给你一个整数数组 nums ,数组中的元素 互不相同 。返回该数组所有可能的子集(幂集)。
解集 不能 包含重复的子集。你可以按 任意顺序 返回解集。
思路一:回溯
void backtracking(int* nums, int numsSize, int** res, int* returnSize, int** returnColumnSizes,
int* path, int pathSize, int startIndex) {
res[*returnSize] = (int*)malloc(sizeof(int) * pathSize);
memcpy(res[*returnSize], path, sizeof(int) * pathSize);
(*returnColumnSizes)[*returnSize] = pathSize;
(*returnSize)++;
for (int i = startIndex; i < numsSize; i++) {
path[pathSize] = nums[i];
backtracking(nums, numsSize, res, returnSize, returnColumnSizes, path, pathSize + 1, i + 1);
}
}
int** subsets(int* nums, int numsSize, int* returnSize, int** returnColumnSizes) {
*returnSize = 0;
*returnColumnSizes = (int*)malloc(sizeof(int) * 10001);
int** res = (int**)malloc(sizeof(int*) * 10001);
int* path = (int*)malloc(sizeof(int) * numsSize);
backtracking(nums, numsSize, res, returnSize, returnColumnSizes, path, 0, 0);
return res;
}分析:
本题与上一题相似,利用回溯算法将数组内子集全部列出即可,path[pathSize] = nums[i];
backtracking(nums, numsSize, res, returnSize, returnColumnSizes, path, pathSize + 1, i + 1);将子集全部列出,最后返回res
总结:
本题考察回溯的应用,将子集按顺序全部列出即可解决