Files
cKit/Sort/c_MinPQ.c
T
2026-08-30 22:24:45 +08:00

199 lines
5.4 KiB
C

#include <c_MinPQ.h>
/**
* @brief 内部原子操作:泛型就地物理内存块高效率互换
*/
C_STATIC_FORCE_INLINE
void c_MinPQ_InternalSwap(void* a, void* b, c_size_t size) {
if (a == b) return;
char* p1 = (char*)a;
char* p2 = (char*)b;
char temp_buf[256];
c_size_t bytes_left = size;
while (bytes_left > 0) {
c_size_t chunk = (bytes_left < sizeof(temp_buf)) ? bytes_left : sizeof(temp_buf);
memcpy(temp_buf, p1, chunk);
memcpy(p1, p2, chunk);
memcpy(p2, temp_buf, chunk);
p1 += chunk;
p2 += chunk;
bytes_left -= chunk;
}
}
/**
* @brief 核心堆序自适应上浮调整(Sift Up)
*/
static void c_MinPQ_SiftUp(c_MinPQ_t* pq, c_size_t child) {
char* array = pq->data;
c_size_t es = pq->elem_size;
// 严格限制 child > 0 边界,斩断减法下溢
while (child > 0) {
c_size_t parent = (child - 1) >> 1;
char* p_child = array + (child * es);
char* p_parent = array + (parent * es);
// 🌟【最小堆核心调整】:若子节点的值“小于”父节点的值,向上置换顶推
if (pq->cmp(p_child, p_parent, pq->args) < 0) {
c_MinPQ_InternalSwap(p_child, p_parent, es);
child = parent;
} else {
break;
}
}
}
/**
* @brief 核心堆序自适应下沉调整(Sift Down)
*/
static void c_MinPQ_SiftDown(c_MinPQ_t* pq, c_size_t parent) {
char* array = pq->data;
c_size_t es = pq->elem_size;
c_size_t num = pq->size;
while (1) {
c_size_t left_child = (parent << 1) + 1;
if (left_child >= num) {
break; // 越界前置拦截,防止后面加法导致的整数溢出
}
c_size_t smaller_child = left_child;
c_size_t right_child = left_child + 1;
if (right_child < num) {
char* p_left = array + (left_child * es);
char* p_right = array + (right_child * es);
// 🌟【最小堆核心调整】:若右子节点的值比左子节点还“小”,切换最小目标到右半区
if (pq->cmp(p_right, p_left, pq->args) < 0) {
smaller_child = right_child;
}
}
char* p_parent = array + (parent * es);
char* p_target = array + (smaller_child * es);
// 🌟【最小堆核心调整】:若最小子节点依然“小于”当前的父节点,下沉对调
if (pq->cmp(p_target, p_parent, pq->args) < 0) {
c_MinPQ_InternalSwap(p_parent, p_target, es);
parent = smaller_child;
} else {
break;
}
}
}
/* ------------------------------------------------------------------------------------------------------------------ */
/* */
/**
* @brief 就地初始化最小堆优先队列
*/
c_err_t c_MinPQ_Init(c_MinPQ_t* self, c_size_t initial_capacity, c_size_t elem_size, c_SortCompare_t cmp, void* args, c_Allocator_t* allocator) {
if (!self || elem_size == 0 || !cmp) {
return C_ERR_PARAM;
}
c_size_t cap = (initial_capacity > 0) ? initial_capacity : 4;
// 自适应缺省降级安全播种
if (allocator) {
self->allocator = *allocator;
} else {
self->allocator = c_DefaultAllocator;
}
self->data = (char*)c_Allocator_Alloc(&self->allocator, cap * elem_size);
if (!self->data) {
return C_ERR_NOMEM;
}
self->capacity = cap;
self->size = 0;
self->elem_size = elem_size;
self->cmp = cmp;
self->args = args;
return C_ERR_OK;
}
/**
* @brief 向最小堆中压入一个新元素(自适应双倍托管 Realloc 动态扩容)
*/
c_err_t c_MinPQ_Push(c_MinPQ_t* pq, const void* item) {
if (!pq || !item) return C_ERR_PARAM;
if (pq->size >= pq->capacity) {
c_size_t old_cap = pq->capacity;
c_size_t new_cap = old_cap << 1;
c_size_t old_bytes = old_cap * pq->elem_size;
c_size_t new_bytes = new_cap * pq->elem_size;
char* new_data = (char*)c_Allocator_Realloc(&pq->allocator, pq->data, old_bytes, new_bytes);
if (!new_data) return C_ERR_NOMEM;
pq->data = new_data;
pq->capacity = new_cap;
}
char* target_slot = pq->data + (pq->size * pq->elem_size);
memcpy(target_slot, item, pq->elem_size);
c_MinPQ_SiftUp(pq, pq->size);
pq->size++;
return C_ERR_OK;
}
/**
* @brief 弹出并捕获当前最小堆中的绝对最小值元素(堆顶)
*/
c_err_t c_MinPQ_Pop(c_MinPQ_t* pq, void* out_item) {
if (!pq ) return C_ERR_PARAM;
if (pq->size == 0) {
return C_ERR_EMPTY;
}
char* array = pq->data;
c_size_t es = pq->elem_size;
if (out_item) {
memcpy(out_item, array, es);
}
pq->size--;
if (pq->size > 0) {
memcpy(array, array + (pq->size * es), es);
c_MinPQ_SiftDown(pq, 0);
}
return C_ERR_OK;
}
/**
* @brief 观察读取但不弹出最小堆堆顶绝对最小值元素
*/
c_err_t c_MinPQ_Peek(const c_MinPQ_t* pq, void* out_item) {
if (!pq || !out_item) return C_ERR_PARAM;
if (pq->size == 0) return C_ERR_EMPTY;
memcpy(out_item, pq->data, pq->elem_size);
return C_ERR_OK;
}
/**
* @brief 资源回收反初始化
*/
void c_MinPQ_Destroy(c_MinPQ_t* pq) {
if (pq && pq->data) {
c_Allocator_Free(&pq->allocator, pq->data);
pq->data = NULL;
pq->size = 0;
pq->capacity = 0;
}
}