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Hi I'm trying to convert from an int to a float in C and for some reason the cast changes the value and I'm not sure why. So:

fprintf (stderr, "%d,%d\n", rgbValues->green, (float)rgbValues->green);

produces two different numbers. Note that rgbValues->green is an int.

Any idea why this is happening?


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3 Answers 3

up vote 10 down vote accepted

You have to say that in your format string. Use:

fprintf(stderr, "%d,%f\n", rgbValues->green, (float)rgbValues->green);

instead of:

fprintf(stderr, "%d,%d\n", rgbValues->green, (float)rgbValues->green);

Note the change from d to f (the circumflex ^ isn't part of the code, just an indicator as to where to look).

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What? This is the exact same (wrong) code as the OP. – Adam Rosenfield Oct 27 '09 at 2:42
The comment line on top is probably meant to indicate the change to be made. fprintf(stderr, "%d,%f\n", rgbValues->green, (float)rgbValues->green); is what it should be. – hexium Oct 27 '09 at 2:45
@Adam Read the comment. – phoebus Oct 27 '09 at 2:45
Of course I see that. My point is that you should actually spell out what the correct code is, not copy the wrong code and awkwardly indicate the change to be made. – Adam Rosenfield Oct 27 '09 at 2:59
There ya go, that should hopefully make it a bit more obvious to all. – paxdiablo Oct 27 '09 at 3:16

The %d format specifier says to printf, "take the next 4 bytes off of the stack, interpret them as an integer, and print out that integer." Since you're actually passing a float as a parameter, the bytes of the float (which are stored in IEEE-754 format) are getting misinterpreted as an integer, hence the different values. (Actually, the float is getting converted to a double due to argument promotion within variadic functions, and it's the first 4 bytes of that promoted double that are getting interpreted as an integer.)

The correct solution is to use one of the %e, %f, or %g format specifiers instead of %d when printing out a float. %e says, "take the next 8 bytes off the stack, interpret them as a double, and print it out using scientific (exponential) notation" %f prints out using a fixed-point format, and %g prints out whichever would be shorter of %e or %f.

fprintf(stderr, "%d,%f\n", rgbValues->green, (float)rgbValues->green);
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+1 for "take the next 4 bytes off the stack" – Ying Oct 3 '12 at 19:46

Expanding on @AraK's answer, you're casting once to float, and then printf is interpreting that bit pattern as an int in the format specifier string. It's doing exactly what you're telling it to do :)

If you want to only cast to float - do this:

// format specifier is %d for int, %f for float
// show the cast value of rgbValues->green as well as its "real" value
fprintf(stderr, "%d,%f\n", rgbValues->green, (float)rgbValues->green);

Edit - wording based on comments

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It's essential to note, however, that they are different types of casts: the first cast converts the integer value to a floating point value, but the second reinterprets the floating point value as if it were an integer. – James McNellis Oct 27 '09 at 2:51
It's not really a double-cast, printf() has no idea that your number is a float, so it can't cast it back to an int (which would do the right thing and print the same number twice). It's just interpreting the bit pattern you sent it (a floating point number) as an integer (since that's what you told it it was in the format string), and printing garbage. – Carl Norum Oct 27 '09 at 2:52
@Carl - you're right, that's better wording than how I said it :) – warren Oct 27 '09 at 5:29

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