• POJ1850——Code(组合数学)


    Code

    Description
    Transmitting and memorizing information is a task that requires different coding systems for the best use of the available space. A well known system is that one where a number is associated to a character sequence. It is considered that the words are made only of small characters of the English alphabet a,b,c, ..., z (26 characters). From all these words we consider only those whose letters are in lexigraphical order (each character is smaller than the next character).
    The coding system works like this:
    • The words are arranged in the increasing order of their length.
    • The words with the same length are arranged in lexicographical order (the order from the dictionary).
    • We codify these words by their numbering, starting with a, as follows:
    a - 1
    b - 2
    ...
    z - 26
    ab - 27
    ...
    az - 51
    bc - 52
    ...
    vwxyz - 83681
    ...

    Specify for a given word if it can be codified according to this coding system. For the affirmative case specify its code.
    Input
    The only line contains a word. There are some constraints:
    • The word is maximum 10 letters length
    • The English alphabet has 26 characters.
    Output
    The output will contain the code of the given word, or 0 if the word can not be codified.
    Sample Input
    bf
    Sample Output
    55

    题目大意:

        判断一个字符串在字典中的位置。

        字符串必须保证为升序字符串才能合法。

    解题思路:

        组合数学问题。

        首先通过dp打印出来com[][]杨辉三角形。

        假设字符串的长度为len。

        详情见备注。

    Code:

     1 /*************************************************************************
     2     > File Name: poj1850.cpp
     3     > Author: Enumz
     4     > Mail: 369372123@qq.com
     5     > Created Time: 2014年10月28日 星期二 01时32分11秒
     6  ************************************************************************/
     7 
     8 #include<iostream>
     9 #include<cstdio>
    10 #include<cstdlib>
    11 #include<string>
    12 #include<cstring>
    13 #include<list>
    14 #include<queue>
    15 #include<stack>
    16 #include<map>
    17 #include<set>
    18 #include<algorithm>
    19 #include<cmath>
    20 #include<bitset>
    21 #include<climits>
    22 #define MAXN 100000
    23 using namespace std;
    24 long long com[30][30];
    25 void init()   /*打印杨辉三角*/
    26 {
    27     for (int i=0; i<=26; i++)
    28         for (int j=0; j<=i; j++)
    29             if (!j||i==j)
    30                 com[i][j]=1;
    31             else
    32                 com[i][j]=com[i-1][j-1]+com[i-1][j];
    33     com[0][0]=0;
    34 }
    35 int main()
    36 {
    37     init();
    38     char num[20];
    39     scanf("%s",num);
    40     int len=strlen(num),k;
    41     for (k=1;k<=len-1;k++)  /*判断是否为递增字符串*/
    42         if (num[k]<=num[k-1]) break;
    43     if (k!=len)
    44     {
    45         cout<<0<<endl;
    46         return 0;
    47     }
    48     long long ans=0;
    49     /*任意长度小于等于len的数都在其前面*/
    50     for (int i=1; i<=len-1; i++)
    51         ans+=com[26][i];
    52     /*计算最高位为[a,num[0])的个数*/
    53     for (char i='a'; i<num[0]; i++)
    54         ans+=com['z'-i][len-1];
    55     /*计算前j位相同的个数*/
    56     for (int j=1;j<=len-1;j++)
    57         /*第j位可能的数字为[num[j-1]+1,num[j]) */
    58         for (char i=num[j-1]+1;i<num[j];i++)
    59             ans+=com['z'-i][len-1-j];
    60     cout<<ans+1<<endl;
    61     return 0;
    62 }
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  • 原文地址:https://www.cnblogs.com/Enumz/p/4060391.html
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