Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.


I have the following code in c++:

    int fff ( int a , int b )
{
   if (a>b )
      return 0;
   else a+b ; 
}

although I didn't write 'return' after else it does not make error ! < br/> in main() when I wrote:

cout<<fff(1,2);

it printed 1 ? How did that happened
can any one Explain that ?

share|improve this question
    
i don't believe you! –  Alex Aug 25 '10 at 5:16
2  
Unfortunately, not all control paths returning value is not an error in C++ . See this for explanation stackoverflow.com/questions/1735038/… –  Naveen Aug 25 '10 at 5:16
    
You might have got a warning similar to Not all control paths return a value or something like that... –  liaK Aug 25 '10 at 5:17
    
if you are using gnu compiler, try using -Wall to see the warnings. –  tristan Aug 25 '10 at 5:31

4 Answers 4

up vote 5 down vote accepted

This what is called undefined behavior. Anything can happen.

C++ does not require you to always return a value at the end of a function, because it's possible to write code that never gets there:

int fff ( int a , int b )
{
   if (a>b )
      return 0;
   else return a+b;

   // still no return at end of function
   // syntactically, just as bad as original example
   // semantically, nothing bad can happen
}

However, the compiler cannot determine if you never get to the end of the function, and the most it can do is give a warning. It's up to you to avoid falling off the end without a return.

And if you do, you might get a random value, or you might crash.

share|improve this answer

$6.6.3/2- "Flowing off the end of a function is equivalent to a return with no value; this results in undefined behavior in a value-returning function."

A compiler may or may not diagnose such a condition.

Here

else a + b;

is treated as an expression without any side effect.

share|improve this answer

the "random" return vaule is determined by the CPU register value after the call, since the register is 1 after the call, so the value is 1.

If you change you code, the function will return diffrent value.

share|improve this answer

A good compiler (e.g. gcc) will issue a warning if you make such a mistake, and have a command line switch to return a non-zero error status if any warnings were encountered. This is undefined behaviour: the result you're seeing is whatever value happened to be in the place that the compiler would normally expect a function returning int to use: for example, the accumulator register or some spot on the stack. Your code doesn't copy a+b into that location, so whatever was last put in there will be seen instead. Still, you're not even guaranteed to get a result - some compiler/architecture might do something that can crash the machine if the function didn't have a return statement: for example - pop() a value from the stack on the assumption that return has pushed one - future uses of the stack (including reading function-return addresses) could then get results from the memory address above or below the intended one.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.