0454. 四数相加 II【中等】
1. 📝 题目描述
给你四个整数数组 nums1、nums2、nums3 和 nums4,数组长度都是 n,请你计算有多少个元组 (i, j, k, l) 能满足:
0 <= i, j, k, l < nnums1[i] + nums2[j] + nums3[k] + nums4[l] == 0
示例 1:
txt
输入:nums1 = [1,2], nums2 = [-2,-1], nums3 = [-1,2], nums4 = [0,2]
输出:2
解释:
两个元组如下:
1. (0, 0, 0, 1) -> nums1[0] + nums2[0] + nums3[0] + nums4[1] = 1 + (-2) + (-1) + 2 = 0
2. (1, 1, 0, 0) -> nums1[1] + nums2[1] + nums3[0] + nums4[0] = 2 + (-1) + (-1) + 0 = 01
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示例 2:
txt
输入:nums1 = [0], nums2 = [0], nums3 = [0], nums4 = [0]
输出:11
2
2
提示:
n == nums1.lengthn == nums2.lengthn == nums3.lengthn == nums4.length1 <= n <= 200-2^28 <= nums1[i], nums2[i], nums3[i], nums4[i] <= 2^28
2. 🎯 s.1 - 哈希表分组
c
#define HASH_SIZE 100003
typedef struct Entry { int key; int val; struct Entry* next; } Entry;
Entry* table[HASH_SIZE];
void addVal(int key, int delta) {
int idx = ((unsigned int)key) % HASH_SIZE;
for (Entry* e = table[idx]; e; e = e->next)
if (e->key == key) { e->val += delta; return; }
Entry* e = (Entry*)malloc(sizeof(Entry));
e->key = key; e->val = delta; e->next = table[idx]; table[idx] = e;
}
int getVal(int key) {
int idx = ((unsigned int)key) % HASH_SIZE;
for (Entry* e = table[idx]; e; e = e->next)
if (e->key == key) return e->val;
return 0;
}
int fourSumCount(int* nums1, int nums1Size, int* nums2, int nums2Size,
int* nums3, int nums3Size, int* nums4, int nums4Size) {
memset(table, 0, sizeof(table));
for (int i = 0; i < nums1Size; i++)
for (int j = 0; j < nums2Size; j++)
addVal(nums1[i] + nums2[j], 1);
int res = 0;
for (int i = 0; i < nums3Size; i++)
for (int j = 0; j < nums4Size; j++)
res += getVal(-nums3[i] - nums4[j]);
// free
for (int i = 0; i < HASH_SIZE; i++) {
Entry* e = table[i];
while (e) { Entry* t = e; e = e->next; free(t); }
}
return res;
}1
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js
/**
* @param {number[]} nums1
* @param {number[]} nums2
* @param {number[]} nums3
* @param {number[]} nums4
* @return {number}
*/
var fourSumCount = function (nums1, nums2, nums3, nums4) {
const map = new Map()
for (const a of nums1)
for (const b of nums2) map.set(a + b, (map.get(a + b) || 0) + 1)
let res = 0
for (const c of nums3) for (const d of nums4) res += map.get(-c - d) || 0
return res
}1
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py
class Solution:
def fourSumCount(self, nums1: List[int], nums2: List[int], nums3: List[int], nums4: List[int]) -> int:
ab = Counter(a + b for a in nums1 for b in nums2)
return sum(ab.get(-c - d, 0) for c in nums3 for d in nums4)1
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- 时间复杂度:
- 空间复杂度:
算法思路:
- 将四个数组分为两组,先枯举 AB 两数之和存入哈希表
- 再枯举 CD 两数之和,查找
-(c+d)在哈希表中的出现次数