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I have three code snippets. This one:

1,7; //yes, that's all the code

compiles okay. This one:

double d = (1, 7);

also compiles okay. Yet this one:

double d = 1, 7;

fails to compile. gcc-4.3.4 says

error: expected unqualified-id before numeric constant

and Visual C++ 10 says

error C2059: syntax error : 'constant'

Why such difference? Why don't all the three compile with , having the same effect in all three?

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3  
I think the grammar would be really quite hairy to treat double d = 1, 7; as a single declarator, with 1, 7 as the initializer expression, while treating double d = 1, e = 7; as two declarators. Or would you go even further, and say that if there already is an e in scope then double d = 1, e = 7; should also be treated as a single declarator, with initializer expression 1, e = 7? I see a lot of potential for confusion, just to save typing a couple of parens in the case double d = (1, 7); which is pointless anyway. –  Steve Jessop Dec 15 '11 at 12:20

4 Answers 4

up vote 11 down vote accepted

In the first two cases, the statements are using C++'s comma operator

In the latter case, comma is being used as variable separate and the compiler is expecting you to declare multiple identifiers; the comma is not being used as the operator here.

The last case is similar to something like:

float x,y;
float a = 10, b = 20;

When you do this:

double d = 1, 7;

The compiler expects a variable identifier and not a numeric constant. Hence 7 is illegal here.

However when you do this:

double d = (1,7);

the normal comma operator is being used: 1 gets evaluated and discard while 7 is stored in d.

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+1: Yes, the answer is essentially "because the grammar says so". –  Oli Charlesworth Dec 15 '11 at 12:12
5  
"the comma operator is not being used in the way it normally is" - to be precise, that comma token is not the comma operator at all. It's a separator between two declarators, and 7 is not a valid declarator. –  Steve Jessop Dec 15 '11 at 12:15
    
Thanks Steve. Updated my answer :-) –  sharjeel Dec 15 '11 at 12:28

The difference is that in 1, 7; and (1, 7) you have expressions where a comma operator is allowed.

Your last example

double d = 1, 7; 

is a declaration, where the comma isn't an operator but a separator. The compiler exepcts something like

double d = 1, e = 7; 

which would be a correct variable declaration.

Note that the comma is sometimes an operator (in expressions), but is also used as a separator in other places like parameter lists in function declarations.

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  1. double d = (1, 7); Here the (1, 7) will be evaluated first; the comma works as sequential-evaluation operator, and 7 will be assigned to d.

  2. double d = 1, 7; In this case there is a problem: the part before the comma means you declare a double and set its value, but the part after the comma is meaningless, because it's just a single integer constant.

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I believe it is because the last one is treated as (incorrect) declaration line: (double d = 1), (7)

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If that were the case, it should compile, just as 1,7; does. –  Nikodemus Dec 15 '11 at 12:16
    
1,7; is basically a very simple statement, so it is allowed by compiler... Your last line is an incorrect declaration. –  DejanLekic Dec 15 '11 at 12:18

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