1 /* SPDX-License-Identifier: BSD-3-Clause
2 * Copyright(c) 2010-2019 Intel Corporation
3 */
4
5 #include <stdint.h>
6 #include <stddef.h>
7 #include <stdio.h>
8 #include <string.h>
9 #include <sys/queue.h>
10
11 #include <rte_errno.h>
12 #include <rte_memcpy.h>
13 #include <rte_memory.h>
14 #include <rte_eal.h>
15 #include <rte_eal_memconfig.h>
16 #include <rte_common.h>
17 #include <rte_spinlock.h>
18
19 #include <rte_eal_trace.h>
20
21 #include <rte_malloc.h>
22 #include "malloc_elem.h"
23 #include "malloc_heap.h"
24 #include "eal_memalloc.h"
25 #include "eal_memcfg.h"
26 #include "eal_private.h"
27
28
29 /* Free the memory space back to heap */
30 static void
mem_free(void * addr,const bool trace_ena)31 mem_free(void *addr, const bool trace_ena)
32 {
33 if (trace_ena)
34 rte_eal_trace_mem_free(addr);
35
36 if (addr == NULL) return;
37 if (malloc_heap_free(malloc_elem_from_data(addr)) < 0)
38 RTE_LOG(ERR, EAL, "Error: Invalid memory\n");
39 }
40
41 void
rte_free(void * addr)42 rte_free(void *addr)
43 {
44 return mem_free(addr, true);
45 }
46
47 void
eal_free_no_trace(void * addr)48 eal_free_no_trace(void *addr)
49 {
50 return mem_free(addr, false);
51 }
52
53 static void *
malloc_socket(const char * type,size_t size,unsigned int align,int socket_arg,const bool trace_ena)54 malloc_socket(const char *type, size_t size, unsigned int align,
55 int socket_arg, const bool trace_ena)
56 {
57 void *ptr;
58
59 /* return NULL if size is 0 or alignment is not power-of-2 */
60 if (size == 0 || (align && !rte_is_power_of_2(align)))
61 return NULL;
62
63 /* if there are no hugepages and if we are not allocating from an
64 * external heap, use memory from any socket available. checking for
65 * socket being external may return -1 in case of invalid socket, but
66 * that's OK - if there are no hugepages, it doesn't matter.
67 */
68 if (rte_malloc_heap_socket_is_external(socket_arg) != 1 &&
69 !rte_eal_has_hugepages())
70 socket_arg = SOCKET_ID_ANY;
71
72 ptr = malloc_heap_alloc(type, size, socket_arg, 0,
73 align == 0 ? 1 : align, 0, false);
74
75 if (trace_ena)
76 rte_eal_trace_mem_malloc(type, size, align, socket_arg, ptr);
77 return ptr;
78 }
79
80 /*
81 * Allocate memory on specified heap.
82 */
83 void *
rte_malloc_socket(const char * type,size_t size,unsigned int align,int socket_arg)84 rte_malloc_socket(const char *type, size_t size, unsigned int align,
85 int socket_arg)
86 {
87 return malloc_socket(type, size, align, socket_arg, true);
88 }
89
90 void *
eal_malloc_no_trace(const char * type,size_t size,unsigned int align)91 eal_malloc_no_trace(const char *type, size_t size, unsigned int align)
92 {
93 return malloc_socket(type, size, align, SOCKET_ID_ANY, false);
94 }
95
96 /*
97 * Allocate memory on default heap.
98 */
99 void *
rte_malloc(const char * type,size_t size,unsigned align)100 rte_malloc(const char *type, size_t size, unsigned align)
101 {
102 return rte_malloc_socket(type, size, align, SOCKET_ID_ANY);
103 }
104
105 /*
106 * Allocate zero'd memory on specified heap.
107 */
108 void *
rte_zmalloc_socket(const char * type,size_t size,unsigned align,int socket)109 rte_zmalloc_socket(const char *type, size_t size, unsigned align, int socket)
110 {
111 void *ptr = rte_malloc_socket(type, size, align, socket);
112
113 if (ptr != NULL) {
114 struct malloc_elem *elem = malloc_elem_from_data(ptr);
115
116 if (elem->dirty) {
117 memset(ptr, 0, size);
118 } else {
119 #ifdef RTE_MALLOC_DEBUG
120 /*
121 * If DEBUG is enabled, then freed memory is marked
122 * with a poison value and set to zero on allocation.
123 * If DEBUG is disabled then memory is already zeroed.
124 */
125 memset(ptr, 0, size);
126 #endif
127 }
128 }
129
130 rte_eal_trace_mem_zmalloc(type, size, align, socket, ptr);
131 return ptr;
132 }
133
134 /*
135 * Allocate zero'd memory on default heap.
136 */
137 void *
rte_zmalloc(const char * type,size_t size,unsigned align)138 rte_zmalloc(const char *type, size_t size, unsigned align)
139 {
140 return rte_zmalloc_socket(type, size, align, SOCKET_ID_ANY);
141 }
142
143 /*
144 * Allocate zero'd memory on specified heap.
145 */
146 void *
rte_calloc_socket(const char * type,size_t num,size_t size,unsigned align,int socket)147 rte_calloc_socket(const char *type, size_t num, size_t size, unsigned align, int socket)
148 {
149 return rte_zmalloc_socket(type, num * size, align, socket);
150 }
151
152 /*
153 * Allocate zero'd memory on default heap.
154 */
155 void *
rte_calloc(const char * type,size_t num,size_t size,unsigned align)156 rte_calloc(const char *type, size_t num, size_t size, unsigned align)
157 {
158 return rte_zmalloc(type, num * size, align);
159 }
160
161 /*
162 * Resize allocated memory on specified heap.
163 */
164 void *
rte_realloc_socket(void * ptr,size_t size,unsigned int align,int socket)165 rte_realloc_socket(void *ptr, size_t size, unsigned int align, int socket)
166 {
167 size_t user_size;
168
169 if (ptr == NULL)
170 return rte_malloc_socket(NULL, size, align, socket);
171
172 struct malloc_elem *elem = malloc_elem_from_data(ptr);
173 if (elem == NULL) {
174 RTE_LOG(ERR, EAL, "Error: memory corruption detected\n");
175 return NULL;
176 }
177
178 user_size = size;
179
180 size = RTE_CACHE_LINE_ROUNDUP(size), align = RTE_CACHE_LINE_ROUNDUP(align);
181
182 /* check requested socket id and alignment matches first, and if ok,
183 * see if we can resize block
184 */
185 if ((socket == SOCKET_ID_ANY ||
186 (unsigned int)socket == elem->heap->socket_id) &&
187 RTE_PTR_ALIGN(ptr, align) == ptr &&
188 malloc_heap_resize(elem, size) == 0) {
189 rte_eal_trace_mem_realloc(size, align, socket, ptr);
190
191 asan_set_redzone(elem, user_size);
192
193 return ptr;
194 }
195
196 /* either requested socket id doesn't match, alignment is off
197 * or we have no room to expand,
198 * so move the data.
199 */
200 void *new_ptr = rte_malloc_socket(NULL, size, align, socket);
201 if (new_ptr == NULL)
202 return NULL;
203 /* elem: |pad|data_elem|data|trailer| */
204 const size_t old_size = old_malloc_size(elem);
205 rte_memcpy(new_ptr, ptr, old_size < size ? old_size : size);
206 rte_free(ptr);
207
208 rte_eal_trace_mem_realloc(size, align, socket, new_ptr);
209 return new_ptr;
210 }
211
212 /*
213 * Resize allocated memory.
214 */
215 void *
rte_realloc(void * ptr,size_t size,unsigned int align)216 rte_realloc(void *ptr, size_t size, unsigned int align)
217 {
218 return rte_realloc_socket(ptr, size, align, SOCKET_ID_ANY);
219 }
220
221 int
rte_malloc_validate(const void * ptr,size_t * size)222 rte_malloc_validate(const void *ptr, size_t *size)
223 {
224 const struct malloc_elem *elem = malloc_elem_from_data(ptr);
225 if (!malloc_elem_cookies_ok(elem))
226 return -1;
227 if (size != NULL)
228 *size = elem->size - elem->pad - MALLOC_ELEM_OVERHEAD;
229 return 0;
230 }
231
232 /*
233 * Function to retrieve data for heap on given socket
234 */
235 int
rte_malloc_get_socket_stats(int socket,struct rte_malloc_socket_stats * socket_stats)236 rte_malloc_get_socket_stats(int socket,
237 struct rte_malloc_socket_stats *socket_stats)
238 {
239 struct rte_mem_config *mcfg = rte_eal_get_configuration()->mem_config;
240 int heap_idx;
241
242 heap_idx = malloc_socket_to_heap_id(socket);
243 if (heap_idx < 0)
244 return -1;
245
246 return malloc_heap_get_stats(&mcfg->malloc_heaps[heap_idx],
247 socket_stats);
248 }
249
250 /*
251 * Function to dump contents of all heaps
252 */
253 void
rte_malloc_dump_heaps(FILE * f)254 rte_malloc_dump_heaps(FILE *f)
255 {
256 struct rte_mem_config *mcfg = rte_eal_get_configuration()->mem_config;
257 unsigned int idx;
258
259 for (idx = 0; idx < RTE_MAX_HEAPS; idx++) {
260 fprintf(f, "Heap id: %u\n", idx);
261 malloc_heap_dump(&mcfg->malloc_heaps[idx], f);
262 }
263 }
264
265 int
rte_malloc_heap_get_socket(const char * name)266 rte_malloc_heap_get_socket(const char *name)
267 {
268 struct rte_mem_config *mcfg = rte_eal_get_configuration()->mem_config;
269 struct malloc_heap *heap = NULL;
270 unsigned int idx;
271 int ret;
272
273 if (name == NULL ||
274 strnlen(name, RTE_HEAP_NAME_MAX_LEN) == 0 ||
275 strnlen(name, RTE_HEAP_NAME_MAX_LEN) ==
276 RTE_HEAP_NAME_MAX_LEN) {
277 rte_errno = EINVAL;
278 return -1;
279 }
280 rte_mcfg_mem_read_lock();
281 for (idx = 0; idx < RTE_MAX_HEAPS; idx++) {
282 struct malloc_heap *tmp = &mcfg->malloc_heaps[idx];
283
284 if (!strncmp(name, tmp->name, RTE_HEAP_NAME_MAX_LEN)) {
285 heap = tmp;
286 break;
287 }
288 }
289
290 if (heap != NULL) {
291 ret = heap->socket_id;
292 } else {
293 rte_errno = ENOENT;
294 ret = -1;
295 }
296 rte_mcfg_mem_read_unlock();
297
298 return ret;
299 }
300
301 int
rte_malloc_heap_socket_is_external(int socket_id)302 rte_malloc_heap_socket_is_external(int socket_id)
303 {
304 struct rte_mem_config *mcfg = rte_eal_get_configuration()->mem_config;
305 unsigned int idx;
306 int ret = -1;
307
308 if (socket_id == SOCKET_ID_ANY)
309 return 0;
310
311 rte_mcfg_mem_read_lock();
312 for (idx = 0; idx < RTE_MAX_HEAPS; idx++) {
313 struct malloc_heap *tmp = &mcfg->malloc_heaps[idx];
314
315 if ((int)tmp->socket_id == socket_id) {
316 /* external memory always has large socket ID's */
317 ret = tmp->socket_id >= RTE_MAX_NUMA_NODES;
318 break;
319 }
320 }
321 rte_mcfg_mem_read_unlock();
322
323 return ret;
324 }
325
326 /*
327 * Print stats on memory type. If type is NULL, info on all types is printed
328 */
329 void
rte_malloc_dump_stats(FILE * f,__rte_unused const char * type)330 rte_malloc_dump_stats(FILE *f, __rte_unused const char *type)
331 {
332 struct rte_mem_config *mcfg = rte_eal_get_configuration()->mem_config;
333 unsigned int heap_id;
334 struct rte_malloc_socket_stats sock_stats;
335
336 /* Iterate through all initialised heaps */
337 for (heap_id = 0; heap_id < RTE_MAX_HEAPS; heap_id++) {
338 struct malloc_heap *heap = &mcfg->malloc_heaps[heap_id];
339
340 malloc_heap_get_stats(heap, &sock_stats);
341
342 fprintf(f, "Heap id:%u\n", heap_id);
343 fprintf(f, "\tHeap name:%s\n", heap->name);
344 fprintf(f, "\tHeap_size:%zu,\n", sock_stats.heap_totalsz_bytes);
345 fprintf(f, "\tFree_size:%zu,\n", sock_stats.heap_freesz_bytes);
346 fprintf(f, "\tAlloc_size:%zu,\n", sock_stats.heap_allocsz_bytes);
347 fprintf(f, "\tGreatest_free_size:%zu,\n",
348 sock_stats.greatest_free_size);
349 fprintf(f, "\tAlloc_count:%u,\n",sock_stats.alloc_count);
350 fprintf(f, "\tFree_count:%u,\n", sock_stats.free_count);
351 }
352 return;
353 }
354
355 /*
356 * TODO: Set limit to memory that can be allocated to memory type
357 */
358 int
rte_malloc_set_limit(__rte_unused const char * type,__rte_unused size_t max)359 rte_malloc_set_limit(__rte_unused const char *type,
360 __rte_unused size_t max)
361 {
362 return 0;
363 }
364
365 /*
366 * Return the IO address of a virtual address obtained through rte_malloc
367 */
368 rte_iova_t
rte_malloc_virt2iova(const void * addr)369 rte_malloc_virt2iova(const void *addr)
370 {
371 const struct rte_memseg *ms;
372 struct malloc_elem *elem = malloc_elem_from_data(addr);
373
374 if (elem == NULL)
375 return RTE_BAD_IOVA;
376
377 if (!elem->msl->external && rte_eal_iova_mode() == RTE_IOVA_VA)
378 return (uintptr_t) addr;
379
380 ms = rte_mem_virt2memseg(addr, elem->msl);
381 if (ms == NULL)
382 return RTE_BAD_IOVA;
383
384 if (ms->iova == RTE_BAD_IOVA)
385 return RTE_BAD_IOVA;
386
387 return ms->iova + RTE_PTR_DIFF(addr, ms->addr);
388 }
389
390 static struct malloc_heap *
find_named_heap(const char * name)391 find_named_heap(const char *name)
392 {
393 struct rte_mem_config *mcfg = rte_eal_get_configuration()->mem_config;
394 unsigned int i;
395
396 for (i = 0; i < RTE_MAX_HEAPS; i++) {
397 struct malloc_heap *heap = &mcfg->malloc_heaps[i];
398
399 if (!strncmp(name, heap->name, RTE_HEAP_NAME_MAX_LEN))
400 return heap;
401 }
402 return NULL;
403 }
404
405 int
rte_malloc_heap_memory_add(const char * heap_name,void * va_addr,size_t len,rte_iova_t iova_addrs[],unsigned int n_pages,size_t page_sz)406 rte_malloc_heap_memory_add(const char *heap_name, void *va_addr, size_t len,
407 rte_iova_t iova_addrs[], unsigned int n_pages, size_t page_sz)
408 {
409 struct malloc_heap *heap = NULL;
410 struct rte_memseg_list *msl;
411 unsigned int n;
412 int ret;
413
414 if (heap_name == NULL || va_addr == NULL ||
415 page_sz == 0 || !rte_is_power_of_2(page_sz) ||
416 RTE_ALIGN(len, page_sz) != len ||
417 !rte_is_aligned(va_addr, page_sz) ||
418 ((len / page_sz) != n_pages && iova_addrs != NULL) ||
419 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) == 0 ||
420 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) ==
421 RTE_HEAP_NAME_MAX_LEN) {
422 rte_errno = EINVAL;
423 return -1;
424 }
425 rte_mcfg_mem_write_lock();
426
427 /* find our heap */
428 heap = find_named_heap(heap_name);
429 if (heap == NULL) {
430 rte_errno = ENOENT;
431 ret = -1;
432 goto unlock;
433 }
434 if (heap->socket_id < RTE_MAX_NUMA_NODES) {
435 /* cannot add memory to internal heaps */
436 rte_errno = EPERM;
437 ret = -1;
438 goto unlock;
439 }
440 n = len / page_sz;
441
442 msl = malloc_heap_create_external_seg(va_addr, iova_addrs, n, page_sz,
443 heap_name, heap->socket_id);
444 if (msl == NULL) {
445 ret = -1;
446 goto unlock;
447 }
448
449 rte_spinlock_lock(&heap->lock);
450 ret = malloc_heap_add_external_memory(heap, msl);
451 msl->heap = 1; /* mark it as heap segment */
452 rte_spinlock_unlock(&heap->lock);
453
454 unlock:
455 rte_mcfg_mem_write_unlock();
456
457 return ret;
458 }
459
460 int
rte_malloc_heap_memory_remove(const char * heap_name,void * va_addr,size_t len)461 rte_malloc_heap_memory_remove(const char *heap_name, void *va_addr, size_t len)
462 {
463 struct malloc_heap *heap = NULL;
464 struct rte_memseg_list *msl;
465 int ret;
466
467 if (heap_name == NULL || va_addr == NULL || len == 0 ||
468 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) == 0 ||
469 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) ==
470 RTE_HEAP_NAME_MAX_LEN) {
471 rte_errno = EINVAL;
472 return -1;
473 }
474 rte_mcfg_mem_write_lock();
475 /* find our heap */
476 heap = find_named_heap(heap_name);
477 if (heap == NULL) {
478 rte_errno = ENOENT;
479 ret = -1;
480 goto unlock;
481 }
482 if (heap->socket_id < RTE_MAX_NUMA_NODES) {
483 /* cannot remove memory from internal heaps */
484 rte_errno = EPERM;
485 ret = -1;
486 goto unlock;
487 }
488
489 msl = malloc_heap_find_external_seg(va_addr, len);
490 if (msl == NULL) {
491 ret = -1;
492 goto unlock;
493 }
494
495 rte_spinlock_lock(&heap->lock);
496 ret = malloc_heap_remove_external_memory(heap, va_addr, len);
497 rte_spinlock_unlock(&heap->lock);
498 if (ret != 0)
499 goto unlock;
500
501 ret = malloc_heap_destroy_external_seg(msl);
502
503 unlock:
504 rte_mcfg_mem_write_unlock();
505
506 return ret;
507 }
508
509 static int
sync_memory(const char * heap_name,void * va_addr,size_t len,bool attach)510 sync_memory(const char *heap_name, void *va_addr, size_t len, bool attach)
511 {
512 struct malloc_heap *heap = NULL;
513 struct rte_memseg_list *msl;
514 int ret;
515
516 if (heap_name == NULL || va_addr == NULL || len == 0 ||
517 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) == 0 ||
518 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) ==
519 RTE_HEAP_NAME_MAX_LEN) {
520 rte_errno = EINVAL;
521 return -1;
522 }
523 rte_mcfg_mem_read_lock();
524
525 /* find our heap */
526 heap = find_named_heap(heap_name);
527 if (heap == NULL) {
528 rte_errno = ENOENT;
529 ret = -1;
530 goto unlock;
531 }
532 /* we shouldn't be able to sync to internal heaps */
533 if (heap->socket_id < RTE_MAX_NUMA_NODES) {
534 rte_errno = EPERM;
535 ret = -1;
536 goto unlock;
537 }
538
539 /* find corresponding memseg list to sync to */
540 msl = malloc_heap_find_external_seg(va_addr, len);
541 if (msl == NULL) {
542 ret = -1;
543 goto unlock;
544 }
545
546 if (attach) {
547 ret = rte_fbarray_attach(&msl->memseg_arr);
548 if (ret == 0) {
549 /* notify all subscribers that a new memory area was
550 * added.
551 */
552 eal_memalloc_mem_event_notify(RTE_MEM_EVENT_ALLOC,
553 va_addr, len);
554 } else {
555 ret = -1;
556 goto unlock;
557 }
558 } else {
559 /* notify all subscribers that a memory area is about to
560 * be removed.
561 */
562 eal_memalloc_mem_event_notify(RTE_MEM_EVENT_FREE,
563 msl->base_va, msl->len);
564 ret = rte_fbarray_detach(&msl->memseg_arr);
565 if (ret < 0) {
566 ret = -1;
567 goto unlock;
568 }
569 }
570 unlock:
571 rte_mcfg_mem_read_unlock();
572 return ret;
573 }
574
575 int
rte_malloc_heap_memory_attach(const char * heap_name,void * va_addr,size_t len)576 rte_malloc_heap_memory_attach(const char *heap_name, void *va_addr, size_t len)
577 {
578 return sync_memory(heap_name, va_addr, len, true);
579 }
580
581 int
rte_malloc_heap_memory_detach(const char * heap_name,void * va_addr,size_t len)582 rte_malloc_heap_memory_detach(const char *heap_name, void *va_addr, size_t len)
583 {
584 return sync_memory(heap_name, va_addr, len, false);
585 }
586
587 int
rte_malloc_heap_create(const char * heap_name)588 rte_malloc_heap_create(const char *heap_name)
589 {
590 struct rte_mem_config *mcfg = rte_eal_get_configuration()->mem_config;
591 struct malloc_heap *heap = NULL;
592 int i, ret;
593
594 if (heap_name == NULL ||
595 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) == 0 ||
596 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) ==
597 RTE_HEAP_NAME_MAX_LEN) {
598 rte_errno = EINVAL;
599 return -1;
600 }
601 /* check if there is space in the heap list, or if heap with this name
602 * already exists.
603 */
604 rte_mcfg_mem_write_lock();
605
606 for (i = 0; i < RTE_MAX_HEAPS; i++) {
607 struct malloc_heap *tmp = &mcfg->malloc_heaps[i];
608 /* existing heap */
609 if (strncmp(heap_name, tmp->name,
610 RTE_HEAP_NAME_MAX_LEN) == 0) {
611 RTE_LOG(ERR, EAL, "Heap %s already exists\n",
612 heap_name);
613 rte_errno = EEXIST;
614 ret = -1;
615 goto unlock;
616 }
617 /* empty heap */
618 if (strnlen(tmp->name, RTE_HEAP_NAME_MAX_LEN) == 0) {
619 heap = tmp;
620 break;
621 }
622 }
623 if (heap == NULL) {
624 RTE_LOG(ERR, EAL, "Cannot create new heap: no space\n");
625 rte_errno = ENOSPC;
626 ret = -1;
627 goto unlock;
628 }
629
630 /* we're sure that we can create a new heap, so do it */
631 ret = malloc_heap_create(heap, heap_name);
632 unlock:
633 rte_mcfg_mem_write_unlock();
634
635 return ret;
636 }
637
638 int
rte_malloc_heap_destroy(const char * heap_name)639 rte_malloc_heap_destroy(const char *heap_name)
640 {
641 struct malloc_heap *heap = NULL;
642 int ret;
643
644 if (heap_name == NULL ||
645 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) == 0 ||
646 strnlen(heap_name, RTE_HEAP_NAME_MAX_LEN) ==
647 RTE_HEAP_NAME_MAX_LEN) {
648 rte_errno = EINVAL;
649 return -1;
650 }
651 rte_mcfg_mem_write_lock();
652
653 /* start from non-socket heaps */
654 heap = find_named_heap(heap_name);
655 if (heap == NULL) {
656 RTE_LOG(ERR, EAL, "Heap %s not found\n", heap_name);
657 rte_errno = ENOENT;
658 ret = -1;
659 goto unlock;
660 }
661 /* we shouldn't be able to destroy internal heaps */
662 if (heap->socket_id < RTE_MAX_NUMA_NODES) {
663 rte_errno = EPERM;
664 ret = -1;
665 goto unlock;
666 }
667 /* sanity checks done, now we can destroy the heap */
668 rte_spinlock_lock(&heap->lock);
669 ret = malloc_heap_destroy(heap);
670
671 /* if we failed, lock is still active */
672 if (ret < 0)
673 rte_spinlock_unlock(&heap->lock);
674 unlock:
675 rte_mcfg_mem_write_unlock();
676
677 return ret;
678 }
679