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I want to execute some function right before the return of another function. The issue is that there are multiple returns and I don't want to copy-paste my call before each of them. Is there a more elegant way of doing this?

void f()
{
    //do something
    if ( blabla )
        return;
    //do something else
    return;
    //bla bla
}

I want to call g() before the function returns.

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Write a dispatcher: void call_f() { f(); g(); } –  Kerrek SB Jul 29 '11 at 13:28

8 Answers 8

up vote 12 down vote accepted
struct DoSomethingOnReturn {
  ~DoSomethingOnReturn() {
    std::cout << "just before return" << std::endl;
  }
};
...
void func() {
  DoSomethingOnReturn a;
  if(1 > 2) return;      
}
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Or there's a ScopeGuard –  unkulunkulu Jul 29 '11 at 13:14
    
@loki2302 nice trick, but seems overkill to me... I'd just wrap any complexity within a simple function call and return it for syntax sugar –  Lea Hayes Jul 29 '11 at 13:20
1  
@Lea Hayes: Why? Simple and idiomatic solution. –  loki2302 Jul 29 '11 at 13:22
    
@loki2302 there is going to be more overhead (depending upon how good the optimizer is) because of unwinding the stack and calling destructors. A simple function is called explicitly so it should theoretically be more efficient. And you can avoid defining structs/classes as a simple function can do the trick. Just my personal preference. –  Lea Hayes Jul 29 '11 at 13:25
1  
@Lea: premature optimization in the flesh... . Very likely with modern compilers this will make no difference (RAII is to important to not optimize it) –  KillianDS Jul 29 '11 at 13:27

There are some ways to do this.
One would be to use boost::scope_exit or use a struct and do your work in the destructor.
I dislike the preprocessor syntax of boost and I am too lazy to write struct so I prefer using a boost::shared_ptr or on newer compilers a std::shared_ptr. Like this:

std::shared_ptr<void>(nullptr, [](void*){ /* do your stuff here*/ });
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+1, nice! in fact, i think boost should have a version of scope_exit which leverages this on c++0x compilers! –  Evan Teran Jul 29 '11 at 15:00

This is often a sign that instead of trying to artificially do something before every return, you should try to refactor your function into single-exit form. Then it's super easy to do your extra step because...there's only one return.

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What happens if an exception is thrown? –  Mark Aug 3 '12 at 12:36

I think try-finally statements will do what you want.

void f()
{
    __try
    {
       //do something
       if ( blabla )
           return;
       //do something else
       return;
      //bla bla
    }
    __finally
   {
      g();
   }
}

The try-finally statement is a Microsoft extension to the C and C++ languages that enables target applications to guarantee execution of cleanup code when execution of a block of code is interrupted. Cleanup consists of such tasks as deallocating memory, closing files, and releasing file handles. The try-finally statement is especially useful for routines that have several places where a check is made for an error that could cause premature return from the routine.

Quoted from msdn.

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It's not C++, it's Microsoft-specific extensions. –  loki2302 Aug 11 '11 at 12:51
    
Already mentioned that in my answer. its a Microsoft extension to C and C++. But I don't think using an extension makes it non-C++. –  Ragesh Chakkadath Aug 11 '11 at 16:48
#define RETURN_IT g(); \
        return;

void f()
{
    //do something
    if ( blabla )
        RETURN_IT;
    //do something else
    RETURN_IT;
    //bla bla
}

Simple, although I do kind of like loki's suggestion

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Also nice. Thanks. –  Luchian Grigore Jul 29 '11 at 13:50

For this kind of thing, you could simply use a boolean. That way you don't have too many if/else statements:

void f()
{
    //do something
    done = false;
    if ( blabla )
        done = true;
    //do something else

    if (!done) {
        // some code
        done = true;
    }

    if (!done) {
        // some other code
        done = true;
    }

    return;
}
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+1 Nice idea but I like loki's better :) –  Luchian Grigore Jul 29 '11 at 13:18
void f()
{
    //do something
    if ( blabla )
        return;
    //do something else
    return;
    //bla bla
}

void f_callg()
{
    f();
    g();
}

If there is no access to where f() is called from

void f_copy_of_old()
{
    //do something
    if ( blabla )
        return;
    //do something else
    return;
    //bla bla
}

void f()
{
f_copy_of_old();
g();
}
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No access to where f() is called from... –  Luchian Grigore Jul 29 '11 at 13:17
int g() {
    // blah
    return 0;
}

void f() {
    // do something
    if (blabla)
        return g();
    // do something else
    return g();
}
share|improve this answer
    
But then if blabla is true, g() would never get called... –  Luchian Grigore Jul 29 '11 at 13:15
    
@Luchian sorry I misread your question, I have updated my answer –  Lea Hayes Jul 29 '11 at 13:17

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