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Ok. This is got to be one of the weirdest errors I have faced. I have these 2 lines in my code

 int id=i*2000*512+512*row+column;
 if (id==1){printf("This is output %f %f %f %i \n",entire_red[id],entire_green[id],entire_blue[id],id);}

and it gives me the output

This is the output 0.000000 0.000000 0.000000 109456488.

I have no clue what's happening!

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4  
What is the type of entire_red, entire_green and entire_blue? If they are not a floating point type, then that is your problem. –  dreamlax Mar 6 '11 at 21:33
    
What are entire_red, etc.? Are they arrays of doubles or floats? –  Jeremiah Willcock Mar 6 '11 at 21:34
    
@dreamlax: The question is why id == 1 is true when printed is shows 109456488 –  Tim Cooper Mar 6 '11 at 21:34
5  
@Tim Cooper: I know what the question is, but if the entire_red variable is not a floating point type, printf will be walking the stack incorrectly. –  dreamlax Mar 6 '11 at 21:35
    
Still surprising that the big c compilers don't have a warning built in for that. Mistakes with printf are common, and if the first parameter is a compile time constant the compiler can infer the expected types. (This is of course only possible for a few selected function like printf and not every vararg function) –  CodesInChaos Mar 6 '11 at 22:08

3 Answers 3

up vote 6 down vote accepted

The %f format specifier expects a double (float is implicitly converted to double for variadic functions). If variable_red et al are not float or double variables, then printf will be processing the arguments incorrectly, and that could explain why the id integer is printing incorrectly.

Try this:

if (id==1)
    printf("This is output %f %f %f %i\n", (double)entire_red[id],(double)entire_green[id],(double)entire_blue[id],id);

Alternatively, ensure you are using the correct format specifiers for the entire_red, entire_green and entire_blue variables.

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Thanks all.I had entire_red/green/blue as int arrays and was using %f .Now i corrected that back to %i and it works fine. –  Manish Mar 6 '11 at 21:59
    
I believe this is a correct possible explanation. Take note about function prototypes in 'K & R' & passing argument types which match the function declaration. Stack misalignment is a common side effect of this. –  David Victor Mar 6 '11 at 22:07

Did you include stdio.h? If you don't, the compiler might select a calling convention not compatible with printf, which will pick up "random" values.

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1  
Though I didn't do the -1, had if the OP didn't include stdio.h, compiler errors should definitely prevail upon use of printf. –  Mahesh Mar 6 '11 at 21:41
    
I really don't understand the down-vote. I've spent the last 14 years of my life writing C compiler for the embedded world. If stdio.hisn't included, the compiler will assume it's a Kernighan&Richie function and pass parameters accordingly, typically in processor registers. As printf takes a variable number of parameters, it will typically expect to find it's arguments on the stack. –  Lindydancer Mar 6 '11 at 23:23
    
@Mahesh: Unlike C++, it is legal to call a function in C without declaring it, so the compiler should at most issue a warning. –  Lindydancer Mar 7 '11 at 0:13
    
You are correct. +1 from me since I didn't knew it earlier. ideone.com/gILoT –  Mahesh Mar 7 '11 at 0:17

The %i is printing wrong values because %i is awaiting an pointer address to an integer. So you have to pass &id instead of id.

I think the rest of the printf format is already described by other answers.

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1  
%i is equivalent to %d; it doesn't take a pointer. –  Jeremiah Willcock Mar 6 '11 at 21:53
    
Oh my bad. I've mistaken with scanf... stupid me. –  M'vy Mar 6 '11 at 21:57
    
%i is the format for a signed integer. I do not believe this answer is correct. –  David Victor Mar 6 '11 at 22:02

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