class Solution { public: vector<vector<int> > threeSum(vector<int> &num) { vector<vector<int> > res; int len = num.size(); sort(num.begin(), num.end()); vector<int> tmp(3, 0); for (int i=0; i<len; i++) { tmp[0] = num[i]; if (i != 0 && num[i] == num[i-1]) continue; // skip dup int rs = 0 - num[i]; int p = i + 1, q = len - 1; while (p<q) { if (p != i+1 && num[p] == num[p-1]) { p++; continue; // skip dup } if (q != len-1 && num[q] == num[q+1]) { q--; continue; // skip dup } int s = num[p] + num[q]; if (s < rs) { p++; } else if (s > rs) { q--; } else { tmp[1] = num[p]; tmp[2] = num[q]; res.push_back(tmp); p++, q--; } } } return res; } };
先暴力一下吧
第二轮:
Given an array S of n integers, are there elements a, b, c in S such that a + b + c = 0? Find all unique triplets in the array which gives the sum of zero.
Note:
- Elements in a triplet (a,b,c) must be in non-descending order. (ie, a ≤ b ≤ c)
- The solution set must not contain duplicate triplets.
For example, given array S = {-1 0 1 2 -1 -4},
A solution set is:
(-1, 0, 1)
(-1, -1, 2)
class Solution { public: vector<vector<int> > threeSum(vector<int> &num) { sort(num.begin(), num.end()); vector<vector<int> > res; int len = num.size(); if (len < 3) { return res; } for (int i=len-1; i>=2; i--) { if (i<len-1 && num[i] == num[i+1]) continue; int target = -num[i]; int p = 0; int q = i-1; while (p < q) { int t = num[p] + num[q]; if (t < target) { p++; } else if (t > target) { q--; } else { if (!res.empty() && res.back()[0] == num[p] && res.back()[1] == num[q] && res.back()[2] == num[i]) { } else { res.push_back(vector<int> ({num[p], num[q], num[i]})); } p++; } } } return res; } };