LeetCode Repeated String Match
2017-10-18 06:16
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原题链接在这里:https://leetcode.com/problems/repeated-string-match/description/
题目:
Given two strings A and B, find the minimum number of times A has to be repeated such that B is a substring of it. If no such solution, return -1.
For example, with A = "abcd" and B = "cdabcdab".
Return 3, because by repeating A three times (“abcdabcdabcd”), B is a substring of it; and B is not a substring of A repeated two times ("abcdabcd").
Note:
The length of
题解:
A重复append自己知道比B长,看B是否包含在内,若包含返回当前count.
若没有再append次A. 若B能是substring, 这个长度已经可以包含所有可能性. B的开头在0到A.length()-1的任何位置都足够盖住B.
Time Complexity: O(A.length()+B.length()). create个长度为A.length()+B.length()的string. 再用B找index.
Space: O(A.length()+B.length()).
AC Java:
题目:
Given two strings A and B, find the minimum number of times A has to be repeated such that B is a substring of it. If no such solution, return -1.
For example, with A = "abcd" and B = "cdabcdab".
Return 3, because by repeating A three times (“abcdabcdabcd”), B is a substring of it; and B is not a substring of A repeated two times ("abcdabcd").
Note:
The length of
Aand
Bwill be between 1 and 10000.
题解:
A重复append自己知道比B长,看B是否包含在内,若包含返回当前count.
若没有再append次A. 若B能是substring, 这个长度已经可以包含所有可能性. B的开头在0到A.length()-1的任何位置都足够盖住B.
Time Complexity: O(A.length()+B.length()). create个长度为A.length()+B.length()的string. 再用B找index.
Space: O(A.length()+B.length()).
AC Java:
class Solution { public int repeatedStringMatch(String A, String B) { int count = 0; StringBuilder sb = new StringBuilder(); while(sb.length() < B.length()){ sb.append(A); count++; } if(sb.indexOf(B) >= 0){ return count; }else if(sb.append(A).indexOf(B) >= 0){ return count+1; }else{ return -1; } } }
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