Leetcode #30. Substring with Concatenation of All Words 连续子串查找 解题报告
1 解题思想
题目说给了一个原串,然后给了一组单词,让你从这个原串当中找一个区间,这个区间正好包含了这些所有的单词,不能交叉,不能有多余的值
这道题是我在Leetcode 刷的最艰辛的一道题,我可能不适合这种风格的,最后我给的AC代码,有时候也可能会超时
网上有说做法是用滑动窗口。。可能吧。。我看不懂
所以我就是用了一个低级滑动窗口。。然后使用哈希加速,窗口期间按照顺序查看是否存在,是否满足条件,不满足的话就移动。。有点蠢?
2 原题
Substring with Concatenation of All Words
You are given a string, s, and a list of words, words, that are all of the same length. Find all starting indices of substring(s) in s that is a concatenation of each word in words exactly once and without any intervening characters.
For example, given:
s: “barfoothefoobarman”
words: [“foo”, “bar”]
You should return the indices: [0,9].
(order does not matter).
3 AC解
public class Solution {
/**
* 两个指针 解法不太好
* **/
public List<Integer> findSubstring(String s, String[] words) {
HashMap<String,Integer> map=new HashMap<String,Integer>();
List<String> allwords=new ArrayList<String>();
int n=s.length(),m=words.length,len=words[0].length();
int i,j,k;
for(i=0;i<m;i++){
if(map.containsKey(words[i])){
map.put(words[i],map.get(words[i])+1);
}
else{
map.put(words[i],1);
}
}
for( i=0;i<=n-len;i++){
allwords.add(s.substring(i,i+len));
}
HashMap<String,Integer> tmpMap=(HashMap<String,Integer>)map.clone();
int start=0,end=0;
List<Integer> list=new ArrayList<Integer>();
while(start<=n-m*len ){
if(end-start==m*len){
list.add(start);
start++;
while(start<=n-m*len && map.containsKey(allwords.get(start))==false)
start++;
end=start;
tmpMap=(HashMap<String,Integer>)map.clone();
continue;
}
String part=allwords.get(end);
if(tmpMap.containsKey(part) && tmpMap.get(part)>0){
tmpMap.put(part,tmpMap.get(part)-1);
end+=len;
}
else{
start++;
while(start<=n-m*len && map.containsKey(allwords.get(start))==false)
start++;
end=start;
tmpMap=(HashMap<String,Integer>)map.clone();
}
}
return list;
}
}