Given four lists A, B, C, D of integer values, compute how many tuples (i, j, k, l) there are such that A[i] + B[j] + C[k] + D[l] is zero.
To make problem a bit easier, all A, B, C, D have same length of N where 0 ≤ N ≤ 500. All integers are in the range of -228 to 228 - 1 and the result is guaranteed to be at most 231 - 1.
Example:
Input: A = [ 1, 2] B = [-2,-1] C = [-1, 2] D = [ 0, 2] Output: 2 Explanation: The two tuples are: 1. (0, 0, 0, 1) -> A[0] + B[0] + C[0] + D[1] = 1 + (-2) + (-1) + 2 = 0 2. (1, 1, 0, 0) -> A[1] + B[1] + C[0] + D[0] = 2 + (-1) + (-1) + 0 = 0
Approach #1: burp force[Limted Time Exceeded]
class Solution {
public:
int fourSumCount(vector<int>& A, vector<int>& B, vector<int>& C, vector<int>& D) {
int len = A.size();
int count = 0;
for (int i = 0; i < len; ++i) {
for (int j = 0; j < len; ++j) {
for (int k = 0; k < len; ++k) {
for (int h = 0; h < len; ++h) {
if (A[i] + B[j] + C[k] + D[h] == 0)
count++;
}
}
}
}
return count;
}
};
Approach #2: Hash Table
class Solution {
public:
int fourSumCount(vector<int>& A, vector<int>& B, vector<int>& C, vector<int>& D) {
int count = 0;
map<int, int> ab_sum;
for (int a : A) {
for (int b : B) {
++ab_sum[a+b];
}
}
for (int c : C) {
for (int d : D) {
auto it = ab_sum.find(0-c-d);
if (it != ab_sum.end()) count += it->second;
}
}
return count;
}
};
Runtime: 248 ms, faster than 25.52% of C++ online submissions for 4Sum II.