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I am writing a program in C. I have two variables one of which is integer and the other one is float. I want to divide the float by the integer and want to get result in float. I am doing the following:

int a;
float b=0,c=0;
scanf("%d",&a);

Here I am doing some computations on b so its value is increased randomly i.e 33 etc.

c = b/(float)a;
printf("c = %2.f\n", c);

The problem is I am getting 'c' as a rounded number (integer) rather than a float value. How can I get 'c' as a float value.

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Your code works perfectly fine for me. There should be no rounding. Perhaps you accidentally convert c to int later? –  user2079303 Jan 23 '14 at 11:56
    
What values are in the variables? –  Sean Jan 23 '14 at 11:56
    
Your code would be fine with c = b / a;: at least one of the divisors needs to be floating point: b already is. The answer must, by coincidence, evaluate to a float having no decimal part. –  Bathsheba Jan 23 '14 at 11:57
    
Please see the edited version of my code. –  user3130920 Jan 23 '14 at 12:02

2 Answers 2

up vote 3 down vote accepted

Your problem is here:

printf("c = %d\n", c);

%d formats c as integer. Use %f instead.

Or std::cout << "c = " << c << std::endl if you prefer.

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printf("c = %2.f\n", c); is also not working! –  user3130920 Jan 23 '14 at 12:07
    
printf("c = %f\n", c); –  user2079303 Jan 23 '14 at 12:08
    
the error was here: printf("c = %2.f\n", c); I changed this to printf("c = %f\n", c); thanks for the help guys! –  user3130920 Jan 23 '14 at 12:11
    
If you want to limit decimals, correct format is %.2f –  user2079303 Jan 23 '14 at 12:11

When printing on a screen try this (this worked for me):

printf("c = %f\n", c);
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