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What is printf’s behaviour when printing an int as float?

int main()
{
 int x=4;
 int y=987634;
 printf("%f %f",x,y);
}

On compiling this code i get an output as 0.000000 0.000000. Shouldn't there be a type promotion of x and y to floating point numbers? Shouldn't the O/P be 4.000000 and 987634.000000? Can anyone help me with this. Thanx in Advance.

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marked as duplicate by Daniel Fischer, Adam Rosenfield, netcoder, Bo Persson, Mac Nov 27 '12 at 20:53

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
I can't quite find an exact duplicate, but this type of question has been asked many times before. –  Adam Rosenfield Nov 27 '12 at 16:51
    
I'd be pleased to see anything of this type. Can u post the links. @AdamRosenfield –  Vignesh_dino Nov 27 '12 at 16:52
    
I already posted 3 links. –  Adam Rosenfield Nov 27 '12 at 16:54
    
But why is it always Zero? Shouldn't the result be the integer equivalent of the set bits? –  Vignesh_dino Nov 27 '12 at 17:24

5 Answers 5

up vote 5 down vote accepted

Conversions happen to arguments to functions with a prototype which includes the specific parameters. The prototype for printf() does not include the specific parameters after the first one

int printf(const char *format, ...);

so, no arguments after the 1st one get automatically converted except as defined by "default argument conversions" (basically any integer type with a rank lower than int to int and any floating-point type with a rank lower than double to double (thank you, Pascal Cuoq)). You need to convert them explicitly yourself with a cast operation

    printf("%f %f\n", (double)x, (double)y);

Ohhh ... and you really, really, really should include the header that has the prototype in question (under penalty of Undefined Behaviour)

#include <stdio.h>
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1  
Just a note regarding “no arguments after the 1st one get converted automatically”: there are promotions applied to the arguments in the ellipsis. They are called “default argument promotions” and they do not include promotion from int to double (C99 6.5.2.2:7) –  Pascal Cuoq Nov 28 '12 at 15:43

The compiler has no idea that your printf format string is going to interpret the arguments as floats. It passes them straight through as ints.

Because printf is a varargs function, it's really up to you to pass parameters that make sense.

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2  
If it's a decent compiler, it will look at the format string and warn about it if you ask it nicely. –  Daniel Fischer Nov 27 '12 at 16:51

Try printf("%i %i",x,y); to print integers as 4 987634. For printf formatting details see http://www.cplusplus.com/reference/cstdio/printf/.

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Not really an answer to the question –  Dan F Nov 27 '12 at 16:51

ints and floats are stored differently in memory, but your compiler does not know that you want floats. You need to convert them explicitly.

printf("%f %f",(float)x,(float)y);
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2  
Since variadic arguments are default-promoted, that does the right thing, but it is somewhat misleading. You should directly cast to double. –  Daniel Fischer Nov 27 '12 at 16:57

Variadic functions (printf() is one) aren't type checked because variadic signatures don't contain any type information. Thus, there's no implicit type casting. You have to do it manually:

printf("%f %f", (double)x, (double)y);
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