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I never use the comma operator.
But sometimes, when I write some recursions, I make a stupid mistake: I forget the function name. That's why the last operand is returned, not the result of a recursion call.

Simplified example:

int binpow(int a,int b){
    if(!b)
        return 1;
    if(b&1)
        return a*binpow(a,b-1);
    return (a*a,b/2); // comma operator
}

Is it possible get a compilation error instead of incorrect, hard to debug code?

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5  
This is too much. You want the compiler to do every job for you? –  Nawaz Nov 15 '11 at 16:53
2  
@Nawaz I want to make as more erorrs as possible compilation error. –  RiaD Nov 15 '11 at 17:00
3  
@Nawaz, I assume you would do away with all compiler messages? ;-) –  Jimmy Nov 15 '11 at 17:07
    
"return (a*a,b/2); // comma operator" That line should scream at you and make your eyes burn. You don't need a compiler error, you just need to read the freaking line. –  Daniel Daranas Aug 2 '13 at 8:35
    
@DanielDaranas if I understand the question correctly @RiaD added the comment to point out that he had inadvertently used the comma operator because he had forgotten the function name. ie: he meant return binpow(a*a,b/2);, but instead made a mistake and wrote return (a*a,b/2); which invoked the comma operator rather than causing a compilation error –  Steve Lorimer Sep 15 '14 at 3:43

2 Answers 2

up vote 20 down vote accepted

Yes, with a caveat. The gcc has the -Wunused-value warning (or error with -Werror). This will take effect for your example since a*a has no effect. Compiler result:

test.cpp: In function ‘int binpow(int, int)’:
test.cpp:6:43: warning: left operand of comma operator has no effect [-Wunused-value]

However, this won't catch single-argument calls and calls where all arguments have side effects (like ++). For example, if your last line looked like

return (a *= a, b/2);

the warning would not be triggered, because the first part of the comma statement has the effect of changing a. While this is diagnoseable for a compiler (assignment of a local, non-volatile variable that is not used later) and would probably be optimized away, there is no gcc warning against it.

For reference, the full -Wunused-value entry of the manual with Mike Seymours quote highlighted:

Warn whenever a statement computes a result that is explicitly not used. To suppress this warning cast the unused expression to void. This includes an expression-statement or the left-hand side of a comma expression that contains no side effects. For example, an expression such as x[i,j] will cause a warning, while x[(void)i,j] will not.

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There is no unused value in the code. –  Nawaz Nov 15 '11 at 16:54
4  
@Nawaz: Sure, but the left operand of the comma has no effect and is ignored, which is caught by -Wunused-value. –  thiton Nov 15 '11 at 16:54
2  
@Nawaz: He's right. a*a is quite obviously an unused value. –  Lightness Races in Orbit Nov 15 '11 at 16:57
6  
@Nawaz: whether or not it's technically an unused value (which I'm fairly sure it is), that GCC option catches it. From their documentation: "This includes an expression-statement or the left-hand side of a comma expression that contains no side effects." –  Mike Seymour Nov 15 '11 at 16:58
1  
Of course it's an unused value. Show me where it's being used; I dare you. –  Lightness Races in Orbit Nov 15 '11 at 16:59

gcc lets you specify -Wunused-value which will warn you if the LHS of a comma operator has no side effects.

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