切换案例菜单
我正在尝试制作一个程序,提示用户提供这样的选项菜单
***************************************************************** Enter the number corresponding to the desired pay rate or action: 1) $8.75/hr 2) $9.33/hr 3) $10.00/hr 4) $11.20/hr 5) quit ***************************************************************** 然后根据工资率计算净工资,工资总额和税金。 我已经完成了所有的工资率,但是实际的费率菜单给了我一些问题。如果用户输入5,它应该退出,如果输入任何其他的1到5然后再循环并再次询问正确的选择。 如果输入不是1到5,我有问题回收。
#include "stdafx.h" #include "stdio.h" #include "stdlib.h" #include "ctype.h" #define HOURLY0 8.75 #define HOURLY1 9.33 #define HOURLY2 10 #define HOURLY3 11.20 #define TAXRATE .15 #define TAXRATE2 .20 #define TAXRATE3 .25 #define OVERTIME 15 int _tmain(int argc, _TCHAR* argv[]) { float hours, grossPay = 0, netPay, tax = 0, tax3 = 0,hourly; int menu = 0,wrong =1; char quit; printf("Enter the number corresponding to the desired pay rate or action : \n\n1) $8.75/hr 2) $9.33/hr \n3) $10.00/hr 4) $11.20/hr \n5) quit\n\n"); scanf_s("%d", &menu); while (menu != 5 ) { do { switch (menu) { case 1: hourly = HOURLY0; break; case 2: hourly = HOURLY1; break; case 3: hourly = HOURLY2; break; case 4: hourly = HOURLY3; break; default: printf("Enter right choice from 1 to 5 only\n"); printf("Enter the number corresponding to the desired pay rate or action : \n\n1) $8.75/hr 2) $9.33/hr \n3) $10.00/hr 4) $11.20/hr \n5) quit\n\n"); scanf_s("%d", &menu); wrong; break; } } while (!wrong);/* HOW CAN I MAKE IT TO RECYCLE IF INPUT IS OTHER THAN 1-5*/ printf("\nEnter hours worked in the week: "); scanf_s("%f", &hours); if (hours > 40) { grossPay = (40 * hourly) + ((hours - 40) * OVERTIME); if (grossPay 300 && grossPay 450) { tax3 = grossPay - 450; tax = (300 * TAXRATE) + ((grossPay - 300 - tax3)*TAXRATE2) + ((grossPay - 300 - 150)*TAXRATE3); } } else if (hours < 40) { grossPay = (hours * hourly); if (grossPay 300 && grossPay 450) { tax3 = grossPay - 450; tax = (300 * TAXRATE) + ((grossPay - 300 - tax3)*TAXRATE2) + ((grossPay - 300 - 150)*TAXRATE3); } } netPay = grossPay - tax; printf("\nGross Pay : %2.3f\nTax: %13.3f\nNet Pay: %10.3f\n\n", grossPay, tax, netPay); system("cls"); printf("Enter the number corresponding to the desired pay rate or action : \n\n1) $8.75/hr 2) $9.33/hr \n3) $10.00/hr 4) $11.20/hr \n5) quit\n\n"); scanf_s("%d", &menu); } system("pause"); return 0; }
改进代码的一种方法是将用户输入处理移动到子例程中。 这样,所有杂乱的error handling都进入子程序, main只需要处理有效的输入。
在下面的代码中, GetUserInput函数将永远循环,直到用户输入有效数字,或者scanf出现文件结尾或错误。 GetUserInput的返回值只能是1到5之间的值,因此main不需要处理任何意外值。
int GetUserInput( void ) { int menu; for (;;) { menu = 0; printf("Enter the number corresponding to the desired pay rate or action : \n\n1) $8.75/hr 2) $9.33/hr \n3) $10.00/hr 4) $11.20/hr \n5) quit\n\n"); if ( scanf( "%d", &menu ) != 1 ) exit( 1 ); if ( menu >= 1 && menu <= 5 ) return menu; printf( "Enter right choice from 1 to 5 only\n" ); } } int main( void ) { int menu = 0; while ( menu != 5 ) { menu = GetUserInput(); switch ( menu ) { case 1: printf( "\n*** You selected 1 ***\n\n" ); break; case 2: printf( "\n*** You selected 2 ***\n\n" ); break; case 3: printf( "\n*** You selected 3 ***\n\n" ); break; case 4: printf( "\n*** You selected 4 ***\n\n" ); break; case 5: printf( "Bye\n" ); break; } } }
当您使用scanf()您需要注意当用户输入值时scanf尝试仅读出您在格式说明符中写入的内容,其余的仍保留在缓冲区中。 所以写“%d”意味着它读取数字但在缓冲区中留下的是\ n。
现在,当您稍后再执行另一次扫描时,\ n仍然在缓冲区中,因此scanf直接返回0。
而是使用fgets()将键盘中的值读入字符串,然后使用sscanf()或atoi()来检索整数。
例如
char buffer[256]; while (fgets(buffer,sizeof(buffer),stdin)!=NULL) { if (sscanf(buffer, "%d", &n) == 1) { switch(n) {...} } else { ... some error output ... } }
在while(!wrong)循环之后,你是否已经发表评论,添加:
if(wrong) continue; //restart from the outer-while
并在开始时启动错误= 0并在默认选择的开关处将其设置为1 。