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I came across this code snippet 1

int return_printChar1()
{
    // code
    // oops! no return statement
}
int return_printChar2()
{
    // code
    return printf("Return");
}
int main()
{  
   int i;
   // some more code
   i = return_printChar2();
   if((return_printChar1(),i))
   {
      printf ("Gotcha");
   }
}

1: This is not a real life example.

My question is "Is the behaviour of the code snippet well defined in C and C++?"

My take :

In C the behaviour is well defined because 6.5.17 says

The left operand of a comma operator is evaluated as a void expression; there is a sequence point after its evaluation

In C++03 the behaviour is well defined because 5.18 says

A pair of expressions separated by a comma is evaluated left-to-right and the value of the left expression is discarded.

However C++03 (in section 6.6.3) also says that

Flowing off the end of a function is equivalent to a returnwith no value; this results in undefined behavior in a value-returning function.

Similarly in C

If control reaches end (}) of non-void function (except main()) the behaviour is undefined.

So taking all these points into consideration I can't judge the actual behaviour. What do you people think?

P.S : If you think the question is useless and you have got better things to do, help yourself :D.

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What the others said ... and also calling a variadic function with no prototype in scope invokes Undefined Behaviour. –  pmg Mar 24 '11 at 19:15
    
@pmg : Assume that the necessary headers have been included. :) –  Prasoon Saurav Mar 25 '11 at 3:14

3 Answers 3

up vote 5 down vote accepted

The C spec I have (C99 TC3) says

If the } that terminates a function is reached, and the value of the function call is used by the caller, the behavior is undefined.

The value of an expression that's said to be "evaluated as a void expression" is discarded. So in the C case, there is no undefined behavior. It may have been different in old C (some details are, if I remember correctly).

The situation for C++ is slightly different than for C, because C++ supports class objects with constructor and destructors as return values and having them operate on uninitialized memory can't be guaranteed to work well. Perhaps this contributed to the different rules for C++.

share|improve this answer
    
That's what I want to know. Is there a difference between C and C++ behaviour in this regard? And if yes, why such difference? Any historical reasons? –  Prasoon Saurav Mar 25 '11 at 3:15
1  
@Prasoon since C++ has destructors and constructors, they cannot just say "oh, only if you use the return value in the caller it is UB". I guess they just didn't want to keep the C way of this, and make it unconditionally undefined (instead of only making it undefined for class return types). –  Johannes Schaub - litb Mar 25 '11 at 3:33
    
Oh I see. Add this to your answer and I'll accept it :) –  Prasoon Saurav Mar 25 '11 at 3:39
    
Good catch, as usual. –  GManNickG Mar 25 '11 at 3:45

It's undefined behavior.

The evaluation of the left expression results in flowing off the end of a value-returning function with no return. Just because the value is discarded doesn't mean the evaluation never happened.

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It's clearly undefined. C99 §6.3.2.2 says, "(A void expression is evaluated for its side effects.)" So the function is evaluated and does flow off the end. There's no get out of jail free card.

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