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标题:
C语言程序设计:现代设计方法习题笔记《chapter5》上篇
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作者:
我爱普洱茶
时间:
2024-10-29 22:33
标题:
C语言程序设计:现代设计方法习题笔记《chapter5》上篇
第一题
题目分析:程序判断一个数的位数可以通过循环除以10求余,通过盘算第一次与10求余为0的次数盘算位数,由此可得示例1代码,另一种思路根据提示,可得示例2代码。
代码示例1:
#include<stdio.h>
int main()
{
printf("Enter a number: ");
int number,temp;
scanf_s("%d", &number);
temp = number;
int digit = 0;
while (temp % 10 != 0)
{
digit += 1;
temp = temp / 10;
};
printf("The number %d has %d digits", number, digit);
return 0;
}
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输出:
代码示例2:
#include<stdio.h>
int main()
{
/*printf("Enter a number: ");
int number,temp;
scanf_s("%d", &number);
temp = number;
int digit = 0;
while (temp % 10 != 0)
{
digit += 1;
temp = temp / 10;
};
printf("The number %d has %d digits", number, digit);
return 0;*/
int number;
printf("Enter a number: ");
scanf_s("%d", &number);
if (number >= 0 && number <= 9)
{
printf("The number %d has 1 digits", number);
}
else if (number >= 10 && number <= 99)
{
printf("The number %d has 2 digits", number);
}
else if (number >= 100 && number <= 999)
{
printf("The number %d has 3 digits", number);
}
else if (number >= 1000 && number <= 9999)
{
printf("The number %d has 4 digits", number);
}
else
{
printf("The number %d 输入位数多于4位", number);
}
return 0;
}
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输出
第二题
题目分析:输入24进制小时制的时间,显示12小时的格式如果大于12时,减去12即可,如果小于12,原样显示,由此给出如下代码。
示例代码
#include<stdio.h>
int main()
{
printf("Enter a 24-hour time: ");
int h, m;
scanf_s("%d:%d", &h, &m);
if (h>24)
{
printf("输入数据%d:%d不符合要求", h, m);
}
else if (h>12&&h<24)
{
printf("Equivalent 12-hour time: %d:%d PM", h - 12, m);
}
else if (h<0)
{
printf("输入数据%d:%d不符合要求", h, m);
}
else if (h==24)
{
printf("Equivalent 12-hour time: %d:%d AM", h - 24, m);
}
else
{
printf("Equivalent 12-hour time: %d:%d AM", h, m);
}
return 0;
}
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输出
第三题
题目分析:这个题我的理解是基础33美元,然后每股加3美分或者2美分,将美分换算成美元进行盘算,得到下列代码。
示例代码
#include<stdio.h>
int main()
{
float commission, value, per_price;
int num;
printf("Enter value of trade: ");
scanf_s("%f%d", &per_price, &num);
value = per_price * num;
if (value<2500.00f)
{
commission = 30.00f + .017f * value;
}
else if (value<6250.00f)
{
commission = 56.00f + .0066f * value;
}
else if (value<20000.00f)
{
commission = 76.00f + .0034f * value;
}
else if (value<50000.00f)
{
commission = 100.00f + .0022f * value;
}
else if (value<500000.00f)
{
commission = 155.00f + .0011f * value;
}
else
{
commission = 255.00f + .0009f * value;
}
if (commission<39.00f)
{
commission = 39.00f;
}
printf("Commission: $%.2f\n", commission);
//竞争对手
float j_money;
if (num < 20000)
{
j_money = 33.00f + 3.00f*num/100.00f;
}
else
{
j_money = 33.00f + 2.00f*num/100.00f;
}
printf("j_money: $%.2f\n", j_money);
return 0;
}
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输出
第四题
题目分析:简朴的数值范围判断题目
示例代码
#include<stdio.h>
int main()
{
float wind_speed;
printf("Eter the wind speed: ");
scanf_s("%f", &wind_speed);
if (wind_speed<1)
{
printf("Calm(无风)");
}
else if (wind_speed>=1&&wind_speed<=3)
{
printf("Light air(轻风)");
}
else if (wind_speed>=4&&wind_speed<=27)
{
printf("Breeze(微风)");
}
else if (wind_speed>=28&&wind_speed<=47)
{
printf("Gale(大风)");
}
else if (wind_speed>=48&&wind_speed<=63)
{
printf("Strom(暴风)");
}
else if (wind_speed > 63)
{
printf("Hurricane(飓风)");
}
return 0;
}
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输出
第五题
题目分析:这个题紧张是注意有印刷错误。
示例代码
#include<stdio.h>
int main()
{
printf("输入收入:");
float salary, tax;
scanf_s("%f", &salary);
if (salary<=750)
{
tax = salary * .01;
}
else if (salary<=2250)
{
tax = 7.5 + (salary - 750) * .02;
}
else if (salary<=3750)
{
tax = 37.5 + (salary - 2250) * .03;
}
else if (salary<=5250)
{
tax = 82.50 + (salary - 3750) * .04;
}
else if (salary<=7000)
{
tax = 142.50 + (salary - 5250) * .05;
}
else
{
tax = 230.00 + (salary - 7000) * .06;
}
printf("应该交税$%.2f", tax);
return 0;
}
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输出
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