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Why do I get the wrong values when I print an int using printf("%f\n", myNumber)?

I don't understand why it prints fine with %d, but not with %f. Shouldn't it just add extra zeros?

int a = 1;
int b = 10;
int c = 100;
int d = 1000;
int e = 10000;

printf("%d %d %d %d %d\n", a, b, c, d, e);   //prints fine
printf("%f %f %f %f %f\n", a, b, c, d, e);   //prints weird stuff
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1  
Integers are not floating point values... –  mjv Sep 7 '10 at 1:50
    
I understand that. But I wanted to know why it prints other stuff? Is there some type of overflowing? What is the reason behind printing what it does?? –  user69514 Sep 7 '10 at 1:51
    
Is the typo in the second printf in your code too or just here? (%\n) –  Arnold Spence Sep 7 '10 at 1:54
    
@Arnold: give that there are a few variables, my money's on typo. –  Evan Teran Sep 7 '10 at 1:55
2  
-1 for yet another useless "why does this happen?" question with invalid code/undefined behavior. –  R.. Sep 7 '10 at 1:59

7 Answers 7

up vote 10 down vote accepted

well of course it prints the "weird" stuff. You are passing in ints, but telling printf you passed in floats. Since these two data types have different and incompatible internal representations, you will get "gibberish".

There is no "automatic cast" when you pass variables to a variandic function like printf, the values are passed into the function as the datatype they actually are (or upgraded to a larger compatible type in some cases).

What you have done is somewhat similar to this:

union {
    int n;
    float f;
} x;

x.n = 10;

printf("%f\n", x.f); /* pass in the binary representation for 5, 
                        but treat that same bit pattern as a float, 
                        even though they are incompatible */
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4  
"There is no "automatic cast" when you pass variables to a variandic function" - that's the key, and I think it bears repeating because it's quite subtle (if you are coming from a higher level language) and important. –  caf Sep 7 '10 at 2:55

If you want to print them as floats, you can cast them as float before passing them to the printf function.

printf("%f %f %f %f %f\n", (float)a, (float)b, (float)c, (float)d, (float)e);
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a, b, c, d and e aren't floats. printf() is interpreting them as floats, and this would print weird stuff to your screen.

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the problem is... inside printf. the following happens

if ("%f") {
 float *p = (float*) &a;
 output *p;  //err because binary representation is different for float and int
}
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Using incorrect format specifier in printf() invokes Undefined Behaviour

For example:

 int n=1;
 printf("%f", n); //UB

 float x=1.2f;
 printf("%d", x); //UB

 double y=12.34;
 printf("%lf",y); //UB 

Note: format specifier for double in printf() is %f.

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... then whats the specifier for 'float'? –  Hemant Sep 7 '10 at 10:14
    
@Hemant : %f. –  Prasoon Saurav Sep 7 '10 at 13:48

the way printf and variable arguments work is that the format specifier in the string e.g. "%f %f" tells the printf the type and thus the size of the argument. By specifying the wrong type for the argument it gets confused.

look at stdarg.h for the macros used to handle variable arguments

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For "normal" (non variadac functions with all the types specified) the compiler converts integer valued types to floating point types where needed.

That does not happen with variadac arguments, which are always passed "as is".

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1  
...except when they're promoted to larger types. –  bk1e Sep 7 '10 at 4:31

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