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B - Hidden Password ZOJ - 1729 (

B - Hidden Password ZOJ - 1729 (

作者: 陌路晨曦 | 来源:发表于2017-07-14 16:36 被阅读0次

    这是一道裸的最小表示法
    http://www.cnblogs.com/XGHeaven/p/4009210.html
    国家队论文
    https://wenku.baidu.com/view/df40d5287375a417866f8f7e.html

    Some time the programmers have very strange ways to hide their passwords. See for example how Billy "Hacker" Geits hide his password. Billy chooses a string S composed of small Latin letters with length L. Then he makes all L-1 one-letter left cyclic shifts of the string and takes as a password one prefix of the lexicographically first of the obtained strings (including S). For example let consider the string alabala. The cyclic one-letter left shifts (including the initial string) are:
    alabala
    labalaa
    abalaal
    balaala
    alaalab
    laalaba
    aalabal
    and lexicographically first of them is the string aalabal. The first letter of this string is in position 6 in the initial string (the positions in the string are counted from 0).
    Write a program that for given string S finds the start position of the smallest lexicographically one-letter left cyclic shift of this string. If the smallest lexicographically left shift appears more than once then the program have to output the smallest initial position.
    Your program has to be ready to solve more than one test case. The first line of the input file will contains only the number T of the test cases. Each of the following T lines will describe one test case - first the length L of the string (5 <= L <= 100000) and then, separated by one space, the string S itself.
    The output file have to contain exactly T lines with a single number each - the initial position found by your program.

    Sample Input
    2
    6 baabaa
    7 alabala

    Sample Output
    1
    6

    最小表示法的模板

    int getmin(char *s){
        int n=strlen(s);
        int i=0,j=1,k=0,t;
        while(i<n && j<n && k<n){
            t=s[(i+k)%n]-s[(j+k)%n];
            if (!t) k++;
            else{
                if (t>0) i+=k+1; 
                else j+=k+1;
                if (i==j) j++;
                k=0;
            }
        }
        return i<j?i:j;
    }
    

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