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After a typo, the following expression (simplified) compiled and executed:

    if((1 == 2) || 0 (-4 > 2))
      printf("Hello");

of course, the 0 shouldn't be there.

Why does it compile, and what does the expression mean?

The original (simplified) should look like this:

    if((1 == 2) || (-4 > 2))
      printf("Hello");

none of this does compile:

    if((1 == 2) || true (-4 > 2))
      printf("Hello");

    if((1 == 2) || 1 (-4 > 2))
      printf("Hello");

    if((1 == 2) || null (-4 > 2))
      printf("Hello");
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marked as duplicate by Panagiotis Kanavos, David Robinson, Michael Kjörling, MAK, tpg2114 Jul 25 '13 at 20:56

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.

3  
I've just tried this and got warning C4353: "nonstandard extension used: constant 0 as function expression. Use '__noop' function intrinsic instead" –  Rup Jul 25 '13 at 12:51
3  
i got error: called object ‘0’ is not a function –  Dayal rai Jul 25 '13 at 12:52
3  
This has already been answered at stackoverflow.com/questions/2198950/… –  Panagiotis Kanavos Jul 25 '13 at 12:53

6 Answers 6

up vote 7 down vote accepted

In fact it is Microsoft specific.

For debug purpose, you can use __noop intrinsic, it specifies that the function and the parameters will no be evaluated.

In your case, Microsoft compiler thinks you are trying to use 0 to do the same, that's why it works but for example, on VS2012 it gives the warning :

warning C4353: nonstandard extension used: constant 0 as function expression.  Use '__noop' function intrinsic instead.

See this for more informations : http://msdn.microsoft.com/en-us/library/2a68558f(v=vs.71).aspx

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The important thing is, that the parameters don't get evaluated as well. –  huebe Jul 26 '13 at 6:27
    
What does such noop-ed function return? if((1 == 2) || 0 (-4 > 2)) requests a boolean. Is it some random number from a register? –  Kane Jun 20 '14 at 16:16

It looks like this is a Visual C++ extension to support a particular 'no function defined' idiom. From the warning C4353 page:

// C4353.cpp
// compile with: /W1
void MyPrintf(void){};
#define X 0
#if X
   #define DBPRINT MyPrint
#else
   #define DBPRINT 0   // C4353 expected
#endif
int main(){
    DBPRINT();
}

the intention being that DBPRINT is a no-op. The warning suggests #define DBPRINT __noop instead, using VC's __noop extension instead.

If you view the assembly listing for your output you'll see the second clause is omitted, even in debug mode.

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Guess it was interpreted as

if((1 == 2) || NULL (-4 > 2))
  printf("Hello");

where NULL is a function-pointer, by default returning int... What at actually happens in runtime is platform-dependent

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The importance of type-safety... C++11 renders things more secure with this kind of problems by introducing another type of NULL value –  Marco A. Jul 25 '13 at 19:59

Visual Studio 2012 gives you the following warning:

warning C4353: nonstandard extension used: constant 0 as function expression. Use '__noop' function intrinsic instead

it is a non-standard way to insert a "no operation" assembler instruction at that point of expression evaluation

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In ubuntu it is showing error

int main()
{
 if((1 == 2) || 0 (-4 > 2))
      printf("Hello");
}

o/p

niew1.c:3:19: error: called object â0â is not a function
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Probably 0 is casted to a function pointer here. Explicit cast may look like this:

if((1 == 2) || ((int (*)(int)) 0) (-4 > 2)) 
      printf("Hello");

However, I have no guesses about what function 0 is casted to in implicitly in your example.

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