Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:
int main()
   float i = 2.5;

When I compile this using gcc and run it, I get this as the output:


Why doesn't it print just

share|improve this question
You probably also want to compile your code with -Wall -Wextra. GCC complains about format ‘%d’ expects argument of type ‘int’, but argument 2 has type ‘double’ when I compile that code with the warnings turned on. – Daniel Kamil Kozar Apr 25 '12 at 20:50
Related:… – Adam Rosenfield Apr 25 '12 at 21:02
Because you lied to printf(). You told it there would be 3 ints but gave it 3 floats. – Alexey Frunze Apr 25 '12 at 21:34

4 Answers 4

You're passing a float (which will be converted to a double) to printf, but telling printf to expect an int. The result is undefined behavior, so at least in theory, anything could happen.

What will typically happen is that printf will retrieve sizeof(int) bytes from the stack, and interpret whatever bit pattern they hold as an int, and print out whatever value that happens to represent.

What you almost certainly want is to cast the float to int before passing it to printf.

share|improve this answer
+1 for actually explaining what happens instead of just saying "use %f". – Daniel Kamil Kozar Apr 25 '12 at 20:47

The "%d" format specifier is for decimal integers. Use "%f" instead.

And take a moment to read the printf() man page.

share|improve this answer

The "%d" is the specifier for a decimal integer (typically an 32-bit integer) while the "%f" specifier is used for decimal floating point. (typically a double or a float).

if you only want the non-decimal part of the floating point number you could specify the precision as 0.


float i = 2.5;

note you could also cast each value to an int and it would give the same result.

share|improve this answer

%d prints decimal (int)s, not (float)s. printf() cannot tell that you passed a (float) to it (C does not have native objects; you cannot ask a value what type it is); you need to use the appropriate format character for the type you passed.

share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

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