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Is there a difference between these two statements inside a function?

bool returnValue = true;

//Code that does something

return(returnValue);

and this?

bool returnValue = true;

//Code

return returnValue;

The former has parentheses around returnValue.

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2  
Prepare for some badges. Oddly, these questions always get the most views. –  Linus Kleen Jan 21 '11 at 19:01
    
Welcome to Stack Overflow, Jose. Please take note of the edit I made to your question. It specifically mentions the change between the two blocks of code, which saves readers from the frustration of having to play spot the difference with your code. It also helps people recognize when a difference was intentional instead of just a simple typo (like boo). –  Rob Kennedy Jan 21 '11 at 20:02
    
Thanks Rob, you successfully captured the spirit of the question. In Essence I was wondering whether the compiler did anything special (like trying to evaluate the expression first) or if it just ignored it. –  Jose Villalta Jan 23 '11 at 13:26

13 Answers 13

There is no difference.

One reason to use parenthesis would be if you wanted to evaluate an expression before returning but in your example, there would be no reason. See:

Parenthesis surrounding return values

for further discussion.

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Though even with a complicated expression, these parentheses still don't cause a different behavior. They just make the meaning more obvious (subjectively!) to human readers. –  aschepler Jan 21 '11 at 19:02

Yes, one returns a bool, while the other a boo...


After the edit:

no, they're the same.

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1  
That's a typo I think. –  Prasoon Saurav Jan 21 '11 at 18:58
    
Thanks for pointing that out. –  Jose Villalta Jan 21 '11 at 19:01
    
@Prasoon Saurav: I also thought it was just a typo, but this answer was correct, fun and forced the OP to think about his mistake... –  peoro Jan 21 '11 at 19:02
    
+1 for funny answer-edited answer ;) –  BlackBear Jan 21 '11 at 20:16

AFAIK, nothing is different.

In C++, expressions can have the form: expr or (expr). So, the latter is an expression with more typing. For further reading about this, refer to a grammar (look for "expression").

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David, thanks for the link. I have the grammar in Stroustrup's C++ book, but (out of lazyness I guess) don't look at it that much, now that I have it bookmarked in my browser I can refer to it more often. –  Jose Villalta Jan 23 '11 at 13:33

Besides the obvious syntax error in the second, No there is absolutely no difference.

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No, there are no difference in your code.

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I assume boo is a typo, and you are asking whether there is a difference between

return expr;

and

return(expr);

The answer is no.

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C++14 adds a fringe case where parentheses around a return value may alter the semantics. This code snippet shows two functions being declared. The only difference is parentheses around the return value.

int var1 = 42;
decltype(auto) func1() { return var1; } // return type is int, same as decltype(var1)
decltype(auto) func1() { return(var1); } // return type is int&, same as decltype((var1))

In the first func1 returns an int and in the second one func1 returns an int& . The difference in semantics is directly related to the surrounding parentheses.

The auto specifier in its latest form was introduced in C++11. In the C++ Language Spec it is described as:

Specifies that the type of the variable that is being declared will be automatically deduced from its initializer. For functions, specifies that the return type is a trailing return type or will be deduced from its return statements (since C++14)

As well C++11 introduced the decltype specifier which is described in the C++ Language Spec:

Inspects the declared type of an entity or queries the return type of an expression. [snip] 1. If the argument is either the unparenthesised name of an object/function, or is a member access expression (object.member or pointer->member), then the decltype specifies the declared type of the entity specified by this expression.

  1. If the argument is any other expression of type T, then

    a) if the value category of expression is xvalue, then the decltype specifies T&&

    b) if the value category of expression is lvalue, then the decltype specifies T&

    c) otherwise, decltype specifies T

[snip]

Note that if the name of an object is parenthesised, it becomes an lvalue expression, thus decltype(arg) and decltype((arg)) are often different types.

In C++14 the ability to use decltype(auto) was allowed for function return types. The original examples are where the semantic difference with parentheses comes into play. Revisiting the original examples:

int var1 = 42;
decltype(auto) func1() { return var1; } // return type is int, same as decltype(var1)
decltype(auto) func1() { return(var1); } // return type is int&, same as decltype((var1))

decltype(auto) allows the trailing return type in the function to be deduced from the entity/expression on the return statement. In the first version return var1; is effectively the same as returning the type decltype(var1) (an int return type by rule 1 above) and in the second case return (var1); it's effectively the same as decltype((var1)) (an int & return type by rule 2b).

The parentheses make the return type int& instead of int, thus a change in semantics. Moral of the story - "Not all parentheses on a return type are created equal"

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The parenthesis on the upper example are superfluous; they are effectively ignored.

It would be the same as something like...

int x = (5);

The parenthesis here are ignored as well.

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Well, technically, they're not ignored, they just have no effect on the value of the expression. –  John Bode Jan 21 '11 at 19:35
    
@John: effectively ignored. :) –  James Jan 21 '11 at 19:40
1  
+1 … this is the only answer that states that the parentheses are actually redundant and shows that their usage is a bit stupid. –  Konrad Rudolph Jan 21 '11 at 20:23

Nope there's no difference between the two, although you can include parenthesis if it makes the expression easy to read and clear.

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You're abusively slowing down the compiler!

The presence of parenthesis not only slow down the preprocessing phase, but they generate a more complicated Abstract Syntax Tree too: more memory, more computation.


From a semantic point of view ? They are exactly identical. Whether there are parenthesis or not the return statement will fully evaluate the expression before returning it.

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2  
My thinking exactly. By making the compiler do unnecessary work parsing useless clutter it is nearing the heat death of the universe for no good reason. –  Maxim Yegorushkin Jan 21 '11 at 20:42

No difference!!

People use parenthesis if there's a complex expression involved.

BTW return is a statement not a function.

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More like people use parentheses if they're newbies to C.. –  R.. Jan 21 '11 at 20:47

They are identical. I see the parenthesis syntax quite often, and I always ask those who use it: why? And none can answer why they use it.

To bluntly sum it up, parenthesis around returning expressions are used by people who don't quite grasp the difference between function-like macros and functions, or who are confused about the operator precedence or order of evaluation rules in C. There is no coding style benefit from using parenthesis.

Thus

return value;

is more correct than

return (value)

because the latter suggests you don't quite know what you are doing :)

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Both are the same in your case. But it would be different if you are returning result of an expression. Like (if a=5) return (a++) and a++ differs with 1. First will return 6 but the other 5.

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