360 lines
8.5 KiB
C
360 lines
8.5 KiB
C
// SPDX-FileCopyrightText: 2017-2020 maskray <i@maskray.me>
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// SPDX-FileCopyrightText: 2017-2020 thestr4ng3r <info@florianmaerkl.de>
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// SPDX-License-Identifier: LGPL-3.0-only
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#include "rz_vector.h"
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// Optimize memory usage on glibc
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#if __WORDSIZE == 32
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// Chunk size 24, minus 4 (chunk header), minus 8 for capacity and len, 12 bytes remaining for 3 void *
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#define INITIAL_VECTOR_LEN 3
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#else
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// For __WORDSIZE == 64
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// Chunk size 48, minus 8 (chunk header), minus 8 for capacity and len, 32 bytes remaining for 4 void *
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#define INITIAL_VECTOR_LEN 4
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#endif
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#define NEXT_VECTOR_CAPACITY (vec->capacity < INITIAL_VECTOR_LEN \
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? INITIAL_VECTOR_LEN \
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: vec->capacity <= 12 ? vec->capacity * 2 \
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: vec->capacity + (vec->capacity >> 1))
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#define RESIZE_OR_RETURN_NULL(next_capacity) \
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do { \
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size_t new_capacity = next_capacity; \
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void **new_a = realloc(vec->a, vec->elem_size * new_capacity); \
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if (!new_a && new_capacity) { \
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return NULL; \
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} \
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vec->a = new_a; \
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vec->capacity = new_capacity; \
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} while (0)
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RZ_API void rz_vector_init(RzVector *vec, size_t elem_size, RzVectorFree free, void *free_user) {
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rz_return_if_fail(vec);
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vec->a = NULL;
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vec->capacity = vec->len = 0;
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vec->elem_size = elem_size;
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vec->free = free;
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vec->free_user = free_user;
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}
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RZ_API RzVector *rz_vector_new(size_t elem_size, RzVectorFree free, void *free_user) {
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RzVector *vec = RZ_NEW(RzVector);
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if (!vec) {
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return NULL;
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}
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rz_vector_init(vec, elem_size, free, free_user);
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return vec;
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}
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static void vector_free_elems(RzVector *vec) {
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if (vec->free) {
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while (vec->len > 0) {
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vec->free(rz_vector_index_ptr(vec, --vec->len), vec->free_user);
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}
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} else {
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vec->len = 0;
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}
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}
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RZ_API void rz_vector_fini(RzVector *vec) {
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rz_return_if_fail(vec);
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rz_vector_clear(vec);
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vec->free = NULL;
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vec->free_user = NULL;
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}
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RZ_API void rz_vector_clear(RzVector *vec) {
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rz_return_if_fail(vec);
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vector_free_elems(vec);
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RZ_FREE(vec->a);
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vec->capacity = 0;
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}
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RZ_API void rz_vector_free(RzVector *vec) {
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if (vec) {
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rz_vector_fini(vec);
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free(vec);
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}
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}
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static bool vector_clone(RzVector *dst, RzVector *src) {
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rz_return_val_if_fail(dst && src, false);
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dst->capacity = src->capacity;
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dst->len = src->len;
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dst->elem_size = src->elem_size;
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dst->free = src->free;
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dst->free_user = src->free_user;
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if (!dst->len) {
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dst->a = NULL;
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} else {
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dst->a = malloc(src->elem_size * src->capacity);
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if (!dst->a) {
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return false;
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}
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memcpy(dst->a, src->a, src->elem_size * src->len);
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}
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return true;
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}
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RZ_API RzVector *rz_vector_clone(RzVector *vec) {
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rz_return_val_if_fail(vec, NULL);
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RzVector *ret = RZ_NEW(RzVector);
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if (!ret) {
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return NULL;
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}
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if (!vector_clone(ret, vec)) {
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free(ret);
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return NULL;
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}
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return ret;
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}
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RZ_API void rz_vector_assign(RzVector *vec, void *p, void *elem) {
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rz_return_if_fail(vec && p && elem);
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memcpy(p, elem, vec->elem_size);
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}
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RZ_API void *rz_vector_assign_at(RzVector *vec, size_t index, void *elem) {
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void *p = rz_vector_index_ptr(vec, index);
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if (elem) {
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rz_vector_assign(vec, p, elem);
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}
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return p;
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}
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RZ_API void rz_vector_remove_at(RzVector *vec, size_t index, void *into) {
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rz_return_if_fail(vec);
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void *p = rz_vector_index_ptr(vec, index);
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if (into) {
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rz_vector_assign(vec, into, p);
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}
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vec->len--;
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if (index < vec->len) {
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memmove(p, (char *)p + vec->elem_size, vec->elem_size * (vec->len - index));
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}
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}
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RZ_API void rz_vector_remove_range(RzVector *vec, size_t index, size_t count, void *into) {
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rz_return_if_fail(vec && index + count <= vec->len);
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void *p = rz_vector_index_ptr(vec, index);
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if (into) {
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memcpy(into, p, count * vec->elem_size);
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}
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vec->len -= count;
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if (index < vec->len) {
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memmove(p, (char *)p + vec->elem_size * count, vec->elem_size * (vec->len - index));
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}
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}
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RZ_API void *rz_vector_insert(RzVector *vec, size_t index, void *x) {
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rz_return_val_if_fail(vec && index <= vec->len, NULL);
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if (vec->len >= vec->capacity) {
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RESIZE_OR_RETURN_NULL(NEXT_VECTOR_CAPACITY);
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}
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void *p = rz_vector_index_ptr(vec, index);
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if (index < vec->len) {
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memmove((char *)p + vec->elem_size, p, vec->elem_size * (vec->len - index));
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}
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vec->len++;
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if (x) {
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rz_vector_assign(vec, p, x);
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}
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return p;
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}
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RZ_API void *rz_vector_insert_range(RzVector *vec, size_t index, void *first, size_t count) {
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rz_return_val_if_fail(vec && index <= vec->len, NULL);
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if (vec->len + count > vec->capacity) {
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RESIZE_OR_RETURN_NULL(RZ_MAX(NEXT_VECTOR_CAPACITY, vec->len + count));
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}
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size_t sz = count * vec->elem_size;
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void *p = rz_vector_index_ptr(vec, index);
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if (index < vec->len) {
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memmove((char *)p + sz, p, vec->elem_size * (vec->len - index));
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}
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vec->len += count;
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if (first) {
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memcpy(p, first, sz);
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}
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return p;
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}
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RZ_API void rz_vector_pop(RzVector *vec, void *into) {
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rz_return_if_fail(vec);
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if (into) {
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rz_vector_assign(vec, into, rz_vector_index_ptr(vec, vec->len - 1));
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}
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vec->len--;
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}
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RZ_API void rz_vector_pop_front(RzVector *vec, void *into) {
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rz_return_if_fail(vec);
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rz_vector_remove_at(vec, 0, into);
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}
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RZ_API void *rz_vector_push(RzVector *vec, void *x) {
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rz_return_val_if_fail(vec, NULL);
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if (vec->len >= vec->capacity) {
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RESIZE_OR_RETURN_NULL(NEXT_VECTOR_CAPACITY);
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}
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void *p = rz_vector_index_ptr(vec, vec->len++);
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if (x) {
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rz_vector_assign(vec, p, x);
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}
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return p;
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}
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RZ_API void *rz_vector_push_front(RzVector *vec, void *x) {
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rz_return_val_if_fail(vec, NULL);
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return rz_vector_insert(vec, 0, x);
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}
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RZ_API void *rz_vector_reserve(RzVector *vec, size_t capacity) {
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rz_return_val_if_fail(vec, NULL);
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if (vec->capacity < capacity) {
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RESIZE_OR_RETURN_NULL(capacity);
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}
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return vec->a;
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}
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RZ_API void *rz_vector_shrink(RzVector *vec) {
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rz_return_val_if_fail(vec, NULL);
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if (vec->len < vec->capacity) {
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RESIZE_OR_RETURN_NULL(vec->len);
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}
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return vec->a;
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}
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RZ_API void *rz_vector_flush(RzVector *vec) {
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rz_return_val_if_fail(vec, NULL);
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rz_vector_shrink(vec);
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void *r = vec->a;
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vec->a = NULL;
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vec->capacity = vec->len = 0;
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return r;
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}
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// pvector
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static void pvector_free_elem(void *e, void *user) {
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void *p = *((void **)e);
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RzPVectorFree elem_free = (RzPVectorFree)user;
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elem_free(p);
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}
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RZ_API void rz_pvector_init(RzPVector *vec, RzPVectorFree free) {
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rz_vector_init(&vec->v, sizeof(void *), free ? pvector_free_elem : NULL, free);
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}
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RZ_API RzPVector *rz_pvector_new(RzPVectorFree free) {
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RzPVector *v = RZ_NEW(RzPVector);
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if (!v) {
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return NULL;
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}
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rz_pvector_init(v, free);
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return v;
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}
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RZ_API RzPVector *rz_pvector_new_with_len(RzPVectorFree free, size_t length) {
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RzPVector *v = rz_pvector_new(free);
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if (!v) {
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return NULL;
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}
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void **p = rz_pvector_reserve(v, length);
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if (!p) {
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rz_pvector_free(v);
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return NULL;
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}
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memset(p, 0, v->v.elem_size * v->v.capacity);
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v->v.len = length;
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return v;
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}
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RZ_API void rz_pvector_clear(RzPVector *vec) {
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rz_return_if_fail(vec);
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rz_vector_clear(&vec->v);
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}
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RZ_API void rz_pvector_fini(RzPVector *vec) {
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rz_return_if_fail(vec);
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rz_vector_fini(&vec->v);
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}
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RZ_API void rz_pvector_free(RzPVector *vec) {
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if (!vec) {
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return;
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}
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rz_vector_fini(&vec->v);
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free(vec);
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}
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RZ_API void **rz_pvector_contains(RzPVector *vec, void *x) {
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rz_return_val_if_fail(vec, NULL);
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size_t i;
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for (i = 0; i < vec->v.len; i++) {
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if (((void **)vec->v.a)[i] == x) {
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return &((void **)vec->v.a)[i];
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}
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}
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return NULL;
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}
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RZ_API void *rz_pvector_remove_at(RzPVector *vec, size_t index) {
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rz_return_val_if_fail(vec, NULL);
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void *r = rz_pvector_at(vec, index);
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rz_vector_remove_at(&vec->v, index, NULL);
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return r;
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}
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RZ_API void rz_pvector_remove_data(RzPVector *vec, void *x) {
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void **el = rz_pvector_contains(vec, x);
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if (!el) {
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return;
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}
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size_t index = el - (void **)vec->v.a;
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rz_vector_remove_at(&vec->v, index, NULL);
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}
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RZ_API void *rz_pvector_pop(RzPVector *vec) {
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rz_return_val_if_fail(vec, NULL);
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void *r = rz_pvector_at(vec, vec->v.len - 1);
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rz_vector_pop(&vec->v, NULL);
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return r;
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}
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RZ_API void *rz_pvector_pop_front(RzPVector *vec) {
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rz_return_val_if_fail(vec, NULL);
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void *r = rz_pvector_at(vec, 0);
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rz_vector_pop_front(&vec->v, NULL);
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return r;
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}
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// CLRS Quicksort. It is slow, but simple.
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static void quick_sort(void **a, size_t n, RzPVectorComparator cmp) {
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if (n <= 1) {
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return;
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}
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size_t i = rand() % n, j = 0;
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void *t, *pivot = a[i];
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a[i] = a[n - 1];
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for (i = 0; i < n - 1; i++) {
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if (cmp(a[i], pivot) < 0) {
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t = a[i];
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a[i] = a[j];
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a[j] = t;
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j++;
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}
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}
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a[n - 1] = a[j];
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a[j] = pivot;
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quick_sort(a, j, cmp);
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quick_sort(a + j + 1, n - j - 1, cmp);
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}
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RZ_API void rz_pvector_sort(RzPVector *vec, RzPVectorComparator cmp) {
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rz_return_if_fail(vec && cmp);
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quick_sort(vec->v.a, vec->v.len, cmp);
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}
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