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In c/c++ if a function is boolean you can do a trick like this

function1() || function2();

so if function1() fails function2() is run. I remember there is also a trick to do something like

function() || return false;

But "return false" does not give a result back. This kind of stuff is common in other languages like perl.

Question

function() || (x);

what the I put in x so that I get the equivalent of

if(function()==false)
    return false;

Edit

I'm not going to select an answer and let the vote bubble people up. Anyway here's the solution:

first put this somewhere

#define treturn(x) ({return (x); 1;})

And now you can do this

function() || treturn(false)

or return what ever you please. Where the treturn part happens only if function()==false. And you can use "&&" aswell

function() && treturn(false)

treturn in this case will happen when function()==true.

Note As many people have already mentioned. You shouldn't do this. And ds27680 posted a good alternative

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9  
I beg to differ. It very definitely does not make the code more readable. –  John Dibling Nov 25 '11 at 16:15

4 Answers 4

I'm trying to figure out where the "trick" is. In C++, operators || and && are defined to be short-circuiting, and it is standard practice to use them as such, e.g. for things like:

return p == NULL || *p == '\0';

Of course:

return function() || return false;

is illegal—it is possible in Perl, where it is one of the things that make Perl a write only language.

return function() || false;

is legal, syntactically, but meaningless; it is the exact equivalent of:

return function();

And your last example should be written:

if ( !function() ) {
    return false;
}

. Or more likely with something along the lines of:

bool retval = true;
if ( function() ) {
    //  ...
    retval = ...
}
return retval;

Why obfuscate when you can make it clear?

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Maybe '(func1() ? Return false : (void)0);' –  Mooing Duck Nov 25 '11 at 16:50
    
heres the trick I finally found it: "function() || {return false; int unused=7;};" And that part can be "#define sret(x) ..." so it can return anything –  over_optimistic Nov 25 '11 at 16:51
    
"#define treturn(x) ({return (x); int unused; unused=7;})" Now you can do "function() || treturn(false); –  over_optimistic Nov 25 '11 at 17:00
    
@over_optimistic this also won't work without compiler extension. The operands of || must be an expression, while compound-statement is not an expression. –  fefe Nov 25 '11 at 17:03
    
@MooingDuck No. Return is a type of statement, and not an operator; it can't appear in an expression. –  James Kanze Nov 25 '11 at 18:54

This might not be the answer you're really looking for, but I think it's better to do this:

return function();

...or, if you're feeling verbose:

if( function() )
  return true;
else 
  return false;

Playing little tricks with the language syntax will only get you in trouble, or punched by a future maintenance programmer down the line.

EDIT: Per your comments here, if you want to return false if the function evaluates to false or else continue execution if it evaluates to true, then there can be no simpler, more performant or easer-to-maintain way to do this than:

if( !function() )
  return false;

/*
 * MAGIC HAPPENS!
 */

EDIT2: If you are trying to avoid multiple return points, then simply:

if( function() )
{ 
  /*
   * MAGIC HAPPENS!
   */
}
share|improve this answer
    
The verbose version is IMHO not the way to go. Just name your function properly. –  RobAu Nov 25 '11 at 16:15
    
If function() == true I don't want to return anything and continue with execution of my code. –  over_optimistic Nov 25 '11 at 16:16
    
@over_optimistic No you don't. At least not if you want others to be able to understand what you've written. return statements in the middle of functions are very confusing, and make analyzing the code unnecessarily difficult. –  James Kanze Nov 25 '11 at 16:18
    
you forgot return function() ? true : false; for when your indecisive :P –  Necrolis Nov 25 '11 at 16:18
    
@over_optimistic: Please see my edit. –  John Dibling Nov 25 '11 at 16:23

In case of just false return function()

Else

return function() || function2()

But beware, I'm not sure if the order of the OR statement is defined.

If it is, and function() returns true, function2() is not evaluated.

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2  
or statements in C++ are evaluated left to right (with short-circuiting) –  Chris Nov 25 '11 at 16:15
    
It is, see en.wikipedia.org/wiki/Short-circuit_evaluation –  alex vasi Nov 25 '11 at 16:16
    
order of logical operators is defined in standard –  triclosan Nov 25 '11 at 16:16
    
yes, it is defined by the language. cplusplus.com/forum/articles/3483 –  OSH Nov 25 '11 at 16:17
    
left to right - like and. –  Ed Heal Nov 25 '11 at 16:17

The simplest way to get the equivalent of:

if(function()==false)
    return false;

would be:

return function();

:-)

Now getting serious... and to address the comments, if you have code after the if then in my humble opinion you already wrote the form most C++ developers would have no readability problems with (for completeness sake):

if(function()==false)
    return false; 

or:

   if ( !function() )
      return false; 

Anything else is either not possible or of dubious value in my opinion...

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Unless of course more processing is required if function() returns true... –  Chris Nov 25 '11 at 16:15
    
It returns no matter what! –  Nawaz Nov 25 '11 at 16:15
3  
Not necessarily; maybe if it's true you don't want to return yet. –  Toomai Nov 25 '11 at 16:15
    
Your solution is simple and correct. Why do some programmers want to make things complicated and unreadable? –  Ed Heal Nov 25 '11 at 16:17

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