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If I manually overload the == operator for a structure, do I get the != operator for free (presumably defined to be the boolean opposite), or do I have to overload it manually (even if to just return !(this == rhs)?

Edit-The question is not whether or not I CAN overload both operators, but whether I must overload inequality if I've already overloaded the equality operator. Regardless, good answers have been given.

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The only thing that's free in C++ is the noose you end up hanging yourself with. –  JaredPar Nov 3 '11 at 19:12
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@JaredPar: Sometimes you get free default constructor, copy constructor, move constructor, destructor, assignment operator, move operator, equality operator, inequality operator, and/or maybe some others I forgot. –  Mooing Duck Nov 3 '11 at 19:29
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You could use Barton-Nackman trick: en.wikipedia.org/wiki/Barton%E2%80%93Nackman_trick –  Pubby Nov 3 '11 at 19:30
    
This has been asked before, and in that one, someone gave a fully plausible example where a != b is not the same as !(a == b) –  Izkata Nov 3 '11 at 19:35
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@lzkata: source? I remember seeing this question for C#, but none of the answers gave a plausible example of that. –  BlueRaja - Danny Pflughoeft Nov 3 '11 at 21:52
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4 Answers

up vote 72 down vote accepted

Overloading operator == does not give you operator !=. You have to do it manually and the canonical way is to implement it in terms of operator == as in !(left == right).

The semantics of the operators are not dictated by the standard. You could very well overload operator == to mean equality yet overload operator != to something different like addition or even equality again (not that this is a good practice, in fact it should be discouraged. When in doubt, do as the ints do...).[Refer (1) Below]

On a side note, Boost.Operators can help you provide canonical implementations for operators. There is also std::rel_ops with a canonical implementation for operator !=.

(1) To know more about it read Three basic rules of operator overloading in C++.

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Thanks, will accept. I tried using the == operator (that I had overloaded) in my definition for !=, but got a 'binary operator not found, and no conversion exists' error. Any idea why without posting code? Thanks again –  prelic Nov 3 '11 at 19:16
    
@prelic: No way to guess without seeing the code. It does look like you implemented operator == as a member function when it would better be a free function, but I don't think that's the cause of your problem. –  K-ballo Nov 3 '11 at 19:19
    
@prelic: It is a very bad practice to implement functionality of != While the operator being called is ==.Please do your predecessors a favor and don't do it. K-ballo, please for the love of god remove that para which advises so or add a note that never to do it. –  Alok Save Nov 3 '11 at 19:20
    
Why is it okay to overload == but not !=? Or are you saying not to overload either comparison op? –  prelic Nov 3 '11 at 19:22
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@prelic: Perhaps you have done !(this == rhs) instead of !(*this == rhs)? –  K-ballo Nov 3 '11 at 19:23
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No nothing is for free. You pay for what you use in C++(in case of Operator Overloading).
You only get the Operator which you overload nothing more.

Also, It is a good practice that if you overload == operator then you should overload != as well because the users of your class will expect that to be available.

Operator Overloading C++ FAQ should be a good read.


Answering the updated Question:

The question is not whether or not I CAN overload both operators, but whether I must overload inequality if I've already overloaded the equality operator.

NO.
There is no such requirement that you Must overload != If you need to overload ==. However,it is a good practice that you Should overload operators related to each other.

Why is it a good practice?
Think it from the perspective of the user of your class. If the user of your class can use ==(equality criteria) to compare objects of your class, naturally they are going to expect that they should be able to use !=(Non-equality criteria) as well, this stems from the fact that these two operators are related closely and supported for all built-in tyes.

What happens if you disregard the should and not overload != when you overload ==?
If the users of your class use != they will get a compile error.
They would frown a bit about not being provided with != when they are provided with == and they will have to realign their logic to use == instead of the !=.

So you can live with it but be ready to expect a few frowns and complaints of inconvinience and not providing user friendly interface.

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The C++ motto is "you don't pay for what you don't use". Often you do get functionality automatically, for example, calls to member destructors. –  Ben Voigt Nov 3 '11 at 19:13
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You have to overload each operator. != and == are not linked.

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It doesn't, and thankfully it is the way it is. For example, you might want a structure, where both a!=b and a==a are true. They are not necessary the inverse, they can be anything you want.

Boosts the creativity. :)

For example if you don't know the result of a comparison, or it is generally not known, then it would be reasonable to a==b and a!=b return the same.

Example: http://en.wikipedia.org/wiki/Three-valued_logic

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Actually, no, I would never want such a structure. –  Nemo Nov 3 '11 at 19:15
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Why do you think C++ allows such case? The case is where the comparision is undefined - eg you don't know the outcome. –  Rok Kralj Nov 3 '11 at 19:19
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@John Dibling: float, double. –  Joe Gauterin Nov 3 '11 at 19:29
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@JohnDibling: (NaN == Nan) evaluates to false –  Mooing Duck Nov 3 '11 at 19:32
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(NaN == NaN) is false, and (NaN != NaN) is true. This is not an example where both (a == b) and (a != b) are true. == and != return the opposite even with IEE754 floats. You're confusing this with the reflexive property of ==. I don't see a reason why I'd want null!=null and null==null to be both true. –  R. Martinho Fernandes Nov 3 '11 at 20:04
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