我试图用C语言编写一个只允许数字的计算器程序。如果计算完成，程序将询问您是否要再次计算。

如果您为操作数键入一个字符，计算器应打印该操作数无效。

到目前为止，该方法仍然有效，但是如果我在第一次计算后键入一个字符，我的if语句（以打印操作数无效）就不再起作用。

#include <stdio.h>
#include <stdlib.h>
#include <ctype.h>

int main() {
    float operand1,operand2,result;
    char operator;
    char YN; // yes/no

    do {
      printf("Enter a formula (+,-,*,/ are possible):\n");
      scanf("%f %c %f",&operand1,&operator,&operand2);
      if (operand1!=(int)operand1 || operand2!=(int)operand2) {
        printf("operand not valid!\n");
        return 0;
      }
      scanf("%c",&YN);
        
      switch (operator) { 
        case '+':
          result = operand1 + operand2;
          printf("The sum of %.0f and %.0f is %f\n",operand1,result);
          break;
        case '-':
          result = operand1 - operand2;
          printf("The difference of %.0f and %.0f is %f\n",result);
          break;
        case '*':
          result = operand1 * operand2;
          printf("The product of %.0f and %.0f is %f\n",result);
          break;
        case '/':
          if (operand2 != 0) {
            result = operand1 / operand2;
            printf("The quotient of %.0f and %.0f is %f\n",result);
          } else {
            printf("operand2 cant be 0.\n");
          }
          break;
        case '%':
          printf("The remainder of .0%d and %.0d is %d\n",(int)operand1,(int)operand2,(int)result);
          break;
        case 'M':
          if (operand1 > operand2) {
            result = operand1;
            printf("The maximum of %.0f and %.0f is %f\n",result);
          } else if (operand1 < operand2) {
            result = operand2;
            printf("The maximum of %.0f and %.0f is %f\n",result);
          } else {
            printf("The values are the same.\n");
          }
          break;
        case 'm':
          if (operand1 < operand2) {
            result = operand1;
            printf("The minimum of %.0f and %.0f is %f\n",result);
          } else if (operand1 > operand2) {
            result = operand2;
            printf("The minimum of %.0f and %.0f is %f\n",result);
          } else {
            printf("The values are the same.\n");
          }
          break;
        default:
          printf("Operator '%c' not valid!\n",operator);
          return 0;
      }

    printf("Do you want to calculate something else? Y/N):\n");
    scanf("%c",&YN);
    fflush(stdin);
    } while (YN == 'y' || YN == 'Y');
    
    return 0;
}

问题：

用于检查操作数是否为整数的if语句在第一次计算后不再起作用。

        if (operand1!=(int)operand1 || operand2!=(int)operand2) {
            printf("operand not valid!\n");
            return 0;
        }

例如输入：

2 + 3

它打印-2和3的总和是5

您还要计算其他内容吗？

y

b + 1

打印-1和3之和为4

但是它应该打印-操作数无效！

如果您在第一次计算中键入一个字符，它将起作用。

我真的需要你的帮助。您能否修正我的代码，以便if语句也适用于多种计算。非常感谢您的帮助。

解决方法

        scanf("%f %c %f",&operand1,&operator,&operand2);
        if (operand1!=(int)operand1 || operand2!=(int)operand2) {
            printf("operand not valid!\n");
            return 0;
        }

        if (scanf("%f %c %f",&operand2)!=3 || operand1!=(int)operand1 || operand2!=(int)operand2) {
            printf("operand not valid!\n");
            return 0;
        }