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I don't have a compiler handy but this is itching my curiosity. If I have code like this:

float a = 1;
float b = 2;

-a.add(b);

Would it be run as:

add(-a, b);

or

-add(a, b);
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what is add for float? –  Vlad Nov 5 '12 at 0:27
    
Just a simple return a + b function. –  Joan Venge Nov 5 '12 at 0:29
    
The latter. the application of negation is after the invocation (and summarily thrown away in this case). –  WhozCraig Nov 5 '12 at 0:31
    
Why is it thrown away? –  Joan Venge Nov 5 '12 at 0:32
    
Because you're not assigning it to anything. its like writing a single line in your c++ code like -(a+b);. There is no lvalue here. I.e. x = -(a+b); x is the lvalue. –  WhozCraig Nov 5 '12 at 0:33

3 Answers 3

up vote 3 down vote accepted

Aside from the fact that float doesn't have add method, of course, the second -- unless the language somehow knows the properties of the add function. Otherwise it can be plain wrong: imagine what would happen if you replace -f(x) with f(-x) for f(x) = x * x!

If however compiler knows that add is just an addition (for example, it inlines the function), it is allowed to choose whatever way it wants provided that the result stays unchanged.

For the expression -a.add(b), definitely (-a) + b is different from -(a + b), so the compiler will just choose the right one. According to the precedence table, function call has higher priority, so -(add(a, b)) will be chosen.

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The latter, because the sign matters when it comes to addition/subtraction.

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Assuming you define something like float add(float a, float b) { return a + b; }, then it will be the second. Function calls have a higher operator precedence that unary minus, hence it would call the function, and then unary minus the result.

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