Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My C++ teacher thinks that the * operator in standard C++ is "already overloaded," because it can mean indirection or multiplication depending on the context. He got this from C++ Primer Plus, which states:

Actually, many C++ (and C) operators already are overloaded. For example, the * operator, when applied to an address, yields the value stored at that address. But applying * to two numbers yields the product of the values. C++ uses the number and type of operands to decide which action to take. (pg 502, 5th ed)

At least one other textbook says much the same. So far as I can tell, this is not true; unary * is a different operator from binary *, and the mechanism by which the compiler disambiguates them has nothing to do with operator overloading.

Who is right?

share|improve this question
3  
You are right. In a sense, it is fair to say that builtin operators already act polymorhpically depending on their arguments. That is static polymorphism –  sehe Aug 23 '11 at 13:56
6  
Note that in addition to there being two * operators (which is "overloading" in the English sense but not in the C++ sense), builtin binary * actually is also overloaded in the C++ sense, in that it applies to different types -- int, double etc. -- with different effects. The set of effective overloads for the purposes of operator overload resolution is defined in the standard, at 13.6/12. Likewise unary * is effectively overloaded for every pointer type (13.6/6) and function pointer type (/7). –  Steve Jessop Aug 23 '11 at 14:00

3 Answers 3

up vote 11 down vote accepted

Both are right as the question depends on context and the meaning of the word overloading.

"Overloading" can take a common meaning of "same symbol, different meaning" and allow all uses of "*" including indirection and multiplication, and any user-defined behavior.

"Overloading" can be used to apply to C++'s official operator overloading functionality, in which case indirection and multiplication are indeed different.

ADDENDUM: See Steve's comment below, on "operator overoading" versues "token overloading".

share|improve this answer
15  
So even the term "overloading" is overloaded. –  Oliver Charlesworth Aug 23 '11 at 13:59
6  
To be precise, I think with the former meaning it's the * token which is overloaded, not the * operator. It's a very fine hair to split, though, I say it's the token just because the grammar of an expression using unary * is different from the grammar of an expression using binary *. You can imagine that they're both turned into operator*(...), with one argument for unary and two for binary, in which case it behaves like a single overloaded function named operator*. That just isn't quite how the standard happens to define arithmetic expressions. –  Steve Jessop Aug 23 '11 at 14:07
1  
@Steve I totally agree and like that precision. I would take that answer over mine. :) –  Ray Toal Aug 23 '11 at 14:10

I believe you are. The dereference op and the mult. op are different operators, even if written the same. same goes for +,-,++,--, and any other I may have forgotten.

I believe the book, in this paragraph, refers to the word "overloaded" as "used in more than 1 way", but not by the user. So you could also consider the book as being correct... also depends if you're referring to the overloading of the * operator or of the multiplication operator (for example).

share|improve this answer

It's overloaded in the sense that the same character is used to mean different things in different places (e.g. pointer dereference, multiplication between ints, multiplication with other built-in types, etc.).

Generally, though, "operator overloading" refers to defining an operator (that has the same symbol as a built-in one) using custom code so that it does something interesting with a user defined type.

So... you're both right :-)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.