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int main (void)
    int fahrenheit; // fahrenheit stands for fahrenheit
    double c; // c stands for celsius

    printf("Enter your fahrenheit, we'll covnvert it into celsius! ");
    scanf("%f", &fahrenheit);

    c = 5/9 * (fahrenheit - 32);
    printf("Here is your %f in celsius!.\n");

    return (0);

I've followed the code through break points and when it takes in my input the calculations are off, but the formula is correct. Some sort of logic error I can't put my finger on. Please help!

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Try 5.0/9.0 perhaps. 5/9 in integer division is a whopping zero. –  WhozCraig Feb 4 '14 at 22:58
or (5 * (fahrenheit - 32))/9 if you want to stick with integer math. –  keshlam Feb 4 '14 at 23:00
Why not (fahrenheit - 32)/(1.8)? :) –  2rs2ts Feb 4 '14 at 23:00
Your printf() call doesn't actually provide the variable to print. –  Gavin H Feb 4 '14 at 23:00
scanf is parsing the number as a float, but its actually an int and used as such in the calculation. –  Macattack Feb 4 '14 at 23:02

3 Answers 3

up vote 6 down vote accepted

The scanf call uses the wrong format string. You are reading an int so you need it to be:

scanf("%d", &fahrenheit);

The expression 5/9 is evaluated using integer division. In fact the compiler can work it out at compile time. That expression evaluates to 0.

You need to perform floating point division. For instance:






You just need at least one operand to be a floating point value.

Putting this into your expression, you can write:

c = 5.0/9.0 * (fahrenheit - 32);

and obtain the answer that you expect.

Your printf statement is wrong too. You should enable warnings and let the compiler tell you that. You meant to write:

printf("Here is your %f in celsius!.\n", c);
share|improve this answer
thank you but I caught my error!! thanks again tho really appreciate it. –  user2223285 Feb 4 '14 at 23:07
If this answer is correct, it should be marked as accepted Victor, even if you caught the error on your own. –  nhgrif Feb 4 '14 at 23:28
@VictorC What do you mean by "thanks again tho"? –  David Heffernan Feb 4 '14 at 23:31
Although the integer division was certainly a problem, scanf was being used to read with format float into an int. Another critical error, and something that would have been obvious with -Wall. If you add that to your answer @VictorC really should mark your answer as accepted. –  Macattack Feb 4 '14 at 23:40
@Macattack Sigh. I got two out of three. It's there now. –  David Heffernan Feb 4 '14 at 23:53

Integer math versus floating point math.

i = 5/9           // i is equal to 0
d = 5.0/9.0       // d is equal to whatever 5 divided by 9 would actually be

You also need to actually print the value:

printf("Here is your %f in celsius!.\n", c);
share|improve this answer

Short answer: Operations on integers return integers even if the variable you store the result on is a double. Divisions between integers are truncated.

You should write this instead:

c = 5.0/9.0 * (fahrenheit - 32.0);

Adding a ".0" (or even just a ".") to your constant makes them floating point values.

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