Leetcode: 76. Minimum Window Substring
Description
Given a string S and a string T, find the minimum window in S which will contain all the characters in T in complexity O(n).
For example,
S = "ADOBECODEBANC"
T = "ABC"
Minimum window is "BANC".
Note:
If there is no such window in S that covers all characters in T, return the empty string "".
If there are multiple such windows, you are guaranteed that there will always be only one unique minimum window in S.
思路
- 刚开始自己用unordered_map写了一个出来,159ms...
- 往上找了一个,用两个hash数组做的,确实比我叼。
代码
- unordered_map
class Solution {
public:
string minWindow(string s, string t) {
int slen = s.size(), tlen = t.size();
if (slen == 0 || tlen == 0) return "";
string res = "";
int start = 0, end = -1;
int i = 0;
unordered_map<char, int> tMap;
unordered_map<char, int> cMap;
unordered_map<char, int> helpMap;
for (i = 0; i < tlen; ++i)
tMap[t[i]]++;
i = 0;
while (i < slen){
if (tMap.find(s[i]) == tMap.end())
i++;
else break;
}
start = i;
while (i < slen){
if (tMap.count(s[i]) > 0){
helpMap[s[i]]++;
if (tMap[s[i]] > cMap[s[i]])
cMap[s[i]]++;
}
if (tMap == cMap){
do{
if (res == "" || res.size() > (i - start + 1)){
res = s.substr(start, i - start + 1);
}
if (cMap[s[start]] > 1)
cMap[s[start]]--;
else cMap.erase(s[start]);
if (helpMap[s[start]] > 1)
helpMap[s[start]]--;
else helpMap.erase(s[start]);
if (helpMap[s[start]] > cMap[s[start]])
cMap[s[start]]++;
int j = start + 1;
while (j <= i){
if (tMap.find(s[j]) == tMap.end())
j++;
else break;
}
start = j;
} while (cMap == tMap);
}
i++;
}
if (tMap == cMap && (res == "" || res.size() > (slen - start)))
res = s.substr(start, i - start + 1);
return res;
}
};
- hash数组
class Solution {
public:
string minWindow(string s, string t)
{
string res;
if (s.size() < t.size()) return res;
vector<int> flag(256, 0);
vector<int> hash(256, 0);
for(int i = 0; i < t.size(); ++i){
flag[t[i]]++;
hash[t[i]]++;
}
int count = 0;
int start = 0, minsize = s.size() + 1, minflag = -1;
for(int i = 0; i < s.size(); ++i){
if(flag[s[i]] > 0){
if(--hash[s[i]] >= 0) //这个地方
count++;
while(count == t.size()){
if(i - start + 1 < minsize){
minsize = i - start + 1;
minflag = start;
}
//这个地方,思路确实巧妙,不得不服
if(flag[s[start]] > 0){
if(++hash[s[start]] > 0)
--count;
}
++start;
}
}
}
if(minsize > s.size()) return "";
return s.substr(minflag, minsize);
}
};