80

This (note the comma operator):

#include <iostream>
int main() {
    int x;
    x = 2, 3;
    std::cout << x << "\n";
    return 0;
}

outputs 2.

However, if you use return with the comma operator, this:

#include <iostream>
int f() { return 2, 3; }
int main() {
    int x;
    x = f();
    std::cout << x << "\n";
    return 0;
}

outputs 3.

Why is the comma operator behaving differently with return?

138

According to the Operator Precedence, comma operator has lower precedence than operator=, so x = 2,3; is equivalent to (x = 2),3;. (Operator precedence determines how operator will be bound to its arguments, tighter or looser than other operators according to their precedences.)

Note the comma expression is (x = 2),3 here, not 2,3. x = 2 is evaluated at first (and its side effects are completed), then the result is discarded, then 3 is evaluated (it does nothing in fact). That's why the value of x is 2. Note that 3 is the result of the whole comma expression (i.e. x = 2,3), it won't be used to assign to x. (Change it to x = (2,3);, x will be assigned with 3.)

For return 2,3;, the comma expression is 2,3, 2 is evaluated then its result is discarded, and then 3 is evaluated and returned as the result of the whole comma expression, which is returned by the return statement later.


Additional informations about Expressions and Statements

An expression is a sequence of operators and their operands, that specifies a computation.

x = 2,3; is expression statement, x = 2,3 is the expression here.

An expression followed by a semicolon is a statement.

Syntax: attr(optional) expression(optional) ; (1)

return 2,3; is jump statement (return statement), 2,3 is the expression here.

Syntax: attr(optional) return expression(optional) ; (1)

  • 1
    good explanation. But are there some practical applications ? or just errors to be done? – Jean-François Fabre Sep 7 '16 at 7:59
  • 7
    @Jean-FrançoisFabre IMO it's just confusing, not useful at all. – songyuanyao Sep 7 '16 at 8:00
  • 11
    I've seen it once or twice used in for loops when, bizarrely, it can make code clearer in numerical calculations. – Bathsheba Sep 7 '16 at 8:05
  • 6
    @Jean-FrançoisFabre: like Bathesheba says, it's so that you can write something like i += 1, j += 2 in a for loop. Someone decided that the C++ grammar (or rather the C grammar, since this part was copied from there) is complicated enough already without trying to define that the precedence of comma is higher than assignment when you write x = 2, 3 but lower when you write x = 2, y = 3! – Steve Jessop Sep 7 '16 at 15:07
  • 1
    @Holger: Semicolon terminates a statement, it isn't an operator. This is something the answer could be tweaked to make more clear. "x = 2 , 3" is an expression with 2 operators, and for reasons of supporting for(;;), = has higher precedence. (As everyone else said.) But "return 2, 3;" is a statement that contains the expression "2, 3". There isn't technically a precedence to the keyword "return". (Although effectively, since it's part of the statement that accepts the expression, it is parsed last -- lower "precedence" than any operator in the expression.) – Micha Berger Sep 8 '16 at 14:56
32

The comma (also known as the expression separation) operator is evaluated from left to right. So return 2,3; is equivalent to return 3;.

The evaluation of x = 2,3; is (x = 2), 3; due to operator precedence. Evaluation is still from left to right, and the entire expression has the value 3 with the side-effect of x assuming the value of 2.

  • 2
    Can you please edit and elaborate more on expression separation operator? Like I mentioned in a comment on @songyuanyao's answer, I can understand why return 2,3 and return (2,3) are the same. I believed the former should be (return 2),3. – ps95 Sep 7 '16 at 8:11
  • @BiagioFesta explains that part well. – Bathsheba Sep 7 '16 at 8:26
  • 1
    @prakharsingh95 return 2 is a statement (like e.g. those formed by for,while,if), not an expression. You can't write e.g. f(return 2) or 2+return 2. So, (return 2),3 is syntactically invalid. – chi Sep 7 '16 at 17:05
  • @chi Yes, you are correct. I meant I was expecting return 2, 3 to be interpreted as (return 2), 3. – ps95 Sep 7 '16 at 17:07
  • 2
    @prakharsingh95 according to the grammar of C++, return can only occur in the following cases: (a) return expression_opt ;, and (b) return braced-init-list ; . – M.M Sep 8 '16 at 4:23
19

This statement:

  x = 2,3;

is composed by two expressions:

> x = 2
> 3

Since operator precedence, = has more precedence than comma ,, so x = 2 is evaluated and after 3. Then x will be equal to 2.


In the return instead:

int f(){ return 2,3; }

The language syntax is :

return <expression>

Note return is not part of expression.

So in that case the two expression will be evaluated will be:

> 2
> 3

But only the second (3) will be returned.

  • 2
    UV'd. Very picky, but would be nice if you marked <expression> as explicitly optional (from a grammar perspective). – Bathsheba Sep 7 '16 at 8:27
  • 2
    There are 5 expressions in the parse tree of x=2,3. Both literals 2 and 3 are at the bottom of the parse tree, as is the identifier x. These are all individually valid expressions. Operator precedence means that = occurs lower in the parse tree, and combines the two expressions x and 2 into the fourth expression x=2. Finally, the fifth expression is formed by the comma operator joining its two sides x=2 and 3. However, you incorrectly state that operator precedence determines the order of evaluation. It doesn't. The order of evaluation is determined by sequencing rules. – MSalters Sep 7 '16 at 8:59
  • 2
    I voted up for mentioning that return isn't part of an expression – Daniel Jour Sep 7 '16 at 14:02
  • @MSalters I agree with you, but I just incorrectly used the word "because", instead of "since". Something my English is not so perfect! ;-= – Biagio Festa Sep 7 '16 at 14:22
  • 2
    Is "macro-expression" a technical term here? It seems a bit confusing to use it when "macro expressions" in the sense of preprocessor stuff also exist. – senshin Sep 8 '16 at 4:57
2

Try to apply the simplistic approach just highlighting the precedence with parenthesis:

( x = 2 ), 3;

return ( 2, 3 );

Now we can see the binary operator "," working in the same way on both, from left to right.

  • 1
    The tricky part is realizing that the x = 2, 3 is itself an expression ,while for return it's return <expression> . So you read them as (x = 2, 3) and (2, 3). – ps95 Sep 15 '16 at 14:03

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