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Why can't I return a double from two ints being divided

This statement in C with gcc:

float result = 1 / 10;

Produces the result 0.

But if I define variables a and b with values 1 and 10 respectively and then do:

float result = a / b;

I get the expected answer of 0.1

What gives?

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marked as duplicate by derobert, Steve Jessop, Robert Harvey Sep 28 '11 at 5:33

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What types do the variables a and b have? –  Matt Ball Sep 27 '11 at 20:14
4  
You should try float result = 1.0 / 10.0; –  CAbbott Sep 27 '11 at 20:14
1  
I believe that's because 1/10 it's resolved in compile-time, and because you didn't specify any decimal number the compiler thinks that the number it's integer. Try to make 1.0/10.0 –  rnunes Sep 27 '11 at 20:14
    
I answered a question just like this today. stackoverflow.com/q/7571326/550514 –  Chad La Guardia Sep 27 '11 at 20:14
    
Why not just write: float result = 0.1;? –  Jonathan Leffler Sep 27 '11 at 20:17
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4 Answers 4

When the / operator is applied to two integers, it's an integer division. So, the result of 1 / 10 is 0.

When the / operator is applied to at least one float variable, it's a float division. The result will be 0.1 as you intend.

Example :

printf("%f\n", 1.0f / 10); /* output : 0.1 (the 'f' means that 1.0 is a float, not a double)*/
printf("%d\n", 1 / 10); /* output : 0 */

Example with variables :

int a = 1, b = 10;

printf("%f\n", (float)a / b); /* output : 0.1 */
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To expand on this: float result = 1 / 10.0 would give the expected result. –  Steve Kaye Sep 27 '11 at 20:14
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That happens because 1 and 10 are integer constants, so the division is done using integer arithmetic.

If at least one of your variables a and b is a float, it will be done using floating-point arithmetic.

If you want to do it with number literals, use the notation to make at least one of them a float literal, for example:

float result = 1.0f / 10;

Or cast one of them to float, that would be a bit more elaborate:

float result = 1 / (float)10;
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1 and 10 are both integers and will return an integer, when you define a and b you're defining as a float. If you use 1.0 and 10.0 it will return the correct result

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If you want float than just cast it as follow.

float result = (float)a/b;

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