POJ 2121

http://poj.org/problem?id=2121

一道字符串的转换的题目。

题意：就是把那个英文数字翻译成中文。

思路：首先打表，然后把每一个单独的单词分离出来，在组合相加相乘。

#include <stdio.h>
#include <string.h>

struct trans{
    char eng[10];
    int num;
}s[40];

int main(){
//    freopen("in.txt","r",stdin);
    strcpy(s[0].eng,"zero"),      s[0].num = 0;
    strcpy(s[1].eng,"one"),       s[1].num = 1;
    strcpy(s[2].eng,"two"),       s[2].num = 2;
    strcpy(s[3].eng,"three"),     s[3].num = 3;
    strcpy(s[4].eng,"four"),      s[4].num = 4;
    strcpy(s[5].eng,"five"),      s[5].num = 5;
    strcpy(s[6].eng,"six"),       s[6].num = 6;
    strcpy(s[7].eng,"seven"),     s[7].num = 7;
    strcpy(s[8].eng,"eight"),     s[8].num = 8;
    strcpy(s[9].eng,"nine"),      s[9].num = 9;
    strcpy(s[10].eng,"ten"),      s[10].num= 10;
    strcpy(s[11].eng,"eleven"),   s[11].num= 11;
    strcpy(s[12].eng,"twelve"),   s[12].num= 12;
    strcpy(s[13].eng,"thirteen"), s[13].num= 13;
    strcpy(s[14].eng,"fourteen"), s[14].num= 14;
    strcpy(s[15].eng,"fifteen"),  s[15].num= 15;
    strcpy(s[16].eng,"sixteen"),  s[16].num= 16;
    strcpy(s[17].eng,"seventeen"),s[17].num= 17;
    strcpy(s[18].eng,"eighteen"), s[18].num= 18;
    strcpy(s[19].eng,"nineteen"), s[19].num= 19;
    strcpy(s[20].eng,"twenty"),   s[20].num= 20;
    strcpy(s[21].eng,"thirty"),   s[21].num= 30;
    strcpy(s[22].eng,"forty"),    s[22].num= 40;
    strcpy(s[23].eng,"fifty"),    s[23].num= 50;
    strcpy(s[24].eng,"sixty"),    s[24].num= 60;
    strcpy(s[25].eng,"seventy"),  s[25].num= 70;
    strcpy(s[26].eng,"eighty"),    s[26].num= 80;
    strcpy(s[27].eng,"ninety" ),   s[27].num= 90;
    strcpy(s[29].eng,"hundred"),  s[29].num= 100;
    strcpy(s[30].eng,"thousand"), s[30].num= 1000;
    strcpy(s[31].eng,"million"),  s[31].num= 1000000;
    strcpy(s[28].eng,"negative"); s[28].num= -1;
    char a[200];
    while(gets(a))
    {
        if(strlen(a)==0) break;
        char tmp[50]={0};
        int ans=0,flog=0,sum=0,x=1;
        int len=strlen(a);
        for(int i=0,k=0;i<len;i++)
        {
            if(a[i]!=' ') tmp[k++]=a[i];
            if(a[i]==' '||i==len-1){
                k=0;
                flog=1;
                for(int m=0;m<=31;m++){
                    if(strcmp(s[m].eng,tmp)==0){
                            if(m==28) {
                                x=-1;
                                continue;
                            }
                            if(m<=27) sum+=s[m].num;
                            if(m==29) sum*=s[m].num;
                            if(m>=30) {
                                ans+=sum*s[m].num;     
                                sum=0;
                            }
                            break;
                    }
                }
            }
            if(flog==1){
                memset(tmp,0,sizeof(tmp));
                flog=0;
            }
        }
        printf("%d
",(ans+sum)*x);
    }
    return 0;
}