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All,

When we are passing an expression as a parameter, how does the evaluation occur? Here is a small example. This is just a pseudocode kind of example:

f (x,y)
{
    y = y+1;
    x = x+y;
}
main()
{
    a = 2; b = 2;
    f(a+b, a)
    print a;
}

When accessing variable x in f, does it access the address of the temp variable which contains the result of a+b or will it access the individual addresses of a and b and then evaluate the value of a+b

Please help.

Regards, darkie15

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2 Answers 2

up vote 0 down vote accepted

Somewhat language dependent, but in C++

f(a+b, a)

evaluates a + b and and pushes the result of evaluation onto the stack and then passes references to this value to f(). This will only work if the first parameter is of f() is s const reference, as temporary objects like the result of a + b can only be bound to const references.

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So when the value of y changes with y = y+1, the next statement i.e. x = x+y will still have y = 2 right? –  name_masked Jun 12 '10 at 13:18
    
@dark No - if the value of y is changed, why would you think the next statement finds it unchanged? –  anon Jun 12 '10 at 14:27
    
@Neil: That is what my initial question was, will 'y' point to the address of the temp variable where the result is stored of the evaluation of expression (a+b). At the time of call, a = 1 and b =2. So the expression is evaluated and the address where this result is stored is binded with the formal parameter 'y'. Am I right here? –  name_masked Jun 12 '10 at 14:38
    
@dark Your original question did not ask that. a+b is evaluated and the result is bound to the formal parameter x (not y). All of this would be easier to answer if you used a real programming language in your question. –  anon Jun 12 '10 at 14:47

In C or C++, as long as x and y are not pointers (in which case the expression is not useful anyway), they are both evaluated before the function call and the VALUE of the result is pushed on the stack. There are no references involved, at all.

All parameters in C and C++ are always passed by value. If a reference type (eg int*, int&) is passed to the function, the VALUE of the reference is passed. While the referenced object may be changed by accessing eg *x within the function, the value of the reference still cannot be changed, because C and C++ parameters are always always always passed by value only.

EDIT: an exception in C and C++ is the case in which some overloaded operator is defined like the following:

T* operator+ (L lhs, R rhs) {return new T(lhs, rhs);}

and x is an L, and y is an R. In this case, the value of the T* generated by the function is pushed on the stack as a parameter. Don't write code like that, it confuses other programmers =D.

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