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template <typename dataTypeA, 
          typename dataTypeB> 
                             dataTypeB const& functionX (dataTypeA argA, 
                                                         dataTypeB const& argB)
{
    return argA;
}

int main ()
{
    cout << functionX (3, 1L);
    return 0;
}

The compilation:

anisha@linux-dopx:~/Desktop/notes/c++> g++ functionTemplates.cpp -Wall -Wextra -pedantic

functionTemplates.cpp: In function ‘const dataTypeB& functionX(dataTypeA, const dataTypeB&) [with dataTypeA = int, dataTypeB = long int]’:
functionTemplates.cpp:47:26:   instantiated from here
functionTemplates.cpp:35:9: warning: returning reference to temporary

and then:

anisha@linux-dopx:~/Desktop/notes/c++> ./a.out
3

Why is it returning 3?

Isn't argA a local variable for that function? Returning its reference shouldn't be successful, isn't it?

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1  
It's a good idea to run your program through valgrind, which will tell you that something is wrong. A very short test program doesn't always make an error evident. –  Kerrek SB Aug 27 '11 at 10:18
    
@Kerrek Thanks for the reminder :) –  TheIndependentAquarius Aug 27 '11 at 10:23

2 Answers 2

up vote 5 down vote accepted

The compiler issues a warning, that you are returning an reference to local variable.

It works because returning a reference to local variable from a function is Undefined Behavior.
Undefined Behavior means anything can happen and the behavior cannot be explained within the semantics of the C++ Standard.

You are just being lucky, rather unlucky that it works. It may not work always.

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2  
Compiler warnings should not be overlooked –  Nikko Aug 27 '11 at 9:40
    
Thanks, I thought so too, but then if the local variable does NOT exist outside its scope, it shouldn't be accessible AT ALL, IMO. –  TheIndependentAquarius Aug 27 '11 at 9:40
    
@Anisha Kaul: There was a very famous question around here somewhere, which talked of this, let me find it for you. –  Alok Save Aug 27 '11 at 9:42
    
It isn't accessible, you're breaking the rules by trying to make it so. –  Flexo Aug 27 '11 at 9:43
1  
@Anisha Kaul: Here you go. –  Alok Save Aug 27 '11 at 9:44

You're returning a reference to the copy of argA, as it existed when you called the function. When you return from that function that copy will have been destroyed and the space it was in can quite legitimately be used by something else.

This is no different to this question, except that you're using a reference instead of a pointer.

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Thanks for the helpful link. –  TheIndependentAquarius Aug 27 '11 at 9:45

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