字符串的高级应用-char a[100] = "1+2=;3-2=;2*5=;8/4=;" 得到char a[100] ="1+2=3;3-2=1;2*5=10;8/4=2;"

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

int main()
{
    char a[100] = "1+2=;3-2=;2*5=;8/4=;" ;
    char b[100] = {0};
    char *s;
    s = strtok(a, ";");
    while(s)
    {
        
        int i,j;
        char c;
        sscanf(s, "%d%c%d=", &i, &c, &j);
        int res = 0;
        switch(c)
        {
        case '+':
            res = i + j;
            break;
            
        case '-':
            res = i - j;
            break;
            
        case '*':
            res = i * j;
            break;
            
        case '/':
            res = i / j;
            break;
        default    :
            res = 0;
                
        }
        
        char tmp[100] = {0};
        sprintf(tmp, "%s%d;", s, res);   //把运算式放入到tmp数组 
        strcat(b, tmp);    //tmp是在循环内定义的，因此要在循环外再定义一个b
        s = strtok(NULL, ";");
        
    }
       
        strcpy(a, b);
        printf("%s",a);
    return 0;
    
 }