-3

Ok so basically, I am trying to make a program that will take a KPH of 185 and convert it to MPH all the way to 0 like so. (using prototypes) Kilometers per hour converted to miles per hour:

Kph     Mph
185     115
180     112
175     109
... ...
10      6
5       3
0       0

Unfortunately my conversion is a bit off, can someone heed some information on why that may be?

#include <stdio.h>

// Prototypes
double mph2kph(double); // convert Miles to KM
double kph2mph(double); // convert KM to Miles

int main()
{

    int loop = 1; 
    double kph = 185;              // kilometers per hour   
    double mph = 115;              // miles per hour for computation 

    printf("Kilometers per hour converted to miles per hour: \n");
    printf("Kph          Mph\n"); // Display Header

    while (loop == 1){
        printf("%.2d     %.2d \n", kph, kph2mph(kph));
        break;
    }
loop = 0;

}

//Other Functions:
double mph2kph(double x){
    return x*1.61;
}

double kph2mph(double x){
    return x*1.61;
}

Output =

Kilometers per hour converted to miles per hour:                                                                                                                                             
Kph          Mph                                                                                                                                                                             
40325120     38090656
5
  • If it compiles it's not a "syntax error". It may very well be code that is written incorrectly. Nov 9 '16 at 1:53
  • 1
    And yes, your code is indeed trivially wrong. How can it be the same formula in both cases? Nov 9 '16 at 1:54
  • 4
    %d is for int arguments, not double arguments.
    – aschepler
    Nov 9 '16 at 1:54
  • What is "KPH" ? Nov 9 '16 at 2:05
  • @Isuka: That would be "km/h". Both are SI units, so it would be good to use standard notation;-). Nov 9 '16 at 2:31
2

You are using %d to show your final result, which is used for int variables. In your case, as you are using double variables, you should go for %f or %lf.

printf("%.2lf     %.2lf \n", kph, kph2mph(kph));

Also, your kilometers per hour to miles per hour conversion function is wrong. You should divide and not multiply.

double kph2mph(double x){
    return x/1.61;
}

Testing your code with those corrections leads to correct results:

Kilometers per hour converted to miles per hour: 
Kph          Mph
185.00     114.91 
3
  • @KenY-N Fair point. I'm editing the answer this way.
    – Isuka
    Nov 9 '16 at 2:00
  • @Isuka: Even though %f works fine four double, there was no reason to edit the answer. Quite the opposite, since C99 %lf is supported by printf. And it is actually a better idea to use %lf for double and keep %f reserved for float. That keeps printf consistent with scanf.
    – AnT
    Nov 9 '16 at 2:03
0

I have made some changes to your program to give your desired output. Some errors in your program are already identified by some other users. Compare this with yours and try to learn. Best of luck!

#include <stdio.h>

// Prototypes
double mph2kph(double); // convert Miles to KM
double kph2mph(double); // convert KM to Miles

int main()
{

int loop = 1; 
int kph = 185;              // kilometers per hour   
double mph = 115;              // miles per hour for computation 

printf("Kilometers per hour converted to miles per hour: \n");
printf("Kph          Mph\n"); // Display Header

while (kph != -5){
    printf("%d     %.2lf \n", kph, kph2mph(kph));
    getchar();
    kph = kph - 5;
}

 }

//Other Functions:
double mph2kph(double x){
    return x*1.61;
}

double kph2mph(double x){
   return x/1.61;
}
2
  • Thanks for the help, I wasn't aware that a while loop would be the best option. How would I make it completely loop until kph = 0 and mph = 0?
    – Ardowi
    Nov 9 '16 at 3:07
  • The condition kph != -5 makes sure that the while loop continues until kph reaches -5. Note that kph is decremented by 5 on every iteration.
    – VHS
    Nov 9 '16 at 3:09

Not the answer you're looking for? Browse other questions tagged or ask your own question.