标签:cas log blog return input ons use sam print
Consider the string s to be the infinite wraparound string of "abcdefghijklmnopqrstuvwxyz", so s will look like this: "...zabcdefghijklmnopqrstuvwxyzabcdefghijklmnopqrstuvwxyzabcd....".
Now we have another string p. Your job is to find out how many unique non-empty substrings of p are present in s. In particular, your input is the string p and you need to output the number of different non-empty substrings of p in the string s.
Note: p consists of only lowercase English letters and the size of p might be over 10000.
Example 1:
Input: "a"
Output: 1
Explanation: Only the substring "a" of string "a" is in the string �s.
Example 2:
Input: "cac"
Output: 2
Explanation: There are two substrings "a", "c" of string "cac" in the string s.
Example 3:
Input: "zab"
Output: 6
Explanation: There are six substrings "z", "a", "b", "za", "ab", "zab" of string "zab" in the string s.
Solution:
1. naive method to get all the substring from p and judge whether it is in the wrapround string
2. use DP
for naive method, there are lots of repetition
1) for string p: "abcd"
a => ends with "a", there are total 1 here
ab => ends with b, there are "ab", "b", total 2
abc => ends with c, there are "abc", "bc" , "c", total 3
abcd =>ends with d, there are "abcd", "bcd", "cd", "d" , total 4
the answer of the substring is 1+2+3+4
so the number of unique substirng of p in s is for every letter in p which has the maximum unique continuous substring end in each character and then sum,
but it needs to get rid of the duplicated one
2) if string p : "abcdabc"
the latter "abc" will be duplicated for ending character a, b, c.
therefore, we need to get the maximum of number of substring in same ending character.
3) if string p: ade
ad is not continous substring, so the maximum of number of substring ending in "d" will be 1 again
1 if p is None or len(p) == 0:
2 return 0
3 dp= [0] * 26 # 26 letters
4 maxCnt = 0
5
6 for i in range(0, len(p)):
7 if i > 0 and (ord(p[i]) - ord(p[i-1]) == 1 or ord(p[i-1]) - ord(p[i]) == 25):
8 maxCnt += 1
9 else:
10 maxCnt = 1
11 index = ord(p[i]) - 97
12
13 dp[index] = max(dp[index], maxCnt)
14
15 #print ("directly: ", p[i], dp[index])
16
17 ans = 0
18 for ele in dp:
19 ans += ele
20 return ans
21
[Leetcode] DP-- 467. Unique Substrings in Wraparound String
标签:cas log blog return input ons use sam print
原文地址:http://www.cnblogs.com/anxin6699/p/7138958.html
