| | #include "ggml-alloc.h" |
| | #include "ggml-backend.h" |
| | #include "ggml.h" |
| | #include <assert.h> |
| | #include <stdarg.h> |
| | #include <stdio.h> |
| | #include <stdlib.h> |
| | #include <string.h> |
| |
|
| |
|
| | #define UNUSED(x) (void)(x) |
| | #define MAX(a, b) ((a) > (b) ? (a) : (b)) |
| | #define GGML_MAX_CONCUR (2*GGML_MAX_NODES) |
| |
|
| | |
| |
|
| | |
| | #define AT_PRINTF(...) ((void)0) |
| |
|
| | struct hash_node { |
| | struct ggml_tensor * t; |
| | int n_children; |
| | int n_views; |
| | }; |
| |
|
| | static size_t hash(void * p) { |
| | return (size_t)p % GGML_GRAPH_HASHTABLE_SIZE; |
| | } |
| |
|
| | static struct hash_node * hash_get(struct hash_node hash_table[], struct ggml_tensor * t) { |
| | size_t h = hash(t); |
| |
|
| | |
| | size_t i = h; |
| | while (hash_table[i].t != NULL) { |
| | if (hash_table[i].t == t) { |
| | return &hash_table[i]; |
| | } |
| | i = (i + 1) % GGML_GRAPH_HASHTABLE_SIZE; |
| | if (i == h) { |
| | |
| | GGML_ASSERT(false); |
| | } |
| | } |
| |
|
| | hash_table[i].t = t; |
| | return &hash_table[i]; |
| | } |
| |
|
| | |
| | static size_t aligned_offset(const void * buffer, size_t offset, size_t alignment) { |
| | assert(alignment && !(alignment & (alignment - 1))); |
| | size_t align = (alignment - (((uintptr_t)buffer + offset) % alignment)) % alignment; |
| | return offset + align; |
| | } |
| |
|
| | struct free_block { |
| | void * addr; |
| | size_t size; |
| | }; |
| |
|
| | #define MAX_FREE_BLOCKS 256 |
| |
|
| | struct ggml_allocr { |
| | struct ggml_backend_buffer * buffer; |
| | bool buffer_owned; |
| | void * data; |
| | size_t alignment; |
| | int n_free_blocks; |
| | struct free_block free_blocks[MAX_FREE_BLOCKS]; |
| | struct hash_node hash_table[GGML_GRAPH_HASHTABLE_SIZE]; |
| | size_t max_size; |
| | bool measure; |
| | int parse_seq[GGML_MAX_CONCUR]; |
| | int parse_seq_len; |
| |
|
| | #ifdef GGML_ALLOCATOR_DEBUG |
| | struct ggml_tensor * allocated_tensors[1024]; |
| | #endif |
| | }; |
| |
|
| | #ifdef GGML_ALLOCATOR_DEBUG |
| | static void add_allocated_tensor(struct ggml_allocr * alloc, struct ggml_tensor * tensor) { |
| | for (int i = 0; i < 1024; i++) { |
| | if (alloc->allocated_tensors[i] == NULL) { |
| | alloc->allocated_tensors[i] = tensor; |
| | return; |
| | } |
| | } |
| | GGML_ASSERT(!"out of allocated_tensors"); |
| | } |
| | static void remove_allocated_tensor(struct ggml_allocr * alloc, struct ggml_tensor * tensor) { |
| | for (int i = 0; i < 1024; i++) { |
| | if (alloc->allocated_tensors[i] == tensor || |
| | (alloc->allocated_tensors[i] != NULL && alloc->allocated_tensors[i]->data == tensor->data)) { |
| | alloc->allocated_tensors[i] = NULL; |
| | return; |
| | } |
| | } |
| | printf("tried to free tensor %s not found\n", tensor->name); |
| | GGML_ASSERT(!"tensor not found"); |
| | } |
| | #endif |
| |
|
| | |
| | static bool ggml_allocr_is_own(struct ggml_allocr * alloc, const struct ggml_tensor * tensor) { |
| | return tensor->buffer == alloc->buffer; |
| | } |
| |
|
| | static bool ggml_is_view(struct ggml_tensor * t) { |
| | return t->view_src != NULL; |
| | } |
| |
|
| | void ggml_allocr_alloc(struct ggml_allocr * alloc, struct ggml_tensor * tensor) { |
| | GGML_ASSERT(!ggml_is_view(tensor)); |
| | GGML_ASSERT(tensor->data == NULL); |
| |
|
| | size_t size = ggml_backend_buffer_get_alloc_size(alloc->buffer, tensor); |
| | size = aligned_offset(NULL, size, alloc->alignment); |
| |
|
| | AT_PRINTF("%s: allocating %s (%zu bytes) - ", __func__, tensor->name, size); |
| |
|
| | size_t max_avail = 0; |
| |
|
| | |
| | int best_fit_block = -1; |
| | size_t best_fit_size = SIZE_MAX; |
| | for (int i = 0; i < alloc->n_free_blocks - 1; i++) { |
| | struct free_block * block = &alloc->free_blocks[i]; |
| | max_avail = MAX(max_avail, block->size); |
| | if (block->size >= size && block->size <= best_fit_size) { |
| | best_fit_block = i; |
| | best_fit_size = block->size; |
| | } |
| | } |
| |
|
| | AT_PRINTF("block %d\n", best_fit_block); |
| |
|
| | if (best_fit_block == -1) { |
| | |
| | struct free_block * block = &alloc->free_blocks[alloc->n_free_blocks - 1]; |
| | max_avail = MAX(max_avail, block->size); |
| | if (block->size >= size) { |
| | best_fit_block = alloc->n_free_blocks - 1; |
| | } else { |
| | fprintf(stderr, "%s: not enough space in the buffer (needed %zu, largest block available %zu)\n", |
| | __func__, size, max_avail); |
| | GGML_ASSERT(!"not enough space in the buffer"); |
| | return; |
| | } |
| | } |
| | struct free_block * block = &alloc->free_blocks[best_fit_block]; |
| | void * addr = block->addr; |
| | block->addr = (char*)block->addr + size; |
| | block->size -= size; |
| | if (block->size == 0) { |
| | |
| | alloc->n_free_blocks--; |
| | for (int j = best_fit_block; j < alloc->n_free_blocks; j++) { |
| | alloc->free_blocks[j] = alloc->free_blocks[j+1]; |
| | } |
| | } |
| |
|
| | tensor->data = addr; |
| | AT_PRINTF("%s: allocated data at %p\n", __func__, tensor->data); |
| | tensor->buffer = alloc->buffer; |
| | ggml_backend_buffer_init_tensor(alloc->buffer, tensor); |
| |
|
| | #ifdef GGML_ALLOCATOR_DEBUG |
| | add_allocated_tensor(alloc, tensor); |
| | size_t cur_max = (char*)addr - (char*)alloc->data + size; |
| | if (cur_max > alloc->max_size) { |
| | printf("max_size = %.2f MB: tensors: ", cur_max / 1024.0 / 1024.0); |
| | for (int i = 0; i < 1024; i++) { |
| | if (alloc->allocated_tensors[i]) { |
| | printf("%s (%.2f MB) ", alloc->allocated_tensors[i]->name, ggml_nbytes(alloc->allocated_tensors[i]) / 1024.0 / 1024.0); |
| | } |
| | } |
| | printf("\n"); |
| | } |
| | #endif |
| |
|
| | alloc->max_size = MAX(alloc->max_size, (char*)addr - (char*)alloc->data + size); |
| | } |
| |
|
| | |
| | static void ggml_allocr_free_tensor(struct ggml_allocr * alloc, struct ggml_tensor * tensor) { |
| | if (ggml_allocr_is_own(alloc, tensor) == false) { |
| | |
| | |
| | |
| | AT_PRINTF("ignoring %s (their buffer: %p, our buffer: %p)\n", tensor->name, (void *)tensor->buffer, (void *)alloc->buffer); |
| | return; |
| | } |
| |
|
| | void * ptr = tensor->data; |
| |
|
| | size_t size = ggml_backend_buffer_get_alloc_size(alloc->buffer, tensor); |
| | size = aligned_offset(NULL, size, alloc->alignment); |
| | AT_PRINTF("%s: freeing %s at %p (%zu bytes) - n_free_blocks = %d\n", __func__, tensor->name, ptr, size, alloc->n_free_blocks); |
| |
|
| | ggml_backend_buffer_free_tensor(alloc->buffer, tensor); |
| |
|
| | #ifdef GGML_ALLOCATOR_DEBUG |
| | remove_allocated_tensor(alloc, tensor); |
| | #endif |
| |
|
| | |
| | for (int i = 0; i < alloc->n_free_blocks; i++) { |
| | struct free_block * block = &alloc->free_blocks[i]; |
| | |
| | if ((char*)block->addr + block->size == ptr) { |
| | block->size += size; |
| | |
| | if (i < alloc->n_free_blocks - 1 && (char*)block->addr + block->size == alloc->free_blocks[i+1].addr) { |
| | block->size += alloc->free_blocks[i+1].size; |
| | alloc->n_free_blocks--; |
| | for (int j = i+1; j < alloc->n_free_blocks; j++) { |
| | alloc->free_blocks[j] = alloc->free_blocks[j+1]; |
| | } |
| | } |
| | return; |
| | } |
| | |
| | if ((char*)ptr + size == block->addr) { |
| | block->addr = ptr; |
| | block->size += size; |
| | |
| | if (i > 0 && (char*)alloc->free_blocks[i-1].addr + alloc->free_blocks[i-1].size == block->addr) { |
| | alloc->free_blocks[i-1].size += block->size; |
| | alloc->n_free_blocks--; |
| | for (int j = i; j < alloc->n_free_blocks; j++) { |
| | alloc->free_blocks[j] = alloc->free_blocks[j+1]; |
| | } |
| | } |
| | return; |
| | } |
| | } |
| | |
| | GGML_ASSERT(alloc->n_free_blocks < MAX_FREE_BLOCKS && "out of free blocks"); |
| | |
| | int insert_pos = 0; |
| | while (insert_pos < alloc->n_free_blocks && alloc->free_blocks[insert_pos].addr < ptr) { |
| | insert_pos++; |
| | } |
| | |
| | for (int i = alloc->n_free_blocks; i > insert_pos; i--) { |
| | alloc->free_blocks[i] = alloc->free_blocks[i-1]; |
| | } |
| | |
| | alloc->free_blocks[insert_pos].addr = ptr; |
| | alloc->free_blocks[insert_pos].size = size; |
| | alloc->n_free_blocks++; |
| | } |
| |
|
| | void ggml_allocr_set_parse_seq(struct ggml_allocr * alloc, const int * list, int n) { |
| | for (int i = 0; i < n; i++) { |
| | alloc->parse_seq[i] = list[i]; |
| | } |
| | alloc->parse_seq_len = n; |
| | } |
| |
|
| | void ggml_allocr_reset(struct ggml_allocr * alloc) { |
| | alloc->n_free_blocks = 1; |
| | size_t align_offset = aligned_offset(alloc->data, 0, alloc->alignment); |
| | alloc->free_blocks[0].addr = (char *)alloc->data + align_offset; |
| | alloc->free_blocks[0].size = ggml_backend_buffer_get_size(alloc->buffer) - align_offset; |
| | } |
| |
|
| | struct ggml_allocr * ggml_allocr_new(void * data, size_t size, size_t alignment) { |
| | struct ggml_backend_buffer * buffer = ggml_backend_cpu_buffer_from_ptr(NULL, data, size); |
| |
|
| | struct ggml_allocr * alloc = (struct ggml_allocr *)malloc(sizeof(struct ggml_allocr)); |
| |
|
| | *alloc = (struct ggml_allocr){ |
| | buffer, |
| | true, |
| | ggml_backend_buffer_get_base(buffer), |
| | alignment, |
| | 0, |
| | {{0}}, |
| | {{0}}, |
| | 0, |
| | false, |
| | {0}, |
| | 0, |
| | #ifdef GGML_ALLOCATOR_DEBUG |
| | {0}, |
| | #endif |
| | }; |
| |
|
| | ggml_allocr_reset(alloc); |
| |
|
| | return alloc; |
| | } |
| |
|
| | struct ggml_allocr * ggml_allocr_new_measure(size_t alignment) { |
| | struct ggml_allocr * alloc = ggml_allocr_new((void *)0x1000, (size_t)-0x1001, alignment); |
| | alloc->measure = true; |
| |
|
| | return alloc; |
| | } |
| |
|
| | struct ggml_allocr * ggml_allocr_new_from_buffer(struct ggml_backend_buffer * buffer) { |
| | struct ggml_allocr * alloc = (struct ggml_allocr *)malloc(sizeof(struct ggml_allocr)); |
| |
|
| | *alloc = (struct ggml_allocr){ |
| | buffer, |
| | false, |
| | ggml_backend_buffer_get_base(buffer), |
| | ggml_backend_buffer_get_alignment(buffer), |
| | 0, |
| | {{0}}, |
| | {{0}}, |
| | 0, |
| | false, |
| | {0}, |
| | 0, |
| | #ifdef GGML_ALLOCATOR_DEBUG |
| | {0}, |
| | #endif |
| | }; |
| |
|
| | ggml_allocr_reset(alloc); |
| |
|
| | return alloc; |
| | } |
| |
|
| | void ggml_allocr_free(struct ggml_allocr * alloc) { |
| | if (alloc->buffer_owned) { |
| | ggml_backend_buffer_free(alloc->buffer); |
| | } |
| | free(alloc); |
| | } |
| |
|
| | bool ggml_allocr_is_measure(struct ggml_allocr * alloc) { |
| | return alloc->measure; |
| | } |
| |
|
| | |
| |
|
| | static bool ggml_are_same_layout(const struct ggml_tensor * a, const struct ggml_tensor * b) { |
| | if (a->type != b->type) { |
| | return false; |
| | } |
| | for (int i = 0; i < GGML_MAX_DIMS; i++) { |
| | if (a->ne[i] != b->ne[i]) { |
| | return false; |
| | } |
| | if (a->nb[i] != b->nb[i]) { |
| | return false; |
| | } |
| | } |
| | return true; |
| | } |
| |
|
| | static bool ggml_op_can_inplace(enum ggml_op op) { |
| | switch (op) { |
| | case GGML_OP_SCALE: |
| | case GGML_OP_DIAG_MASK_ZERO: |
| | case GGML_OP_DIAG_MASK_INF: |
| | case GGML_OP_ADD: |
| | case GGML_OP_ADD1: |
| | case GGML_OP_SUB: |
| | case GGML_OP_MUL: |
| | case GGML_OP_DIV: |
| | case GGML_OP_SQR: |
| | case GGML_OP_SQRT: |
| | case GGML_OP_LOG: |
| | case GGML_OP_UNARY: |
| | case GGML_OP_ROPE: |
| | case GGML_OP_RMS_NORM: |
| | case GGML_OP_SOFT_MAX: |
| | return true; |
| |
|
| | default: |
| | return false; |
| | } |
| | } |
| |
|
| | static void init_view(struct ggml_allocr * alloc, struct ggml_tensor * view) { |
| | assert(view->view_src != NULL && view->view_src->data != NULL); |
| | view->backend = view->view_src->backend; |
| | view->buffer = view->view_src->buffer; |
| | view->data = (char *)view->view_src->data + view->view_offs; |
| |
|
| | |
| | |
| | assert(ggml_allocr_is_measure(alloc) || !view->buffer || view->buffer->backend == alloc->buffer->backend); |
| | ggml_backend_buffer_init_tensor(alloc->buffer, view); |
| | } |
| |
|
| | static void allocate_node(struct ggml_allocr * alloc, struct ggml_tensor * node) { |
| | struct hash_node * ht = alloc->hash_table; |
| | if (node->data == NULL) { |
| | if (ggml_is_view(node)) { |
| | init_view(alloc, node); |
| | } else { |
| | |
| | if (ggml_op_can_inplace(node->op)) { |
| | for (int i = 0; i < GGML_MAX_SRC; i++) { |
| | struct ggml_tensor * parent = node->src[i]; |
| | if (parent == NULL) { |
| | break; |
| | } |
| |
|
| | |
| | if (ggml_allocr_is_own(alloc, parent) == false) { |
| | AT_PRINTF("not reusing parent %s for %s as %p is external\n", parent->name, node->name, parent->data); |
| | continue; |
| | } |
| |
|
| | struct hash_node * p_hn = hash_get(ht, parent); |
| | if (parent->data != NULL && p_hn->n_children == 1 && p_hn->n_views == 0 && ggml_are_same_layout(node, parent)) { |
| | if (ggml_is_view(parent)) { |
| | struct ggml_tensor * view_src = parent->view_src; |
| | struct hash_node * view_src_hn = hash_get(ht, view_src); |
| | if (view_src_hn->n_views == 1 && view_src_hn->n_children == 0 && view_src->data == parent->data) { |
| | |
| | |
| | |
| | |
| | |
| | AT_PRINTF("reusing view parent %s (%s) for %s\n", parent->name, view_src->name, node->name); |
| | node->view_src = view_src; |
| | view_src_hn->n_views += 1; |
| | init_view(alloc, node); |
| | return; |
| | } |
| | } |
| | else { |
| | AT_PRINTF("reusing parent %s for %s\n", parent->name, node->name); |
| | node->view_src = parent; |
| | p_hn->n_views += 1; |
| | init_view(alloc, node); |
| | return; |
| | } |
| | } |
| | } |
| | } |
| | ggml_allocr_alloc(alloc, node); |
| | } |
| | } |
| | } |
| |
|
| | size_t ggml_allocr_alloc_graph_n( |
| | struct ggml_allocr * alloc, |
| | struct ggml_cgraph ** graphs, int n_graphs, |
| | struct ggml_tensor *** inputs, struct ggml_tensor *** outputs) { |
| |
|
| | |
| | struct hash_node * ht = alloc->hash_table; |
| | memset(ht, 0, sizeof(struct hash_node) * GGML_GRAPH_HASHTABLE_SIZE); |
| |
|
| | |
| | for (int g = 0; g < n_graphs; g++) { |
| | struct ggml_cgraph * gf = graphs[g]; |
| | for (int i = 0; i < gf->n_nodes; i++) { |
| | struct ggml_tensor * node = gf->nodes[i]; |
| |
|
| | if (ggml_is_view(node)) { |
| | struct ggml_tensor * view_src = node->view_src; |
| | hash_get(ht, view_src)->n_views += 1; |
| | if (node->buffer == NULL && node->data != NULL) { |
| | |
| | init_view(alloc, node); |
| | } |
| | } |
| |
|
| | for (int j = 0; j < GGML_MAX_SRC; j++) { |
| | struct ggml_tensor * parent = node->src[j]; |
| | if (parent == NULL) { |
| | break; |
| | } |
| | hash_get(ht, parent)->n_children += 1; |
| | if (ggml_is_view(parent) && parent->buffer == NULL && parent->data != NULL) { |
| | init_view(alloc, parent); |
| | } |
| | } |
| | } |
| | } |
| |
|
| | |
| | for (int g = 0; g < n_graphs; g++) { |
| | struct ggml_cgraph * gf = graphs[g]; |
| | AT_PRINTF("####### graph %d/%d\n", g, n_graphs); |
| | |
| | if (inputs != NULL && inputs[g] != NULL) { |
| | for (int i = 0; inputs[g][i] != NULL; i++) { |
| | struct ggml_tensor * input = inputs[g][i]; |
| | AT_PRINTF("input: %s\n", input->name); |
| | allocate_node(alloc, input); |
| | } |
| | } |
| | |
| | int last_barrier_pos = 0; |
| | int n_nodes = alloc->parse_seq_len ? alloc->parse_seq_len : gf->n_nodes; |
| |
|
| | for (int ind = 0; ind < n_nodes; ind++) { |
| | |
| | if ((alloc->parse_seq_len==0) || alloc->parse_seq[ind] != -1) { |
| | int i = alloc->parse_seq_len ? alloc->parse_seq[ind] : ind; |
| | struct ggml_tensor * node = gf->nodes[i]; |
| |
|
| | |
| | for (int j = 0; j < GGML_MAX_SRC; j++) { |
| | struct ggml_tensor * parent = node->src[j]; |
| | if (parent == NULL) { |
| | break; |
| | } |
| | allocate_node(alloc, parent); |
| | } |
| |
|
| | |
| | allocate_node(alloc, node); |
| |
|
| | AT_PRINTF("exec: %s (%s) <= ", ggml_op_name(node->op), node->name); |
| | for (int j = 0; j < GGML_MAX_SRC; j++) { |
| | struct ggml_tensor * parent = node->src[j]; |
| | if (parent == NULL) { |
| | break; |
| | } |
| | AT_PRINTF("%s", parent->name); |
| | if (j < GGML_MAX_SRC - 1 && node->src[j + 1] != NULL) { |
| | AT_PRINTF(", "); |
| | } |
| | } |
| | AT_PRINTF("\n"); |
| | } |
| |
|
| | |
| | |
| | |
| | if ((alloc->parse_seq_len == 0) || alloc->parse_seq[ind] == -1) { |
| | int update_start = alloc->parse_seq_len ? last_barrier_pos : ind; |
| | int update_end = alloc->parse_seq_len ? ind : ind + 1; |
| | for (int i = update_start; i < update_end; i++) { |
| | int node_i = alloc->parse_seq_len ? alloc->parse_seq[i] : i; |
| | struct ggml_tensor * node = gf->nodes[node_i]; |
| |
|
| | for (int j = 0; j < GGML_MAX_SRC; j++) { |
| | struct ggml_tensor * parent = node->src[j]; |
| | if (parent == NULL) { |
| | break; |
| | } |
| | struct hash_node * p_hn = hash_get(ht, parent); |
| | p_hn->n_children -= 1; |
| |
|
| | |
| |
|
| | if (p_hn->n_children == 0 && p_hn->n_views == 0) { |
| | if (ggml_is_view(parent)) { |
| | struct ggml_tensor * view_src = parent->view_src; |
| | struct hash_node * view_src_hn = hash_get(ht, view_src); |
| | view_src_hn->n_views -= 1; |
| | AT_PRINTF("view_src %s: %d children, %d views\n", view_src->name, view_src_hn->n_children, view_src_hn->n_views); |
| | if (view_src_hn->n_views == 0 && view_src_hn->n_children == 0 && view_src->data != node->data) { |
| | ggml_allocr_free_tensor(alloc, view_src); |
| | } |
| | } |
| | else { |
| | if (parent->data != node->data) { |
| | ggml_allocr_free_tensor(alloc, parent); |
| | } |
| | } |
| | } |
| | } |
| | } |
| | AT_PRINTF("\n"); |
| | if (alloc->parse_seq_len) { |
| | last_barrier_pos = ind + 1; |
| | } |
| | } |
| | } |
| | |
| | if (outputs != NULL && outputs[g] != NULL) { |
| | for (int i = 0; outputs[g][i] != NULL; i++) { |
| | struct ggml_tensor * output = outputs[g][i]; |
| | AT_PRINTF("output: %s\n", output->name); |
| | ggml_allocr_free_tensor(alloc, output); |
| | } |
| | } |
| | } |
| |
|
| | return alloc->max_size; |
| | } |
| |
|
| | size_t ggml_allocr_alloc_graph(struct ggml_allocr * alloc, struct ggml_cgraph * graph) { |
| | return ggml_allocr_alloc_graph_n(alloc, &graph, 1, NULL, NULL); |
| | } |
| |
|
| | size_t ggml_allocr_max_size(struct ggml_allocr * alloc) { |
| | return alloc->max_size; |
| | } |
| |
|