每日算法之三十六:Permutations && Permutations II
Given a collection of numbers, return all possible permutations.
For example,
[1,2,3] have the following permutations:
[1,2,3], [1,3,2], [2,1,3], [2,3,1], [3,1,2], and [3,2,1].
将第0个字符和从第0开始的每个字符进行交换,对于交换后的结果,再从第1个字符开始交换。一直到最后一个字符。
首先cur等于零,123进入循环内让第0个元素依次与第零个、第一个和第二个元素交换位置,生成排序树的三个分支是123()下面的分析以此分支为例、213和321,然后每一个分支把cue加1,进入下一次循环,从第一个开始与后面的第一个、第二个元素交换位置,分支是123,132(后续分析以此为例),然后cur变为2,满足条件就把132加入到结果集中。
<span style="font-size:18px;">class Solution {
public:
vector<vector<int> > permute(vector<int> &num) {
vector<vector<int> > ret;
dfs(ret, num, 0);
return ret;
}
void dfs(vector<vector<int> >& ret, vector<int>& num, int cur)
{
if(num.size()-1 == cur)
{
ret.push_back(num);
}
else
{
for(int i = cur; i < num.size(); ++i)
{
swap(num[cur], num[i]);
dfs(ret, num, cur+1);
swap(num[cur], num[i]);//还原
}
}
}
};</span>
Given a collection of numbers that might contain duplicates, return all possible unique permutations.
For example,
[1,1,2] have the following unique permutations:
[1,1,2], [1,2,1], and [2,1,1].
class Solution {
public:
void internalpermuteUnique(vector<int> &num, int index, vector<int> &perm, vector<vector<int> > &result) {
int size = num.size();
if (size == index) {
result.push_back(perm);
}
else {
for (int i = index; i < size; ++i) {
if ((i > index) && (num[i] == num[index])) {
continue;
}
else {
swap(num[index], num[i]);
}
perm.push_back(num[index]);
internalpermuteUnique(num, index + 1, perm, result);
perm.pop_back();
}
sort(num.begin() + index, num.end());
}
}
vector<vector<int> > permuteUnique(vector<int> &num) {
vector<vector<int> > result;
vector<int> perm;
sort(num.begin(), num.end());
internalpermuteUnique(num, 0, perm, result);
return result;
}
};