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This is is the simple program that I was writing in C

#include <stdio.h>

int main(void){
  int i, j, k;
  i = 2; j = 3;

  k = i * j == 6;
  printf("%d", k);
}

so I know what this program is actually doing two values for the variable's are given here it does the calculation and then check;s the calculated value to the given condition.

Now here is what I am not getting When the program get executed it return's the value 1 when the given condition is satisfied and 0 if not, and i know that 1 stand's for true and o stand's for false but what i was thinking how doe's it do that i mean there is nothing in the program that tell' it to print 0 or 1 for the condition. Is it default in some C compilers to return that values or am i missing some point.

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2  
I see no declaration of variable k; this program will not compile. Beyond that, you explained it yourself. 1 stands for true. 6 == 6, therefore the expression is true, which is represented as 1. –  abelenky Aug 30 '13 at 15:54
    
that mean's it is default in the compiler to give the value on getting true or false values –  Akash Aug 30 '13 at 15:57
    
Are you asking where it's defined that true == 1 and false == 0? That is, why are those numerical values used for booleans? –  iamnotmaynard Aug 30 '13 at 15:59
    
yeah thank's just wanted to be sure –  Akash Aug 30 '13 at 16:02
1  
@abelenky I've fixed his program so that it compiles and outputs like he says it does: ideone.com/rJNGPR –  Paulpro Aug 30 '13 at 16:07

3 Answers 3

up vote 3 down vote accepted

There is nothing in the program that tells it to print 0 or 1 for the condition.

Yes there is, you print k and you assigned the result of the comparison to k. These are all equivalent (given that i = 2 and j = 3):

k = i * j == 6;
k = (i * j == 6);
k = (6 == 6);
k = 1;

Then you print it:

printf("%d", k); // Prints 1
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1  
And what is the type of variable k? Where is it declared? –  abelenky Aug 30 '13 at 15:56
    
@abelenky I'm assuming it's declared (as an integral type, probably safe to assume int) in the OP's actual program, which compiles and prints 1. –  Paulpro Aug 30 '13 at 15:58
    
so it is default in a compiler to print 1 or 0 in the output upon getting the condition executed –  Akash Aug 30 '13 at 16:00
    
@Akash No, you're just printing the value of k and since k == 1, it prints 1. –  Paulpro Aug 30 '13 at 16:01
1  
@Akash What would you expect the line printf("%d", k); to print? –  Paulpro Aug 30 '13 at 16:02

As you said it yourself, logical expressions in C evaluate either to 0 (false) or to 1 (true). That's exactly what "tells it" to put either 0 or 1 into your k variable, depending on whether the condition is satisfied.

Now, you seem to be talking about what your program "returns". I'm not sure what you mean by "returns" here. The program exit code perhaps? Your main function does not contain any return statements, which means that in C89/90 its return value will be unpredictable, while in C99 it will be guaranteed to return 0. I suspect that you are using a C89/90 compiler that simply returns "garbage" from main, which purely accidentally happens to match the final value of k.

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I could be wrong, but I believe he just means what it prints to stdout, when he says "returns". –  Paulpro Aug 30 '13 at 16:04
    
i am using Code Block's and i think it is C99 compiler –  Akash Aug 30 '13 at 16:05
    
@Akash: Well, if you are using a C99 compiler , the your main function (and your program) is guaranteed to return 0. So, the question is then what you mean by "returns" in your original question. If you are referring to the output of printf, then you already know the answer. –  AnT Aug 30 '13 at 16:41

In C, there is no true or false, just 1 and 0, or more precisely 0 and not 0.

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