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In a C++ function, can I use one of the parameter's getter to set the default value of the other parameter following it? For example if I have the followig class Foo,

class Foo{
   public:
      setID();
      getID();
   private:
      string id;
}

Can I write a function fooManipulator like this,

int fooManipulator(Foo bar, string id = bar.getId());
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Also, make a practice to pass structure by reference (if the pass by value is not needed). i.e. (Foo &bar, string &id) –  iammilind Aug 23 '11 at 6:30

2 Answers 2

up vote 3 down vote accepted

No, as has been stated, the order of evaluation of arguments to a function is unspecified.

However, you can achieve the effect easily with an overload like this:

int fooManipulator(Foo bar)
{
    return fooManipulator(bar, bar.getId());
}
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+1, nice solution. You can also explain, why it's "No". –  iammilind Aug 23 '11 at 4:27

No. You cannot refer to another parameter in a default argument because the order of evaluation of function arguments is unspecified.

For example, in your fooManipulator function, the argument passed to parameter id may be evaluated before the argument passed to parameter bar. This could make invalid the use of bar in the default argument for parameter id.

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Shouldn't it always be left to right evaluation ? Because, if this program compiles then it ensures that, bar should be declared first before used (i.e. bar.getId()). –  iammilind Aug 23 '11 at 4:26
    
@iammilind: Parameters come into scope in left-to-right order, so yes, were = bar.getId() allowed, bar would indeed refer to the parameter bar. Arguments are evaluated in an unspecified order. Given fooManipulator(x, y), it is unspecified whether x or y is evaluated first. –  James McNellis Aug 23 '11 at 4:28
    
This bitten me alot of times: int i = 0; printf("%d, %d", ++i, ++i); on some compilers its 0, 1 and on some it's 1, 0 and on some it depends on the compilers mood. –  Dani Aug 23 '11 at 4:38

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