leetcode -- Substring with Concatenation of All Words -- 思路简单,再做一遍

https://leetcode.com/problems/substring-with-concatenation-of-all-words/

思路很容易,写对不容易。再做一遍。

逐个i判断是否为res_ind,然后对于每一个i都试探每个wordLen长的substring是否在L中。这里要注意L中可能有重复的words,所以不能简单的判断word是否在L中

http://www.cnblogs.com/zuoyuan/p/3779978.html

class Solution:
    # @param S, a string
    # @param L, a list of string
    # @return a list of integer
    def findSubstring(self, S, L):
        words={}
        wordNum=len(L)
        for i in L:
            if i not in words:
                words[i]=1
            else:
                words[i]+=1
        wordLen=len(L[0])
        res=[]
        for i in range(len(S)+1-wordLen*wordNum):#因为要找wordLen*wordNum这个长度的substring的start index,i最后一个可能的值就是len(S)-wordLen*wordNum
            curr={}; j=0
            while j<wordNum:
                word=S[i+j*wordLen:i+j*wordLen+wordLen]
                if word not in words: 
                    break
                if word not in curr: 
                    curr[word]=1
                else:
                    curr[word]+=1
                if curr[word]>words[word]: break
                j+=1
            if j==wordNum: res.append(i)
        return res

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