如果计算的变量不是整数,如何继续下一行代码
How to continue to next line of code, if variable calculated is not an integer
** 更新:Loc Tran 解决了这个问题!谢谢洛克特兰!! **
我正在编写一个程序(严格使用 C)计算美国面额的最小变化。在我的程序达到一角硬币(第一个不能被整数整除的面额)后,程序似乎不想继续五分钱和便士。
我曾尝试使用 if 语句,如果返回零则排除 dimesDue 值,但似乎无法弄清楚。如果您注意到,我还必须根据从总找零金额中扣除的先前面额,为每个面额创建一个新的找零变量。我宁愿简化这个并在每次计算后指定新值,但不能。
// Amount Tendered and Purchase amount converted to pennies
amountDue = 2117;
amountGiven = 10000;
// Creating a new change amount for each denomination, based on each previous computation
change = amountGiven - amountDue;
change10s = change % (20 * 100);
change5s = change % (10 * 100);
change1s = change % (5 * 100);
changeQs = change % (1 * 100);
changeDs = change % 25;
changeNs = change % 10;
changePs = change % 1;
// Using each new change amount to calculate amount of denomination
twentiesDue = (change / 20) / 100;
tensDue = (change10s / 10) / 100;
fivesDue = (change5s / 5) / 100;
onesDue = (change1s / 1) / 100;
quartersDue = (changeQs / 25);
dimesDue = (changeDs / 10);
nickelsDue = (changeNs / 5);
penniesDue = (changePs / 1);
printf("Amount Due: .17\nAmount Tendered: 0\n\n");
printf("Change Due:\n(by denomination)\n");
printf("Twenties: %d\n", twentiesDue);
printf("Tens: %d\n", tensDue);
printf("Fives: %d\n", fivesDue);
printf("Ones: %d\n", onesDue);
printf("Quarters: %d\n", quartersDue);
printf("Dimes: %d\n", dimesDue);
printf("Nickels: %d\n", nickelsDue);
printf("Pennies: %d\n", penniesDue);
程序达到一角硬币(第一个不等于整数的面额)并且不会继续计算五分硬币和便士的数量。因为季度后剩下的零钱是 8 美分,所以这不能被 10 整除。但我不知道如何使用 if 语句指定忽略它!
所以结果是一旦程序达到 dimes,所有变量此后计算为零。但应该是一镍三便士!
这是我 运行 时的结果:
应付金额:21.17 美元
投标金额:100 美元
更改截止日期:
(按面额)
二十多岁:3
十位:1
五人组:1
个数:3
宿舍:3
角钱:0
镍:0
便士:0
虽然这个解决方案有效,但我不能使用它。
必须使用模运算符。
您在使用货币值更改后计算剩余金额时遇到问题。获取数字中的所有数字是类似的过程。比如198得到1之后,剩下198-1*100=98,然后得到9,剩下98-9*10=8,得到8就完成了。
你用错误的公式计算。这是我用同样的方式计算数字的方法,以及整个解决方案:
#include <stdlib.h>
#include <stdio.h>
int main()
{
// Amount Tendered and Purchase amount converted to pennies
int amountDue = 2117;
int amountGiven = 10000;
// Using each new change amount to calculate amount of denomination
// getting 20dollars notes
int change = amountGiven - amountDue;
int twentiesDue = (change / 20) / 100;
// get the remaining after change 20dollar notes, and
// then divide 10*100 for getting 10dollars notes
int change10s = change % (20*100);
int tensDue = (change10s / 10) / 100;
// get the remaining after change 10dollar notes, and
// then divide 5*100 for getting 5dollars notes
int change5s = change10s % (10*100);
int fivesDue = (change5s / 5) / 100;
// get the remaining after change 5dollar notes, and
// then divide 1*100 for getting 1dollars notes
int change1s = change5s % (5*100);
int onesDue = (change1s / 1) / 100;
// get the remaining after change 1dollar notes, and
// then divide 25 for getting quarter coins
int changeQs = change1s % (1*100);
int quartersDue = (changeQs / 25);
// get the remaining after change quarter coins, and
// then divide 10 for getting dime coins
int changeDs = changeQs % 25;
int dimesDue = (changeDs / 10);
// get the remaining after change dime coins, and
// then divide 5 for getting nickel coins
int changeNs = changeDs % 10;
int nickelsDue = (changeNs / 5);
// get the remaining after change nickel coins, and
// then divide 1 for getting 1cent coins
int changePs = changeNs % 5;
int penniesDue = (changePs / 1);
printf("Amount Due: .17\nAmount Tendered: 0\n\n");
printf("Change Due:\n(by denomination)\n");
printf("Twenties: %d\n", twentiesDue);
printf("Tens: %d\n", tensDue);
printf("Fives: %d\n", fivesDue);
printf("Ones: %d\n", onesDue);
printf("Quarters: %d\n", quartersDue);
printf("Dimes: %d\n", dimesDue);
printf("Nickels: %d\n", nickelsDue);
printf("Pennies: %d\n", penniesDue);
return 0;
}
** 更新:Loc Tran 解决了这个问题!谢谢洛克特兰!! **
我正在编写一个程序(严格使用 C)计算美国面额的最小变化。在我的程序达到一角硬币(第一个不能被整数整除的面额)后,程序似乎不想继续五分钱和便士。
我曾尝试使用 if 语句,如果返回零则排除 dimesDue 值,但似乎无法弄清楚。如果您注意到,我还必须根据从总找零金额中扣除的先前面额,为每个面额创建一个新的找零变量。我宁愿简化这个并在每次计算后指定新值,但不能。
// Amount Tendered and Purchase amount converted to pennies
amountDue = 2117;
amountGiven = 10000;
// Creating a new change amount for each denomination, based on each previous computation
change = amountGiven - amountDue;
change10s = change % (20 * 100);
change5s = change % (10 * 100);
change1s = change % (5 * 100);
changeQs = change % (1 * 100);
changeDs = change % 25;
changeNs = change % 10;
changePs = change % 1;
// Using each new change amount to calculate amount of denomination
twentiesDue = (change / 20) / 100;
tensDue = (change10s / 10) / 100;
fivesDue = (change5s / 5) / 100;
onesDue = (change1s / 1) / 100;
quartersDue = (changeQs / 25);
dimesDue = (changeDs / 10);
nickelsDue = (changeNs / 5);
penniesDue = (changePs / 1);
printf("Amount Due: .17\nAmount Tendered: 0\n\n");
printf("Change Due:\n(by denomination)\n");
printf("Twenties: %d\n", twentiesDue);
printf("Tens: %d\n", tensDue);
printf("Fives: %d\n", fivesDue);
printf("Ones: %d\n", onesDue);
printf("Quarters: %d\n", quartersDue);
printf("Dimes: %d\n", dimesDue);
printf("Nickels: %d\n", nickelsDue);
printf("Pennies: %d\n", penniesDue);
程序达到一角硬币(第一个不等于整数的面额)并且不会继续计算五分硬币和便士的数量。因为季度后剩下的零钱是 8 美分,所以这不能被 10 整除。但我不知道如何使用 if 语句指定忽略它!
所以结果是一旦程序达到 dimes,所有变量此后计算为零。但应该是一镍三便士! 这是我 运行 时的结果:
应付金额:21.17 美元 投标金额:100 美元
更改截止日期: (按面额) 二十多岁:3 十位:1 五人组:1 个数:3 宿舍:3 角钱:0 镍:0 便士:0
虽然这个解决方案有效,但我不能使用它。 必须使用模运算符。
您在使用货币值更改后计算剩余金额时遇到问题。获取数字中的所有数字是类似的过程。比如198得到1之后,剩下198-1*100=98,然后得到9,剩下98-9*10=8,得到8就完成了。 你用错误的公式计算。这是我用同样的方式计算数字的方法,以及整个解决方案:
#include <stdlib.h>
#include <stdio.h>
int main()
{
// Amount Tendered and Purchase amount converted to pennies
int amountDue = 2117;
int amountGiven = 10000;
// Using each new change amount to calculate amount of denomination
// getting 20dollars notes
int change = amountGiven - amountDue;
int twentiesDue = (change / 20) / 100;
// get the remaining after change 20dollar notes, and
// then divide 10*100 for getting 10dollars notes
int change10s = change % (20*100);
int tensDue = (change10s / 10) / 100;
// get the remaining after change 10dollar notes, and
// then divide 5*100 for getting 5dollars notes
int change5s = change10s % (10*100);
int fivesDue = (change5s / 5) / 100;
// get the remaining after change 5dollar notes, and
// then divide 1*100 for getting 1dollars notes
int change1s = change5s % (5*100);
int onesDue = (change1s / 1) / 100;
// get the remaining after change 1dollar notes, and
// then divide 25 for getting quarter coins
int changeQs = change1s % (1*100);
int quartersDue = (changeQs / 25);
// get the remaining after change quarter coins, and
// then divide 10 for getting dime coins
int changeDs = changeQs % 25;
int dimesDue = (changeDs / 10);
// get the remaining after change dime coins, and
// then divide 5 for getting nickel coins
int changeNs = changeDs % 10;
int nickelsDue = (changeNs / 5);
// get the remaining after change nickel coins, and
// then divide 1 for getting 1cent coins
int changePs = changeNs % 5;
int penniesDue = (changePs / 1);
printf("Amount Due: .17\nAmount Tendered: 0\n\n");
printf("Change Due:\n(by denomination)\n");
printf("Twenties: %d\n", twentiesDue);
printf("Tens: %d\n", tensDue);
printf("Fives: %d\n", fivesDue);
printf("Ones: %d\n", onesDue);
printf("Quarters: %d\n", quartersDue);
printf("Dimes: %d\n", dimesDue);
printf("Nickels: %d\n", nickelsDue);
printf("Pennies: %d\n", penniesDue);
return 0;
}