap_pages(tee_mm_get_smem(mm), page_count);
1315 out:
1316 tee_mm_free(mm);
1317 return rc;
1318 }
1319
handle_mem_op_rxbuf(bool share_mem,size_t tot_len,size_t frag_len,uint64_t * global_handle,struct ffa_rxtx * rxtx)1320 static int handle_mem_op_rxbuf(bool share_mem, size_t tot_len, size_t frag_len,
1321 uint64_t *global_handle, struct ffa_rxtx *rxtx)
1322 {
1323 struct ffa_mem_transaction_x mem_trans = { };
1324 int rc = FFA_DENIED;
1325
1326 cpu_spin_lock(&rxtx->spinlock);
1327
1328 if (!rxtx->rx || frag_len > rxtx->size)
1329 goto out;
1330
1331 rc = spmc_read_mem_transaction(rxtx->ffa_vers, rxtx->rx, rxtx->size,
1332 frag_len, tot_len, &mem_trans);
1333 if (rc)
1334 goto out;
1335 if (is_sp_op(&mem_trans, rxtx->rx)) {
1336 if (!share_mem) {
1337 rc = FFA_DENIED;
1338 goto out;
1339 }
1340 rc = spmc_sp_add_share(&mem_trans, rxtx, tot_len, frag_len,
1341 global_handle, NULL);
1342 goto out;
1343 }
1344
1345 if (IS_ENABLED(CFG_NS_VIRTUALIZATION) &&
1346 virt_set_guest(mem_trans.sender_id))
1347 goto out;
1348
1349 rc = add_mem_op(share_mem, &mem_trans, NULL, rxtx->rx, tot_len,
1350 frag_len, global_handle);
1351
1352 if (IS_ENABLED(CFG_NS_VIRTUALIZATION))
1353 virt_unset_guest();
1354
1355 out:
1356 cpu_spin_unlock(&rxtx->spinlock);
1357
1358 return rc;
1359 }
1360
handle_mem_op(struct thread_smc_1_2_regs * args,struct ffa_rxtx * rxtx)1361 static void handle_mem_op(struct thread_smc_1_2_regs *args,
1362 struct ffa_rxtx *rxtx)
1363 {
1364 uint32_t tot_len = args->a1;
1365 uint32_t frag_len = args->a2;
1366 uint64_t addr = args->a3;
1367 uint32_t page_count = args->a4;
1368 uint32_t ret_w1 = 0;
1369 uint32_t ret_w2 = FFA_INVALID_PARAMETERS;
1370 uint32_t ret_w3 = 0;
1371 uint32_t ret_fid = FFA_ERROR;
1372 uint64_t global_handle = 0;
1373 bool share_mem = false;
1374 int rc = 0;
1375
1376 /* Check that the MBZs are indeed 0 */
1377 if (args->a5 || args->a6 || args->a7)
1378 goto out;
1379
1380 /* Check that fragment length doesn't exceed total length */
1381 if (frag_len > tot_len)
1382 goto out;
1383
1384 /* Check for 32-bit calling convention */
1385 if (!OPTEE_SMC_IS_64(args->a0))
1386 addr &= UINT32_MAX;
1387
1388 if (args->a0 == FFA_MEM_SHARE_32 || args->a0 == FFA_MEM_SHARE_64)
1389 share_mem = true;
1390 else
1391 share_mem = false;
1392
1393 if (!addr) {
1394 /*
1395 * The memory transaction descriptor is passed via our rx
1396 * buffer.
1397 */
1398 if (page_count)
1399 goto out;
1400 rc = handle_mem_op_rxbuf(share_mem, tot_len, frag_len,
1401 &global_handle, rxtx);
1402 } else {
1403 rc = handle_mem_op_tmem(share_mem, addr, tot_len, frag_len,
1404 page_count, &global_handle, rxtx);
1405 }
1406 if (rc < 0) {
1407 ret_w2 = rc;
1408 } else if (rc > 0) {
1409 ret_fid = FFA_MEM_FRAG_RX;
1410 ret_w3 = rc;
1411 reg_pair_from_64(global_handle, &ret_w2, &ret_w1);
1412 } else {
1413 ret_fid = FFA_SUCCESS_32;
1414 reg_pair_from_64(global_handle, &ret_w3, &ret_w2);
1415 }
1416 out:
1417 spmc_set_args(args, ret_fid, ret_w1, ret_w2, ret_w3, 0, 0);
1418 }
1419
get_frag_state(uint64_t global_handle)1420 static struct mem_frag_state *get_frag_state(uint64_t global_handle)
1421 {
1422 struct mem_frag_state *s = NULL;
1423
1424 SLIST_FOREACH(s, &frag_state_head, link)
1425 if (mobj_ffa_get_cookie(s->op.mf) == global_handle)
1426 return s;
1427
1428 return NULL;
1429 }
1430
handle_mem_frag_tx(struct thread_smc_1_2_regs * args,struct ffa_rxtx * rxtx)1431 static void handle_mem_frag_tx(struct thread_smc_1_2_regs *args,
1432 struct ffa_rxtx *rxtx)
1433 {
1434 uint64_t global_handle = reg_pair_to_64(args->a2, args->a1);
1435 size_t flen = args->a3;
1436 uint32_t endpoint_id = args->a4;
1437 struct mem_frag_state *s = NULL;
1438 tee_mm_entry_t *mm = NULL;
1439 unsigned int page_count = 0;
1440 void *buf = NULL;
1441 uint32_t ret_w1 = 0;
1442 uint32_t ret_w2 = 0;
1443 uint32_t ret_w3 = 0;
1444 uint32_t ret_fid = 0;
1445 int rc = 0;
1446
1447 if (IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
1448 uint16_t guest_id = endpoint_id >> 16;
1449
1450 if (!guest_id || virt_set_guest(guest_id)) {
1451 rc = FFA_INVALID_PARAMETERS;
1452 goto out_set_rc;
1453 }
1454 }
1455
1456 /*
1457 * Currently we're only doing this for fragmented FFA_MEM_SHARE_*
1458 * requests.
1459 */
1460
1461 cpu_spin_lock(&rxtx->spinlock);
1462
1463 s = get_frag_state(global_handle);
1464 if (!s) {
1465 rc = FFA_INVALID_PARAMETERS;
1466 goto out;
1467 }
1468
1469 mm = s->mm;
1470 if (mm) {
1471 if (flen > tee_mm_get_bytes(mm)) {
1472 rc = FFA_INVALID_PARAMETERS;
1473 goto out;
1474 }
1475 page_count = s->op.page_count;
1476 buf = (void *)tee_mm_get_smem(mm);
1477 } else {
1478 if (flen > rxtx->size) {
1479 rc = FFA_INVALID_PARAMETERS;
1480 goto out;
1481 }
1482 buf = rxtx->rx;
1483 }
1484
1485 rc = add_mem_op_frag(s, buf, flen);
1486 out:
1487 if (IS_ENABLED(CFG_NS_VIRTUALIZATION))
1488 virt_unset_guest();
1489
1490 cpu_spin_unlock(&rxtx->spinlock);
1491
1492 if (rc <= 0 && mm) {
1493 core_mmu_unmap_pages(tee_mm_get_smem(mm), page_count);
1494 tee_mm_free(mm);
1495 }
1496
1497 out_set_rc:
1498 if (rc < 0) {
1499 ret_fid = FFA_ERROR;
1500 ret_w2 = rc;
1501 } else if (rc > 0) {
1502 ret_fid = FFA_MEM_FRAG_RX;
1503 ret_w3 = rc;
1504 reg_pair_from_64(global_handle, &ret_w2, &ret_w1);
1505 } else {
1506 ret_fid = FFA_SUCCESS_32;
1507 reg_pair_from_64(global_handle, &ret_w3, &ret_w2);
1508 }
1509
1510 spmc_set_args(args, ret_fid, ret_w1, ret_w2, ret_w3, 0, 0);
1511 }
1512
handle_mem_reclaim(struct thread_smc_1_2_regs * args)1513 static void handle_mem_reclaim(struct thread_smc_1_2_regs *args)
1514 {
1515 int rc = FFA_INVALID_PARAMETERS;
1516 uint64_t cookie = 0;
1517
1518 if (args->a3 || args->a4 || args->a5 || args->a6 || args->a7)
1519 goto out;
1520
1521 cookie = reg_pair_to_64(args->a2, args->a1);
1522 if (IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
1523 uint16_t guest_id = 0;
1524
1525 if (cookie & FFA_MEMORY_HANDLE_HYPERVISOR_BIT) {
1526 guest_id = virt_find_guest_by_cookie(cookie);
1527 } else {
1528 guest_id = (cookie >> FFA_MEMORY_HANDLE_PRTN_SHIFT) &
1529 FFA_MEMORY_HANDLE_PRTN_MASK;
1530 }
1531 if (!guest_id)
1532 goto out;
1533 if (virt_set_guest(guest_id)) {
1534 if (!virt_reclaim_cookie_from_destroyed_guest(guest_id,
1535 cookie))
1536 rc = FFA_OK;
1537 goto out;
1538 }
1539 }
1540
1541 switch (mobj_ffa_sel1_spmc_reclaim(cookie)) {
1542 case TEE_SUCCESS:
1543 rc = FFA_OK;
1544 break;
1545 case TEE_ERROR_ITEM_NOT_FOUND:
1546 DMSG("cookie %#"PRIx64" not found", cookie);
1547 rc = FFA_INVALID_PARAMETERS;
1548 break;
1549 default:
1550 DMSG("cookie %#"PRIx64" busy", cookie);
1551 rc = FFA_DENIED;
1552 break;
1553 }
1554
1555 if (IS_ENABLED(CFG_NS_VIRTUALIZATION))
1556 virt_unset_guest();
1557
1558 out:
1559 set_simple_ret_val(args, rc);
1560 }
1561
handle_notification_bitmap_create(struct thread_smc_1_2_regs * args)1562 static void handle_notification_bitmap_create(struct thread_smc_1_2_regs *args)
1563 {
1564 uint32_t ret_val = FFA_INVALID_PARAMETERS;
1565 uint32_t ret_fid = FFA_ERROR;
1566 uint32_t old_itr_status = 0;
1567
1568 if (!FFA_TARGET_INFO_GET_SP_ID(args->a1) && !args->a3 && !args->a4 &&
1569 !args->a5 && !args->a6 && !args->a7) {
1570 struct guest_partition *prtn = NULL;
1571 struct notif_vm_bitmap *nvb = NULL;
1572 uint16_t vm_id = args->a1;
1573
1574 prtn = virt_get_guest(vm_id);
1575 nvb = get_notif_vm_bitmap(prtn, vm_id);
1576 if (!nvb) {
1577 ret_val = FFA_INVALID_PARAMETERS;
1578 goto out_virt_put;
1579 }
1580
1581 old_itr_status = cpu_spin_lock_xsave(&spmc_notif_lock);
1582
1583 if (nvb->initialized) {
1584 ret_val = FFA_DENIED;
1585 goto out_unlock;
1586 }
1587
1588 nvb->initialized = true;
1589 nvb->do_bottom_half_value = -1;
1590 ret_val = FFA_OK;
1591 ret_fid = FFA_SUCCESS_32;
1592 out_unlock:
1593 cpu_spin_unlock_xrestore(&spmc_notif_lock, old_itr_status);
1594 out_virt_put:
1595 virt_put_guest(prtn);
1596 }
1597
1598 spmc_set_args(args, ret_fid, 0, ret_val, 0, 0, 0);
1599 }
1600
handle_notification_bitmap_destroy(struct thread_smc_1_2_regs * args)1601 static void handle_notification_bitmap_destroy(struct thread_smc_1_2_regs *args)
1602 {
1603 uint32_t ret_val = FFA_INVALID_PARAMETERS;
1604 uint32_t ret_fid = FFA_ERROR;
1605 uint32_t old_itr_status = 0;
1606
1607 if (!FFA_TARGET_INFO_GET_SP_ID(args->a1) && !args->a3 && !args->a4 &&
1608 !args->a5 && !args->a6 && !args->a7) {
1609 struct guest_partition *prtn = NULL;
1610 struct notif_vm_bitmap *nvb = NULL;
1611 uint16_t vm_id = args->a1;
1612
1613 prtn = virt_get_guest(vm_id);
1614 nvb = get_notif_vm_bitmap(prtn, vm_id);
1615 if (!nvb) {
1616 ret_val = FFA_INVALID_PARAMETERS;
1617 goto out_virt_put;
1618 }
1619
1620 old_itr_status = cpu_spin_lock_xsave(&spmc_notif_lock);
1621
1622 if (nvb->pending || nvb->bound) {
1623 ret_val = FFA_DENIED;
1624 goto out_unlock;
1625 }
1626
1627 memset(nvb, 0, sizeof(*nvb));
1628 ret_val = FFA_OK;
1629 ret_fid = FFA_SUCCESS_32;
1630 out_unlock:
1631 cpu_spin_unlock_xrestore(&spmc_notif_lock, old_itr_status);
1632 out_virt_put:
1633 virt_put_guest(prtn);
1634 }
1635
1636 spmc_set_args(args, ret_fid, 0, ret_val, 0, 0, 0);
1637 }
1638
handle_notification_bind(struct thread_smc_1_2_regs * args)1639 static void handle_notification_bind(struct thread_smc_1_2_regs *args)
1640 {
1641 uint32_t ret_val = FFA_INVALID_PARAMETERS;
1642 struct guest_partition *prtn = NULL;
1643 struct notif_vm_bitmap *nvb = NULL;
1644 uint32_t ret_fid = FFA_ERROR;
1645 uint32_t old_itr_status = 0;
1646 uint64_t bitmap = 0;
1647 uint16_t vm_id = 0;
1648
1649 if (args->a5 || args->a6 || args->a7)
1650 goto out;
1651 if (args->a2) {
1652 /* We only deal with global notifications */
1653 ret_val = FFA_DENIED;
1654 goto out;
1655 }
1656
1657 /* The destination of the eventual notification */
1658 vm_id = FFA_DST(args->a1);
1659 bitmap = reg_pair_to_64(args->a4, args->a3);
1660
1661 prtn = virt_get_guest(vm_id);
1662 nvb = get_notif_vm_bitmap(prtn, vm_id);
1663 if (!nvb) {
1664 ret_val = FFA_INVALID_PARAMETERS;
1665 goto out_virt_put;
1666 }
1667
1668 old_itr_status = cpu_spin_lock_xsave(&spmc_notif_lock);
1669
1670 if ((bitmap & nvb->bound)) {
1671 ret_val = FFA_DENIED;
1672 } else {
1673 nvb->bound |= bitmap;
1674 ret_val = FFA_OK;
1675 ret_fid = FFA_SUCCESS_32;
1676 }
1677
1678 cpu_spin_unlock_xrestore(&spmc_notif_lock, old_itr_status);
1679 out_virt_put:
1680 virt_put_guest(prtn);
1681 out:
1682 spmc_set_args(args, ret_fid, 0, ret_val, 0, 0, 0);
1683 }
1684
handle_notification_unbind(struct thread_smc_1_2_regs * args)1685 static void handle_notification_unbind(struct thread_smc_1_2_regs *args)
1686 {
1687 uint32_t ret_val = FFA_INVALID_PARAMETERS;
1688 struct guest_partition *prtn = NULL;
1689 struct notif_vm_bitmap *nvb = NULL;
1690 uint32_t ret_fid = FFA_ERROR;
1691 uint32_t old_itr_status = 0;
1692 uint64_t bitmap = 0;
1693 uint16_t vm_id = 0;
1694
1695 if (args->a2 || args->a5 || args->a6 || args->a7)
1696 goto out;
1697
1698 /* The destination of the eventual notification */
1699 vm_id = FFA_DST(args->a1);
1700 bitmap = reg_pair_to_64(args->a4, args->a3);
1701
1702 prtn = virt_get_guest(vm_id);
1703 nvb = get_notif_vm_bitmap(prtn, vm_id);
1704 if (!nvb) {
1705 ret_val = FFA_INVALID_PARAMETERS;
1706 goto out_virt_put;
1707 }
1708
1709 old_itr_status = cpu_spin_lock_xsave(&spmc_notif_lock);
1710
1711 if (bitmap & nvb->pending) {
1712 ret_val = FFA_DENIED;
1713 } else {
1714 nvb->bound &= ~bitmap;
1715 ret_val = FFA_OK;
1716 ret_fid = FFA_SUCCESS_32;
1717 }
1718
1719 cpu_spin_unlock_xrestore(&spmc_notif_lock, old_itr_status);
1720 out_virt_put:
1721 virt_put_guest(prtn);
1722 out:
1723 spmc_set_args(args, ret_fid, 0, ret_val, 0, 0, 0);
1724 }
1725
handle_notification_get(struct thread_smc_1_2_regs * args)1726 static void handle_notification_get(struct thread_smc_1_2_regs *args)
1727 {
1728 uint32_t w2 = FFA_INVALID_PARAMETERS;
1729 struct guest_partition *prtn = NULL;
1730 struct notif_vm_bitmap *nvb = NULL;
1731 uint32_t ret_fid = FFA_ERROR;
1732 uint32_t old_itr_status = 0;
1733 uint16_t vm_id = 0;
1734 uint32_t w3 = 0;
1735
1736 if (args->a5 || args->a6 || args->a7)
1737 goto out;
1738 if (!(args->a2 & 0x1)) {
1739 ret_fid = FFA_SUCCESS_32;
1740 w2 = 0;
1741 goto out;
1742 }
1743 vm_id = FFA_DST(args->a1);
1744
1745 prtn = virt_get_guest(vm_id);
1746 nvb = get_notif_vm_bitmap(prtn, vm_id);
1747 if (!nvb)
1748 goto out_virt_put;
1749
1750 old_itr_status = cpu_spin_lock_xsave(&spmc_notif_lock);
1751
1752 reg_pair_from_64(nvb->pending, &w3, &w2);
1753 nvb->pending = 0;
1754 ret_fid = FFA_SUCCESS_32;
1755
1756 cpu_spin_unlock_xrestore(&spmc_notif_lock, old_itr_status);
1757 out_virt_put:
1758 virt_put_guest(prtn);
1759 out:
1760 spmc_set_args(args, ret_fid, 0, w2, w3, 0, 0);
1761 }
1762
1763 struct notif_info_get_state {
1764 struct thread_smc_1_2_regs *args;
1765 unsigned int ids_per_reg;
1766 unsigned int ids_count;
1767 unsigned int id_pos;
1768 unsigned int count;
1769 unsigned int max_list_count;
1770 unsigned int list_count;
1771 };
1772
add_id_in_regs(struct notif_info_get_state * state,uint16_t id)1773 static bool add_id_in_regs(struct notif_info_get_state *state,
1774 uint16_t id)
1775 {
1776 unsigned int reg_idx = state->id_pos / state->ids_per_reg + 3;
1777 unsigned int reg_shift = (state->id_pos % state->ids_per_reg) * 16;
1778
1779 if (reg_idx > 7)
1780 return false;
1781
1782 state->args->a[reg_idx] &= ~SHIFT_U64(0xffff, reg_shift);
1783 state->args->a[reg_idx] |= (unsigned long)id << reg_shift;
1784
1785 state->id_pos++;
1786 state->count++;
1787 return true;
1788 }
1789
add_id_count(struct notif_info_get_state * state)1790 static bool add_id_count(struct notif_info_get_state *state)
1791 {
1792 assert(state->list_count < state->max_list_count &&
1793 state->count >= 1 && state->count <= 4);
1794
1795 state->ids_count |= (state->count - 1) << (state->list_count * 2 + 12);
1796 state->list_count++;
1797 state->count = 0;
1798
1799 return state->list_count < state->max_list_count;
1800 }
1801
add_nvb_to_state(struct notif_info_get_state * state,uint16_t guest_id,struct notif_vm_bitmap * nvb)1802 static bool add_nvb_to_state(struct notif_info_get_state *state,
1803 uint16_t guest_id, struct notif_vm_bitmap *nvb)
1804 {
1805 if (!nvb->pending)
1806 return true;
1807 /*
1808 * Add only the guest_id, meaning a global notification for this
1809 * guest.
1810 *
1811 * If notifications for one or more specific vCPUs we'd add those
1812 * before calling add_id_count(), but that's not supported.
1813 */
1814 return add_id_in_regs(state, guest_id) && add_id_count(state);
1815 }
1816
handle_notification_info_get(struct thread_smc_1_2_regs * args)1817 static void handle_notification_info_get(struct thread_smc_1_2_regs *args)
1818 {
1819 struct notif_info_get_state state = { .args = args };
1820 uint32_t ffa_res = FFA_INVALID_PARAMETERS;
1821 struct guest_partition *prtn = NULL;
1822 struct notif_vm_bitmap *nvb = NULL;
1823 uint32_t more_pending_flag = 0;
1824 uint32_t itr_state = 0;
1825 uint16_t guest_id = 0;
1826
1827 if (args->a1 || args->a2 || args->a3 || args->a4 || args->a5 ||
1828 args->a6 || args->a7)
1829 goto err;
1830
1831 if (OPTEE_SMC_IS_64(args->a0)) {
1832 spmc_set_args(args, FFA_SUCCESS_64, 0, 0, 0, 0, 0);
1833 state.ids_per_reg = 4;
1834 state.max_list_count = 31;
1835 } else {
1836 spmc_set_args(args, FFA_SUCCESS_32, 0, 0, 0, 0, 0);
1837 state.ids_per_reg = 2;
1838 state.max_list_count = 15;
1839 }
1840
1841 while (true) {
1842 /*
1843 * With NS-Virtualization we need to go through all
1844 * partitions to collect the notification bitmaps, without
1845 * we just check the only notification bitmap we have.
1846 */
1847 if (IS_ENABLED(CFG_NS_VIRTUALIZATION)) {
1848 prtn = virt_next_guest(prtn);
1849 if (!prtn)
1850 break;
1851 guest_id = virt_get_guest_id(prtn);
1852 }
1853 nvb = get_notif_vm_bitmap(prtn, guest_id);
1854
1855 itr_state = cpu_spin_lock_xsave(&spmc_notif_lock);
1856 if (!add_nvb_to_state(&state, guest_id, nvb))
1857 more_pending_flag = BIT(0);
1858 cpu_spin_unlock_xrestore(&spmc_notif_lock, itr_state);
1859
1860 if (!IS_ENABLED(CFG_NS_VIRTUALIZATION) || more_pending_flag)
1861 break;
1862 }
1863 virt_put_guest(prtn);
1864
1865 if (!state.id_pos) {
1866 ffa_res = FFA_NO_DATA;
1867 goto err;
1868 }
1869 args->a2 = (state.list_count << FFA_NOTIF_INFO_GET_ID_COUNT_SHIFT) |
1870 (state.ids_count << FFA_NOTIF_INFO_GET_ID_LIST_SHIFT) |
1871 more_pending_flag;
1872 return;
1873 err:
1874 spmc_set_args(args, FFA_ERROR, 0, ffa_res, 0, 0, 0);
1875 }
1876
thread_spmc_set_async_notif_intid(int intid)1877 void thread_spmc_set_async_notif_intid(int intid)
1878 {
1879 assert(interrupt_can_raise_sgi(interrupt_get_main_chip()));
1880 notif_intid = intid;
1881 spmc_notif_is_ready = true;
1882 DMSG("Asynchronous notifications are ready");
1883 }
1884
notif_send_async(uint32_t value,uint16_t guest_id)1885 void notif_send_async(uint32_t value, uint16_t guest_id)
1886 {
1887 struct guest_partition *prtn = NULL;
1888 struct notif_vm_bitmap *nvb = NULL;
1889 uint32_t old_itr_status = 0;
1890
1891 prtn = virt_get_guest(guest_id);
1892 nvb = get_notif_vm_bitmap(prtn, guest_id);
1893
1894 if (nvb) {
1895 old_itr_status = cpu_spin_lock_xsave(&spmc_notif_lock);
1896 assert(value == NOTIF_VALUE_DO_BOTTOM_HALF &&
1897 spmc_notif_is_ready && nvb->do_bottom_half_value >= 0 &&
1898 notif_intid >= 0);
1899 nvb->pending |= BIT64(nvb->do_bottom_half_value);
1900 interrupt_raise_sgi(interrupt_get_main_chip(), notif_intid,
1901 ITR_CPU_MASK_TO_THIS_CPU);
1902 cpu_spin_unlock_xrestore(&spmc_notif_lock, old_itr_status);
1903 }
1904
1905 virt_put_guest(prtn);
1906 }
1907 #else
notif_send_async(uint32_t value,uint16_t guest_id)1908 void notif_send_async(uint32_t value, uint16_t guest_id)
1909 {
1910 struct guest_partition *prtn = NULL;
1911 struct notif_vm_bitmap *nvb = NULL;
1912 /* global notification, delay notification interrupt */
1913 uint32_t flags = BIT32(1);
1914 int res = 0;
1915
1916 prtn = virt_get_guest(guest_id);
1917 nvb = get_notif_vm_bitmap(prtn, guest_id);
1918
1919 if (nvb) {
1920 assert(value == NOTIF_VALUE_DO_BOTTOM_HALF &&
1921 spmc_notif_is_ready && nvb->do_bottom_half_value >= 0);
1922 res = ffa_set_notification(guest_id, optee_core_lsp.sp_id,
1923 flags,
1924 BIT64(nvb->do_bottom_half_value));
1925 if (res) {
1926 EMSG("notification set failed with error %d", res);
1927 panic();
1928 }
1929 }
1930
1931 virt_put_guest(prtn);
1932 }
1933 #endif
1934
1935 /* Only called from assembly */
1936 void thread_spmc_msg_recv(struct thread_smc_1_2_regs *args);
thread_spmc_msg_recv(struct thread_smc_1_2_regs * args)1937 void thread_spmc_msg_recv(struct thread_smc_1_2_regs *args)
1938 {
1939 assert((thread_get_exceptions() & THREAD_EXCP_ALL) == THREAD_EXCP_ALL);
1940 switch (args->a0) {
1941 #if defined(CFG_CORE_SEL1_SPMC)
1942 case FFA_FEATURES:
1943 handle_features(args);
1944 break;
1945 case FFA_SPM_ID_GET:
1946 spmc_handle_spm_id_get(args);
1947 break;
1948 #ifdef ARM64
1949 case FFA_RXTX_MAP_64:
1950 #endif
1951 case FFA_RXTX_MAP_32:
1952 spmc_handle_rxtx_map(args, &my_rxtx);
1953 break;
1954 case FFA_RXTX_UNMAP:
1955 spmc_handle_rxtx_unmap(args, &my_rxtx);
1956 break;
1957 case FFA_RX_RELEASE:
1958 spmc_handle_rx_release(args, &my_rxtx);
1959 break;
1960 case FFA_PARTITION_INFO_GET:
1961 spmc_handle_partition_info_get(args, &my_rxtx);
1962 break;
1963 case FFA_RUN:
1964 spmc_handle_run(args);
1965 break;
1966 #endif /*CFG_CORE_SEL1_SPMC*/
1967 case FFA_INTERRUPT:
1968 if (IS_ENABLED(CFG_CORE_SEL1_SPMC))
1969 spmc_set_args(args, FFA_NORMAL_WORLD_RESUME, 0, 0, 0,
1970 0, 0);
1971 else
1972 spmc_set_args(args, FFA_MSG_WAIT, 0, 0, 0, 0, 0);
1973 break;
1974 #ifdef ARM64
1975 case FFA_MSG_SEND_DIRECT_REQ_64:
1976 #endif
1977 case FFA_MSG_SEND_DIRECT_REQ_32:
1978 handle_direct_request(args);
1979 break;
1980 #if defined(CFG_CORE_SEL1_SPMC)
1981 #ifdef ARM64
1982 case FFA_MEM_SHARE_64:
1983 #endif
1984 case FFA_MEM_SHARE_32:
1985 #ifdef ARM64
1986 case FFA_MEM_LEND_64:
1987 #endif
1988 case FFA_MEM_LEND_32:
1989 handle_mem_op(args, &my_rxtx);
1990 break;
1991 case FFA_MEM_RECLAIM:
1992 if (!IS_ENABLED(CFG_SECURE_PARTITION) ||
1993 !ffa_mem_reclaim(args, NULL))
1994 handle_mem_reclaim(args);
1995 break;
1996 case FFA_MEM_FRAG_TX:
1997 handle_mem_frag_tx(args, &my_rxtx);
1998 break;
1999 case FFA_NOTIFICATION_BITMAP_CREATE:
2000 handle_notification_bitmap_create(args);
2001 break;
2002 case FFA_NOTIFICATION_BITMAP_DESTROY:
2003 handle_notification_bitmap_destroy(args);
2004 break;
2005 case FFA_NOTIFICATION_BIND:
2006 handle_notification_bind(args);
2007 break;
2008 case FFA_NOTIFICATION_UNBIND:
2009 handle_notification_unbind(args);
2010 break;
2011 case FFA_NOTIFICATION_GET:
2012 handle_notification_get(args);
2013 break;
2014 #ifdef ARM64
2015 case FFA_NOTIFICATION_INFO_GET_64:
2016 #endif
2017 case FFA_NOTIFICATION_INFO_GET_32:
2018 handle_notification_info_get(args);
2019 break;
2020 #endif /*CFG_CORE_SEL1_SPMC*/
2021 case FFA_ERROR:
2022 EMSG("Cannot handle FFA_ERROR(%d)", (int)args->a2);
2023 if (!IS_ENABLED(CFG_CORE_SEL1_SPMC)) {
2024 /*
2025 * The SPMC will return an FFA_ERROR back so better
2026 * panic() now than flooding the log.
2027 */
2028 panic("FFA_ERROR from SPMC is fatal");
2029 }
2030 spmc_set_args(args, FFA_ERROR, FFA_PARAM_MBZ, FFA_NOT_SUPPORTED,
2031 FFA_PARAM_MBZ, FFA_PARAM_MBZ, FFA_PARAM_MBZ);
2032 break;
2033 default:
2034 EMSG("Unhandled FFA function ID %#"PRIx32, (uint32_t)args->a0);
2035 set_simple_ret_val(args, FFA_NOT_SUPPORTED);
2036 }
2037 }
2038
yielding_call_with_arg(uint64_t cookie,uint32_t offset)2039 static TEE_Result yielding_call_with_arg(uint64_t cookie, uint32_t offset)
2040 {
2041 size_t sz_rpc = OPTEE_MSG_GET_ARG_SIZE(THREAD_RPC_MAX_NUM_PARAMS);
2042 struct thread_ctx *thr = threads + thread_get_id();
2043 TEE_Result res = TEE_ERROR_BAD_PARAMETERS;
2044 struct optee_msg_arg *arg = NULL;
2045 struct mobj *mobj = NULL;
2046 uint32_t num_params = 0;
2047 size_t sz = 0;
2048
2049 mobj = mobj_ffa_get_by_cookie(cookie, 0);
2050 if (!mobj) {
2051 EMSG("Can't find cookie %#"PRIx64, cookie);
2052 return TEE_ERROR_BAD_PARAMETERS;
2053 }
2054
2055 res = mobj_inc_map(mobj);
2056 if (res)
2057 goto out_put_mobj;
2058
2059 res = TEE_ERROR_BAD_PARAMETERS;
2060 arg = mobj_get_va(mobj, offset, sizeof(*arg));
2061 if (!arg)
2062 goto out_dec_map;
2063
2064 num_params = READ_ONCE(arg->num_params);
2065 if (num_params > OPTEE_MSG_MAX_NUM_PARAMS)
2066 goto out_dec_map;
2067
2068 sz = OPTEE_MSG_GET_ARG_SIZE(num_params);
2069
2070 thr->rpc_arg = mobj_get_va(mobj, offset + sz, sz_rpc);
2071 if (!thr->rpc_arg)
2072 goto out_dec_map;
2073
2074 virt_on_stdcall();
2075 res = tee_entry_std(arg, num_params);
2076
2077 thread_rpc_shm_cache_clear(&thr->shm_cache);
2078 thr->rpc_arg = NULL;
2079
2080 out_dec_map:
2081 mobj_dec_map(mobj);
2082 out_put_mobj:
2083 mobj_put(mobj);
2084 return res;
2085 }
2086
2087 /*
2088 * Helper routine for the assembly function thread_std_smc_entry()
2089 *
2090 * Note: this function is weak just to make link_dummies_paged.c happy.
2091 */
__thread_std_smc_entry(uint32_t a0,uint32_t a1,uint32_t a2,uint32_t a3,uint32_t a4,uint32_t a5 __unused)2092 uint32_t __weak __thread_std_smc_entry(uint32_t a0, uint32_t a1,
2093 uint32_t a2, uint32_t a3,
2094 uint32_t a4, uint32_t a5 __unused)
2095 {
2096 /*
2097 * Arguments are supplied from handle_yielding_call() as:
2098 * a0 <- w1
2099 * a1 <- w3
2100 * a2 <- w4
2101 * a3 <- w5
2102 * a4 <- w6
2103 * a5 <- w7
2104 */
2105 thread_get_tsd()->rpc_target_info = swap_src_dst(a0);
2106 if (a1 == OPTEE_FFA_YIELDING_CALL_WITH_ARG)
2107 return yielding_call_with_arg(reg_pair_to_64(a3, a2), a4);
2108 return FFA_DENIED;
2109 }
2110
set_fmem(struct optee_msg_param * param,struct thread_param * tpm)2111 static bool set_fmem(struct optee_msg_param *param, struct thread_param *tpm)
2112 {
2113 uint64_t offs = tpm->u.memref.offs;
2114
2115 param->attr = tpm->attr - THREAD_PARAM_ATTR_MEMREF_IN +
2116 OPTEE_MSG_ATTR_TYPE_FMEM_INPUT;
2117
2118 param->u.fmem.offs_low = offs;
2119 param->u.fmem.offs_high = offs >> 32;
2120 if (param->u.fmem.offs_high != offs >> 32)
2121 return false;
2122
2123 param->u.fmem.size = tpm->u.memref.size;
2124 if (tpm->u.memref.mobj) {
2125 uint64_t cookie = mobj_get_cookie(tpm->u.memref.mobj);
2126
2127 /* If a mobj is passed it better be one with a valid cookie. */
2128 if (cookie == OPTEE_MSG_FMEM_INVALID_GLOBAL_ID)
2129 return false;
2130 param->u.fmem.global_id = cookie;
2131 } else {
2132 param->u.fmem.global_id = OPTEE_MSG_FMEM_INVALID_GLOBAL_ID;
2133 }
2134
2135 return true;
2136 }
2137
get_rpc_arg(uint32_t cmd,size_t num_params,struct thread_param * params,struct optee_msg_arg ** arg_ret)2138 static uint32_t get_rpc_arg(uint32_t cmd, size_t num_params,
2139 struct thread_param *params,
2140 struct optee_msg_arg **arg_ret)
2141 {
2142 size_t sz = OPTEE_MSG_GET_ARG_SIZE(THREAD_RPC_MAX_NUM_PARAMS);
2143 struct thread_ctx *thr = threads + thread_get_id();
2144 struct optee_msg_arg *arg = thr->rpc_arg;
2145
2146 if (num_params > THREAD_RPC_MAX_NUM_PARAMS)
2147 return TEE_ERROR_BAD_PARAMETERS;
2148
2149 if (!arg) {
2150 EMSG("rpc_arg not set");
2151 return TEE_ERROR_GENERIC;
2152 }
2153
2154 memset(arg, 0, sz);
2155 arg->cmd = cmd;
2156 arg->num_params = num_params;
2157 arg->ret = TEE_ERROR_GENERIC; /* in case value isn't updated */
2158
2159 for (size_t n = 0; n < num_params; n++) {
2160 switch (params[n].attr) {
2161 case THREAD_PARAM_ATTR_NONE:
2162 arg->params[n].attr = OPTEE_MSG_ATTR_TYPE_NONE;
2163 break;
2164 case THREAD_PARAM_ATTR_VALUE_IN:
2165 case THREAD_PARAM_ATTR_VALUE_OUT:
2166 case THREAD_PARAM_ATTR_VALUE_INOUT:
2167 arg->params[n].attr = params[n].attr -
2168 THREAD_PARAM_ATTR_VALUE_IN +
2169 OPTEE_MSG_ATTR_TYPE_VALUE_INPUT;
2170 arg->params[n].u.value.a = params[n].u.value.a;
2171 arg->params[n].u.value.b = params[n].u.value.b;
2172 arg->params[n].u.value.c = params[n].u.value.c;
2173 break;
2174 case THREAD_PARAM_ATTR_MEMREF_IN:
2175 case THREAD_PARAM_ATTR_MEMREF_OUT:
2176 case THREAD_PARAM_ATTR_MEMREF_INOUT:
2177 if (!set_fmem(arg->params + n, params + n))
2178 return TEE_ERROR_BAD_PARAMETERS;
2179 break;
2180 default:
2181 return TEE_ERROR_BAD_PARAMETERS;
2182 }
2183 }
2184
2185 if (arg_ret)
2186 *arg_ret = arg;
2187
2188 return TEE_SUCCESS;
2189 }
2190
get_rpc_arg_res(struct optee_msg_arg * arg,size_t num_params,struct thread_param * params)2191 static uint32_t get_rpc_arg_res(struct optee_msg_arg *arg, size_t num_params,
2192 struct thread_param *params)
2193 {
2194 for (size_t n = 0; n < num_params; n++) {
2195 switch (params[n].attr) {
2196 case THREAD_PARAM_ATTR_VALUE_OUT:
2197 case THREAD_PARAM_ATTR_VALUE_INOUT:
2198 params[n].u.value.a = arg->params[n].u.value.a;
2199 params[n].u.value.b = arg->params[n].u.value.b;
2200 params[n].u.value.c = arg->params[n].u.value.c;
2201 break;
2202 case THREAD_PARAM_ATTR_MEMREF_OUT:
2203 case THREAD_PARAM_ATTR_MEMREF_INOUT:
2204 params[n].u.memref.size = arg->params[n].u.fmem.size;
2205 break;
2206 default:
2207 break;
2208 }
2209 }
2210
2211 return arg->ret;
2212 }
2213
thread_rpc_cmd(uint32_t cmd,size_t num_params,struct thread_param * params)2214 uint32_t thread_rpc_cmd(uint32_t cmd, size_t num_params,
2215 struct thread_param *params)
2216 {
2217 struct thread_rpc_arg rpc_arg = { .call = {
2218 .w1 = thread_get_tsd()->rpc_target_info,
2219 .w4 = OPTEE_FFA_YIELDING_CALL_RETURN_RPC_CMD,
2220 },
2221 };
2222 struct optee_msg_arg *arg = NULL;
2223 uint32_t ret = 0;
2224
2225 ret = get_rpc_arg(cmd, num_params, params, &arg);
2226 if (ret)
2227 return ret;
2228
2229 thread_rpc(&rpc_arg);
2230
2231 return get_rpc_arg_res(arg, num_params, params);
2232 }
2233
thread_rpc_free(unsigned int bt,uint64_t cookie,struct mobj * mobj)2234 static void thread_rpc_free(unsigned int bt, uint64_t cookie, struct mobj *mobj)
2235 {
2236 struct thread_rpc_arg rpc_arg = { .call = {
2237 .w1 = thread_get_tsd()->rpc_target_info,
2238 .w4 = OPTEE_FFA_YIELDING_CALL_RETURN_RPC_CMD,
2239 },
2240 };
2241 struct thread_param param = THREAD_PARAM_VALUE(IN, bt, cookie, 0);
2242 uint32_t res2 = 0;
2243 uint32_t res = 0;
2244
2245 DMSG("freeing cookie %#"PRIx64, cookie);
2246
2247 res = get_rpc_arg(OPTEE_RPC_CMD_SHM_FREE, 1, ¶m, NULL);
2248
2249 mobj_put(mobj);
2250 res2 = mobj_ffa_unregister_by_cookie(cookie);
2251 if (res2)
2252 DMSG("mobj_ffa_unregister_by_cookie(%#"PRIx64"): %#"PRIx32,
2253 cookie, res2);
2254 if (!res)
2255 thread_rpc(&rpc_arg);
2256 }
2257
thread_rpc_alloc(size_t size,size_t align,unsigned int bt)2258 static struct mobj *thread_rpc_alloc(size_t size, size_t align, unsigned int bt)
2259 {
2260 struct thread_rpc_arg rpc_arg = { .call = {
2261 .w1 = thread_get_tsd()->rpc_target_info,
2262 .w4 = OPTEE_FFA_YIELDING_CALL_RETURN_RPC_CMD,
2263 },
2264 };
2265 struct thread_param param = THREAD_PARAM_VALUE(IN, bt, size, align);
2266 struct optee_msg_arg *arg = NULL;
2267 unsigned int internal_offset = 0;
2268 struct mobj *mobj = NULL;
2269 uint64_t cookie = 0;
2270
2271 if (get_rpc_arg(OPTEE_RPC_CMD_SHM_ALLOC, 1, ¶m, &arg))
2272 return NULL;
2273
2274 thread_rpc(&rpc_arg);
2275
2276 if (arg->num_params != 1 ||
2277 arg->params->attr != OPTEE_MSG_ATTR_TYPE_FMEM_OUTPUT)
2278 return NULL;
2279
2280 internal_offset = READ_ONCE(arg->params->u.fmem.internal_offs);
2281 cookie = READ_ONCE(arg->params->u.fmem.global_id);
2282 mobj = mobj_ffa_get_by_cookie(cookie, internal_offset);
2283 if (!mobj) {
2284 DMSG("mobj_ffa_get_by_cookie(%#"PRIx64", %#x): failed",
2285 cookie, internal_offset);
2286 return NULL;
2287 }
2288
2289 assert(mobj_is_nonsec(mobj));
2290
2291 if (mobj->size < size) {
2292 DMSG("Mobj %#"PRIx64": wrong size", cookie);
2293 mobj_put(mobj);
2294 return NULL;
2295 }
2296
2297 if (mobj_inc_map(mobj)) {
2298 DMSG("mobj_inc_map(%#"PRIx64"): failed", cookie);
2299 mobj_put(mobj);
2300 return NULL;
2301 }
2302
2303 return mobj;
2304 }
2305
thread_rpc_alloc_payload(size_t size)2306 struct mobj *thread_rpc_alloc_payload(size_t size)
2307 {
2308 return thread_rpc_alloc(size, 8, OPTEE_RPC_SHM_TYPE_APPL);
2309 }
2310
thread_rpc_alloc_kernel_payload(size_t size)2311 struct mobj *thread_rpc_alloc_kernel_payload(size_t size)
2312 {
2313 return thread_rpc_alloc(size, 8, OPTEE_RPC_SHM_TYPE_KERNEL);
2314 }
2315
thread_rpc_free_kernel_payload(struct mobj * mobj)2316 void thread_rpc_free_kernel_payload(struct mobj *mobj)
2317 {
2318 if (mobj)
2319 thread_rpc_free(OPTEE_RPC_SHM_TYPE_KERNEL,
2320 mobj_get_cookie(mobj), mobj);
2321 }
2322
thread_rpc_free_payload(struct mobj * mobj)2323 void thread_rpc_free_payload(struct mobj *mobj)
2324 {
2325 if (mobj)
2326 thread_rpc_free(OPTEE_RPC_SHM_TYPE_APPL, mobj_get_cookie(mobj),
2327 mobj);
2328 }
2329
thread_rpc_alloc_global_payload(size_t size)2330 struct mobj *thread_rpc_alloc_global_payload(size_t size)
2331 {
2332 return thread_rpc_alloc(size, 8, OPTEE_RPC_SHM_TYPE_GLOBAL);
2333 }
2334
thread_rpc_free_global_payload(struct mobj * mobj)2335 void thread_rpc_free_global_payload(struct mobj *mobj)
2336 {
2337 if (mobj)
2338 thread_rpc_free(OPTEE_RPC_SHM_TYPE_GLOBAL,
2339 mobj_get_cookie(mobj), mobj);
2340 }
2341
thread_spmc_register_secondary_ep(vaddr_t ep)2342 void thread_spmc_register_secondary_ep(vaddr_t ep)
2343 {
2344 unsigned long ret = 0;
2345
2346 /* Let the SPM know the entry point for secondary CPUs */
2347 ret = thread_smc(FFA_SECONDARY_EP_REGISTER_64, ep, 0, 0);
2348
2349 if (ret != FFA_SUCCESS_32 && ret != FFA_SUCCESS_64)
2350 EMSG("FFA_SECONDARY_EP_REGISTER_64 ret %#lx", ret);
2351 }
2352
ffa_id_get(void)2353 static uint16_t ffa_id_get(void)
2354 {
2355 /*
2356 * Ask the SPM component running at a higher EL to return our FF-A ID.
2357 * This can either be the SPMC ID (if the SPMC is enabled in OP-TEE) or
2358 * the partition ID (if not).
2359 */
2360 struct thread_smc_args args = {
2361 .a0 = FFA_ID_GET,
2362 };
2363
2364 thread_smccc(&args);
2365 if (!is_ffa_success(args.a0)) {
2366 if (args.a0 == FFA_ERROR)
2367 EMSG("Get id failed with error %ld", args.a2);
2368 else
2369 EMSG("Get id failed");
2370 panic();
2371 }
2372
2373 return args.a2;
2374 }
2375
ffa_spm_id_get(void)2376 static uint16_t ffa_spm_id_get(void)
2377 {
2378 /*
2379 * Ask the SPM component running at a higher EL to return its ID.
2380 * If OP-TEE implements the S-EL1 SPMC, this will get the SPMD ID.
2381 * If not, the ID of the SPMC will be returned.
2382 */
2383 struct thread_smc_args args = {
2384 .a0 = FFA_SPM_ID_GET,
2385 };
2386
2387 thread_smccc(&args);
2388 if (!is_ffa_success(args.a0)) {
2389 if (args.a0 == FFA_ERROR)
2390 EMSG("Get spm id failed with error %ld", args.a2);
2391 else
2392 EMSG("Get spm id failed");
2393 panic();
2394 }
2395
2396 return args.a2;
2397 }
2398
2399 #ifdef CFG_CORE_DYN_PROTMEM
thread_spmc_get_protmem_config(enum mobj_use_case use_case,void * buf,size_t * buf_sz,size_t * min_mem_sz,size_t * min_mem_align)2400 TEE_Result thread_spmc_get_protmem_config(enum mobj_use_case use_case,
2401 void *buf, size_t *buf_sz,
2402 size_t *min_mem_sz,
2403 size_t *min_mem_align)
2404 {
2405 TEE_Result res = TEE_SUCCESS;
2406 struct ffa_mem_access_perm mem_acc_list[] = {
2407 {
2408 .endpoint_id = optee_core_lsp.sp_id,
2409 .perm = FFA_MEM_ACC_RW,
2410 },
2411 };
2412
2413 res = plat_get_protmem_config(use_case, min_mem_sz, min_mem_align);
2414 if (res)
2415 return res;
2416
2417 if (!buf || *buf_sz < sizeof(mem_acc_list)) {
2418 *buf_sz = sizeof(mem_acc_list);
2419 return TEE_ERROR_SHORT_BUFFER;
2420 }
2421
2422 memcpy(buf, mem_acc_list, sizeof(mem_acc_list));
2423 *buf_sz = sizeof(mem_acc_list);
2424
2425 return TEE_SUCCESS;
2426 }
2427 #endif /*CFG_CORE_DYN_PROTMEM*/
2428
check_desc(struct spmc_lsp_desc * d)2429 static TEE_Result check_desc(struct spmc_lsp_desc *d)
2430 {
2431 uint32_t accept_props = FFA_PART_PROP_DIRECT_REQ_RECV |
2432 FFA_PART_PROP_DIRECT_REQ_SEND |
2433 FFA_PART_PROP_NOTIF_CREATED |
2434 FFA_PART_PROP_NOTIF_DESTROYED |
2435 FFA_PART_PROP_AARCH64_STATE;
2436 uint32_t id = d->sp_id;
2437
2438 if (id && (spmc_is_reserved_id(id) || spmc_find_lsp_by_sp_id(id) ||
2439 id < FFA_SWD_ID_MIN || id > FFA_SWD_ID_MAX)) {
2440 EMSG("Conflicting SP id for SP \"%s\" id %#"PRIx32,
2441 d->name, id);
2442 if (!IS_ENABLED(CFG_SP_SKIP_FAILED))
2443 panic();
2444 return TEE_ERROR_BAD_FORMAT;
2445 }
2446
2447 if (d->properties & ~accept_props) {
2448 EMSG("Unexpected properties in %#"PRIx32" for LSP \"%s\" %#"PRIx16,
2449 d->properties, d->name, d->sp_id);
2450 if (!IS_ENABLED(CFG_SP_SKIP_FAILED))
2451 panic();
2452 d->properties &= accept_props;
2453 }
2454
2455 if (!d->direct_req) {
2456 EMSG("Missing direct request callback for LSP \"%s\" %#"PRIx16,
2457 d->name, d->sp_id);
2458 if (!IS_ENABLED(CFG_SP_SKIP_FAILED))
2459 panic();
2460 return TEE_ERROR_BAD_FORMAT;
2461 }
2462
2463 if (!d->uuid_words[0] && !d->uuid_words[1] &&
2464 !d->uuid_words[2] && !d->uuid_words[3]) {
2465 EMSG("Found NULL UUID for LSP \"%s\" %#"PRIx16,
2466 d->name, d->sp_id);
2467 if (!IS_ENABLED(CFG_SP_SKIP_FAILED))
2468 panic();
2469 return TEE_ERROR_BAD_FORMAT;
2470 }
2471
2472 return TEE_SUCCESS;
2473 }
2474
find_unused_sp_id(void)2475 static uint16_t find_unused_sp_id(void)
2476 {
2477 uint32_t id = FFA_SWD_ID_MIN;
2478
2479 while (spmc_is_reserved_id(id) || spmc_find_lsp_by_sp_id(id)) {
2480 id++;
2481 assert(id <= FFA_SWD_ID_MAX);
2482 }
2483
2484 return id;
2485 }
2486
spmc_register_lsp(struct spmc_lsp_desc * desc)2487 TEE_Result spmc_register_lsp(struct spmc_lsp_desc *desc)
2488 {
2489 TEE_Result res = TEE_SUCCESS;
2490
2491 res = check_desc(desc);
2492 if (res)
2493 return res;
2494
2495 if (STAILQ_EMPTY(&lsp_head)) {
2496 DMSG("Cannot add Logical SP \"%s\": LSP framework not initialized yet",
2497 desc->name);
2498 return TEE_ERROR_ITEM_NOT_FOUND;
2499 }
2500
2501 if (!desc->sp_id)
2502 desc->sp_id = find_unused_sp_id();
2503
2504 DMSG("Adding Logical SP \"%s\" with id %#"PRIx16,
2505 desc->name, desc->sp_id);
2506
2507 STAILQ_INSERT_TAIL(&lsp_head, desc, link);
2508
2509 return TEE_SUCCESS;
2510 }
2511
2512 static struct spmc_lsp_desc optee_core_lsp __nex_data = {
2513 .name = "OP-TEE",
2514 .direct_req = optee_lsp_handle_direct_request,
2515 .properties = FFA_PART_PROP_DIRECT_REQ_RECV |
2516 FFA_PART_PROP_DIRECT_REQ_SEND |
2517 #ifdef CFG_NS_VIRTUALIZATION
2518 FFA_PART_PROP_NOTIF_CREATED |
2519 FFA_PART_PROP_NOTIF_DESTROYED |
2520 #endif
2521 FFA_PART_PROP_AARCH64_STATE |
2522 FFA_PART_PROP_IS_PE_ID,
2523 /*
2524 * - if the SPMC is in S-EL2 this UUID describes OP-TEE as a S-EL1
2525 * SP, or
2526 * - if the SPMC is in S-EL1 then this UUID is for OP-TEE as a
2527 * logical partition, residing in the same exception level as the
2528 * SPMC
2529 * UUID 486178e0-e7f8-11e3-bc5e-0002a5d5c51b
2530 */
2531 .uuid_words = { 0xe0786148, 0xe311f8e7, 0x02005ebc, 0x1bc5d5a5, },
2532 };
2533
2534 #if defined(CFG_CORE_SEL1_SPMC)
2535 static struct spmc_lsp_desc optee_spmc_lsp __nex_data = {
2536 .name = "OP-TEE SPMC",
2537 .direct_req = optee_spmc_lsp_handle_direct_request,
2538 };
2539
spmc_init(void)2540 static TEE_Result spmc_init(void)
2541 {
2542 if (IS_ENABLED(CFG_NS_VIRTUALIZATION) &&
2543 virt_add_guest_spec_data(¬if_vm_bitmap_id,
2544 sizeof(struct notif_vm_bitmap), NULL))
2545 panic("virt_add_guest_spec_data");
2546 spmd_id = ffa_spm_id_get();
2547 DMSG("SPMD ID %#"PRIx16, spmd_id);
2548
2549 optee_spmc_lsp.sp_id = ffa_id_get();
2550 DMSG("SPMC ID %#"PRIx16, optee_spmc_lsp.sp_id);
2551 STAILQ_INSERT_HEAD(&lsp_head, &optee_spmc_lsp, link);
2552
2553 optee_core_lsp.sp_id = find_unused_sp_id();
2554 DMSG("OP-TEE endpoint ID %#"PRIx16, optee_core_lsp.sp_id);
2555 STAILQ_INSERT_HEAD(&lsp_head, &optee_core_lsp, link);
2556
2557 /*
2558 * If SPMD think we are version 1.0 it will report version 1.0 to
2559 * normal world regardless of what version we query the SPM with.
2560 * However, if SPMD think we are version 1.1 it will forward
2561 * queries from normal world to let us negotiate version. So by
2562 * setting version 1.0 here we should be compatible.
2563 *
2564 * Note that disagreement on negotiated version means that we'll
2565 * have communication problems with normal world.
2566 */
2567 my_rxtx.ffa_vers = FFA_VERSION_1_0;
2568
2569 return TEE_SUCCESS;
2570 }
2571 #else /* !defined(CFG_CORE_SEL1_SPMC) */
spmc_rxtx_map(struct ffa_rxtx * rxtx)2572 static void spmc_rxtx_map(struct ffa_rxtx *rxtx)
2573 {
2574 struct thread_smc_args args = {
2575 #ifdef ARM64
2576 .a0 = FFA_RXTX_MAP_64,
2577 #else
2578 .a0 = FFA_RXTX_MAP_32,
2579 #endif
2580 .a1 = virt_to_phys(rxtx->tx),
2581 .a2 = virt_to_phys(rxtx->rx),
2582 .a3 = 1,
2583 };
2584
2585 thread_smccc(&args);
2586 if (!is_ffa_success(args.a0)) {
2587 if (args.a0 == FFA_ERROR)
2588 EMSG("rxtx map failed with error %ld", args.a2);
2589 else
2590 EMSG("rxtx map failed");
2591 panic();
2592 }
2593 }
2594
get_ffa_version(uint32_t my_version)2595 static uint32_t get_ffa_version(uint32_t my_version)
2596 {
2597 struct thread_smc_args args = {
2598 .a0 = FFA_VERSION,
2599 .a1 = my_version,
2600 };
2601
2602 thread_smccc(&args);
2603 if (args.a0 & BIT(31)) {
2604 EMSG("FF-A version failed with error %ld", args.a0);
2605 panic();
2606 }
2607
2608 return args.a0;
2609 }
2610
spmc_retrieve_req(struct ffa_mem_transaction_x * trans,uint32_t * tot_len,uint32_t * frag_len)2611 static void *spmc_retrieve_req(struct ffa_mem_transaction_x *trans,
2612 uint32_t *tot_len, uint32_t *frag_len)
2613 {
2614 uint64_t cookie __maybe_unused = trans->global_handle;
2615 struct ffa_mem_access_common *mem_acc = NULL;
2616 struct ffa_mem_access_perm *perm_descr = NULL;
2617 struct thread_smc_args args = {
2618 .a0 = FFA_MEM_RETRIEVE_REQ_32,
2619 .a3 = 0, /* Address, Using TX -> MBZ */
2620 .a4 = 0, /* Using TX -> MBZ */
2621 };
2622 size_t mem_acc_size = 0;
2623 size_t size = 0;
2624 int rc = 0;
2625
2626 if (my_rxtx.ffa_vers <= FFA_VERSION_1_1)
2627 mem_acc_size = sizeof(struct ffa_mem_access_1_0);
2628 else
2629 mem_acc_size = sizeof(struct ffa_mem_access_1_2);
2630
2631 if (my_rxtx.ffa_vers == FFA_VERSION_1_0) {
2632 struct ffa_mem_transaction_1_0 *trans_descr = my_rxtx.tx;
2633
2634 size = sizeof(*trans_descr) + 1 * mem_acc_size;
2635 memset(trans_descr, 0, size);
2636 trans_descr->sender_id = trans->sender_id;
2637 trans_descr->mem_reg_attr = trans->mem_reg_attr;
2638 trans_descr->global_handle = trans->global_handle;
2639 trans_descr->tag = trans->tag;
2640 trans_descr->flags = trans->flags;
2641 trans_descr->mem_access_count = 1;
2642 mem_acc = (void *)trans_descr->mem_access_array;
2643 } else {
2644 struct ffa_mem_transaction_1_1 *trans_descr = my_rxtx.tx;
2645
2646 size = sizeof(*trans_descr) + 1 * mem_acc_size;
2647 memset(trans_descr, 0, size);
2648 trans_descr->sender_id = trans->sender_id;
2649 trans_descr->mem_reg_attr = trans->mem_reg_attr;
2650 trans_descr->global_handle = trans->global_handle;
2651 trans_descr->tag = trans->tag;
2652 trans_descr->flags = trans->flags;
2653 trans_descr->mem_access_count = 1;
2654 trans_descr->mem_access_offs = sizeof(*trans_descr);
2655 trans_descr->mem_access_size = mem_acc_size;
2656 mem_acc = (void *)((vaddr_t)my_rxtx.tx + sizeof(*trans_descr));
2657 }
2658 mem_acc->region_offs = 0;
2659 perm_descr = &mem_acc->access_perm;
2660 perm_descr->endpoint_id = optee_core_lsp.sp_id;
2661 perm_descr->perm = FFA_MEM_ACC_RW;
2662 perm_descr->flags = 0;
2663
2664 args.a1 = size; /* Total Length */
2665 args.a2 = size; /* Frag Length == Total length */
2666 thread_smccc(&args);
2667 if (args.a0 != FFA_MEM_RETRIEVE_RESP) {
2668 if (args.a0 == FFA_ERROR)
2669 EMSG("Failed to fetch cookie %#"PRIx64" error code %d",
2670 cookie, (int)args.a2);
2671 else
2672 EMSG("Failed to fetch cookie %#"PRIx64" a0 %#"PRIx64,
2673 cookie, args.a0);
2674 return NULL;
2675 }
2676 rc = spmc_read_mem_transaction(my_rxtx.ffa_vers, my_rxtx.rx,
2677 my_rxtx.size, args.a1, args.a2, trans);
2678 if (rc) {
2679 ffa_simple_call(FFA_RX_RELEASE, 0, 0, 0, 0);
2680 EMSG("Memory transaction failure for cookie %#"PRIx64" rc %d",
2681 cookie, rc);
2682 return NULL;
2683 }
2684
2685 *tot_len = args.a1;
2686 *frag_len = args.a2;
2687
2688 return my_rxtx.rx;
2689 }
2690
thread_spmc_relinquish(uint64_t cookie)2691 void thread_spmc_relinquish(uint64_t cookie)
2692 {
2693 struct ffa_mem_relinquish *relinquish_desc = my_rxtx.tx;
2694 struct thread_smc_args args = {
2695 .a0 = FFA_MEM_RELINQUISH,
2696 };
2697
2698 memset(relinquish_desc, 0, sizeof(*relinquish_desc));
2699 relinquish_desc->handle = cookie;
2700 relinquish_desc->flags = 0;
2701 relinquish_desc->endpoint_count = 1;
2702 relinquish_desc->endpoint_id_array[0] = optee_core_lsp.sp_id;
2703 thread_smccc(&args);
2704 if (!is_ffa_success(args.a0))
2705 EMSG("Failed to relinquish cookie %#"PRIx64, cookie);
2706 }
2707
set_pages(struct mobj_ffa * mf,uint64_t cookie,void * buf,struct ffa_address_range * addr_range,uint32_t total_addr_range_count,uint32_t total_page_count,uint32_t tot_len,uint32_t frag_len)2708 static int set_pages(struct mobj_ffa *mf, uint64_t cookie, void *buf,
2709 struct ffa_address_range *addr_range,
2710 uint32_t total_addr_range_count, uint32_t total_page_count,
2711 uint32_t tot_len, uint32_t frag_len)
2712 {
2713 uint32_t next_frag_offs = frag_len;
2714 unsigned int idx = 0;
2715 uint32_t n = 0;
2716 int ret = 0;
2717
2718 while (true) {
2719 struct thread_smc_args args = {
2720 .a0 = FFA_MEM_FRAG_RX,
2721 .a1 = low32_from_64(cookie),
2722 .a2 = high32_from_64(cookie),
2723 .a3 = next_frag_offs,
2724 };
2725
2726 for (n = 0; n < total_addr_range_count; n++) {
2727 unsigned int page_count = 0;
2728 uint64_t addr = 0;
2729
2730 if ((void *)(n + addr_range + 1) >
2731 (void *)((vaddr_t)buf + frag_len))
2732 break;
2733
2734 page_count = READ_ONCE(addr_range[n].page_count);
2735 addr = READ_ONCE(addr_range[n].address);
2736 ret = mobj_ffa_add_pages_at(mf, &idx, addr, page_count);
2737 if (ret)
2738 return ret;
2739 }
2740 total_addr_range_count -= n;
2741 if (!total_addr_range_count) {
2742 if (idx != total_page_count)
2743 return FFA_INVALID_PARAMETERS;
2744 return FFA_OK;
2745 }
2746
2747 ret = ffa_simple_call(FFA_RX_RELEASE, 0, 0, 0, 0);
2748 if (ret)
2749 return ret;
2750
2751 thread_smccc(&args);
2752 if (args.a0 == FFA_ERROR) {
2753 EMSG("FFA_MEM_FRAG_RX: ret %d", (int)args.a2);
2754 return args.a2;
2755 }
2756 if (args.a0 != FFA_MEM_FRAG_TX) {
2757 EMSG("Bad tx fid 0x%lx", args.a0);
2758 return FFA_INVALID_PARAMETERS;
2759 }
2760 if (reg_pair_to_64(args.a2, args.a1) != cookie) {
2761 EMSG("Bad cookie 0x%"PRIx64" expected 0x%"PRIx64,
2762 reg_pair_to_64(args.a2, args.a1), cookie);
2763 return FFA_INVALID_PARAMETERS;
2764 }
2765 frag_len = args.a3;
2766 next_frag_offs += frag_len;
2767 if (next_frag_offs > tot_len ||
2768 frag_len % sizeof(*addr_range)) {
2769 EMSG("Bad frag_len 0x%"PRIx32, frag_len);
2770 return FFA_INVALID_PARAMETERS;
2771 }
2772 addr_range = buf;
2773 }
2774 }
2775
thread_spmc_populate_mobj_from_rx(uint64_t cookie,enum mobj_use_case use_case)2776 struct mobj_ffa *thread_spmc_populate_mobj_from_rx(uint64_t cookie,
2777 enum mobj_use_case use_case)
2778 {
2779 struct mobj_ffa *ret = NULL;
2780 struct ffa_mem_transaction_x retrieve_desc = { .tag = use_case};
2781 struct ffa_mem_access_common *mem_acc = NULL;
2782 struct ffa_mem_region *descr = NULL;
2783 uint32_t total_page_count = 0;
2784 struct mobj_ffa *mf = NULL;
2785 unsigned int offs = 0;
2786 uint32_t frag_len = 0;
2787 uint32_t tot_len = 0;
2788 void *buf = NULL;
2789
2790 if (use_case == MOBJ_USE_CASE_NS_SHM)
2791 retrieve_desc.flags = FFA_MEMORY_REGION_TRANSACTION_TYPE_SHARE;
2792 else
2793 retrieve_desc.flags = FFA_MEMORY_REGION_TRANSACTION_TYPE_LEND;
2794 retrieve_desc.flags |= FFA_MEMORY_REGION_FLAG_ANY_ALIGNMENT;
2795 retrieve_desc.global_handle = cookie;
2796 retrieve_desc.sender_id = thread_get_tsd()->rpc_target_info;
2797 retrieve_desc.mem_reg_attr = FFA_NORMAL_MEM_REG_ATTR;
2798
2799 /*
2800 * OP-TEE is only supporting a single mem_region while the
2801 * specification allows for more than one.
2802 */
2803 buf = spmc_retrieve_req(&retrieve_desc, &tot_len, &frag_len);
2804 if (!buf) {
2805 EMSG("Failed to retrieve cookie from rx buffer %#"PRIx64,
2806 cookie);
2807 return NULL;
2808 }
2809
2810 /*
2811 * We assume that the returned buffer ends with a complete struct
2812 * ffa_address_range.
2813 */
2814 if (!IS_ALIGNED_WITH_TYPE(frag_len, struct ffa_address_range) ||
2815 !IS_ALIGNED_WITH_TYPE(tot_len, struct ffa_address_range))
2816 goto out;
2817 mem_acc = (void *)((vaddr_t)buf + retrieve_desc.mem_access_offs);
2818 /*
2819 * We assume struct ffa_mem_region is well aligned.
2820 */
2821 offs = READ_ONCE(mem_acc->region_offs);
2822 if (!IS_ALIGNED_WITH_TYPE(offs, struct ffa_mem_region))
2823 goto out;
2824 descr = (struct ffa_mem_region *)((vaddr_t)buf + offs);
2825
2826 total_page_count = READ_ONCE(descr->total_page_count);
2827 mf = mobj_ffa_spmc_new(cookie, total_page_count, use_case);
2828 if (!mf)
2829 goto out;
2830
2831 if (set_pages(mf, cookie, buf, descr->address_range_array,
2832 READ_ONCE(descr->address_range_count), total_page_count,
2833 tot_len, frag_len)) {
2834 mobj_ffa_spmc_delete(mf);
2835 goto out;
2836 }
2837
2838 ret = mf;
2839
2840 out:
2841 /* Release RX buffer after the mem retrieve request. */
2842 ffa_simple_call(FFA_RX_RELEASE, 0, 0, 0, 0);
2843
2844 return ret;
2845 }
2846
get_ffa_version_from_manifest(void * fdt)2847 static uint32_t get_ffa_version_from_manifest(void *fdt)
2848 {
2849 int ret = 0;
2850 uint32_t vers = 0;
2851
2852 ret = fdt_node_check_compatible(fdt, 0, "arm,ffa-manifest-1.0");
2853 if (ret < 0) {
2854 EMSG("Invalid FF-A manifest at %p: error %d", fdt, ret);
2855 panic();
2856 }
2857
2858 ret = fdt_read_uint32(fdt, 0, "ffa-version", &vers);
2859 if (ret < 0) {
2860 EMSG("Can't read \"ffa-version\" from FF-A manifest at %p: error %d",
2861 fdt, ret);
2862 panic();
2863 }
2864
2865 return vers;
2866 }
2867
spmc_init(void)2868 static TEE_Result spmc_init(void)
2869 {
2870 uint32_t my_vers = 0;
2871 uint32_t vers = 0;
2872
2873 if (IS_ENABLED(CFG_NS_VIRTUALIZATION) &&
2874 virt_add_guest_spec_data(¬if_vm_bitmap_id,
2875 sizeof(struct notif_vm_bitmap), NULL))
2876 panic("virt_add_guest_spec_data");
2877
2878 my_vers = get_ffa_version_from_manifest(get_manifest_dt());
2879 if (my_vers < FFA_VERSION_1_0 || my_vers > FFA_VERSION_1_2) {
2880 EMSG("Unsupported version %"PRIu32".%"PRIu32" from manifest",
2881 FFA_GET_MAJOR_VERSION(my_vers),
2882 FFA_GET_MINOR_VERSION(my_vers));
2883 panic();
2884 }
2885 vers = get_ffa_version(my_vers);
2886 DMSG("SPMC reported version %"PRIu32".%"PRIu32,
2887 FFA_GET_MAJOR_VERSION(vers), FFA_GET_MINOR_VERSION(vers));
2888 if (FFA_GET_MAJOR_VERSION(vers) != FFA_GET_MAJOR_VERSION(my_vers)) {
2889 EMSG("Incompatible major version %"PRIu32", expected %"PRIu32"",
2890 FFA_GET_MAJOR_VERSION(vers),
2891 FFA_GET_MAJOR_VERSION(my_vers));
2892 panic();
2893 }
2894 if (vers < my_vers)
2895 my_vers = vers;
2896 DMSG("Using version %"PRIu32".%"PRIu32"",
2897 FFA_GET_MAJOR_VERSION(my_vers), FFA_GET_MINOR_VERSION(my_vers));
2898 my_rxtx.ffa_vers = my_vers;
2899
2900 spmc_rxtx_map(&my_rxtx);
2901
2902 spmc_id = ffa_spm_id_get();
2903 DMSG("SPMC ID %#"PRIx16, spmc_id);
2904
2905 optee_core_lsp.sp_id = ffa_id_get();
2906 DMSG("OP-TEE endpoint ID %#"PRIx16, optee_core_lsp.sp_id);
2907 STAILQ_INSERT_HEAD(&lsp_head, &optee_core_lsp, link);
2908
2909 if (!ffa_features(FFA_NOTIFICATION_SET)) {
2910 spmc_notif_is_ready = true;
2911 DMSG("Asynchronous notifications are ready");
2912 }
2913
2914 return TEE_SUCCESS;
2915 }
2916 #endif /* !defined(CFG_CORE_SEL1_SPMC) */
2917
2918 nex_service_init(spmc_init);
2919