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Today I was implementing a datatype, in which I decided to overload the comparison operators. While doing this, a question popped into my head.

Why do I, as a programmer, have to define every single comparison operator, when all I do, is to define them in terms of '<' (see below)? - That is, why doesn't the compiler automatically generate these for me.

a == b    =>    !(a<b || b<a)
a != b    =>     (a<b || b<a)
a > b     =>    b < a
a >= b    =>    !(a < b)
a <= b    =>    !(b < a)

I do understand, that it is perfectly reasonable for performance reasons, to want to implement more than just '<'.

I know the obvious answer is, that it's because I can easily do it myself, but I do believe that compilers/language specifications should do whatever possible to ease using the language.

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The interaction with other operators would probably be quite complex and error prone. The types on both sides need not necessarily be the same, and then there are people who would want != be implemented in terms of ==, and then there are cases where the user definition is visible in some TUs, but not others, which would then easily violate the ODR and so on. Its probably easier and less error prone to use stuff like the boost operator. –  PlasmaHH Sep 5 '13 at 13:55
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The first two identities are only valid if < defines a total ordering. For many types, such an ordering is impossible to define, but you might still want < to define a partial ordering, since that makes the type easy to use with standard containers and algorithms. You would then want to define == separately to test actual equality, not just equivalence under the ordering. –  Mike Seymour Sep 5 '13 at 13:57
    
@Dukeling: If you do not believe that the standard/compiler should do whatever it can to ease implementing software, would you opt against having the typedefs as well? –  Skeen Sep 5 '13 at 14:03
    
@MikeSeymour: I do believe you answer my question, as to whether == can be defined in terms of <, and Pete Becker and timrau answered the remainder of the question. Thanks! –  Skeen Sep 5 '13 at 14:08
    
@Skeen There's a big difference between "whatever possible" and "some stuff". C++ is reasonably low level, giving you lots of freedom. Ease of use is often a conflicting goal to this end. –  Dukeling Sep 5 '13 at 14:12
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3 Answers 3

up vote 3 down vote accepted

Define operator<() and operator==(), and

#include <utility>
using namespace std::rel_ops;

Then all comparison operators are automatically defined. See the example provided by cppreference.com

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Why do I need to provide both? - doesn't a == b => !(a<b || b<a) fulfill the typical reflexive, symmetric and transitive properties of equalities? –  Skeen Sep 5 '13 at 13:56
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@Skeen I would guess it could be more efficient to implement == without two invocations of <. –  juanchopanza Sep 5 '13 at 13:57
    
@juanchopanza: I know, that's likely more efficient, but then again it could also be the case that implementing >= for itself, would be quicker than in terms of <. However I do believe @Mike Seymour is on to something. –  Skeen Sep 5 '13 at 13:59
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This will work only in simple toy examples. The lookup rules are not as simple as they may seem, and if there is any overload of operator< found before lookup hits the global namespace (common ancestor of ::std and any of your namespaces) it won't look into std::rel_ops and it won't find this –  David Rodríguez - dribeas Sep 5 '13 at 14:34
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Read about std::rel_ops. Nobody uses it.

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std::rel_ops is broken. I cannot think how that could possibly work. If a tag type was added to the namespace, then you could control in your type whether to use the default implementation by means of tagging your type through inheritance, and letting ADL find those templates. Without it, std::rel_ops is either useless or hard to use (on the assumption I cannot make it work, it is hard at least for me) –  David Rodríguez - dribeas Sep 5 '13 at 14:13
    
@DavidRodríguez-dribeas - as I said, nobody uses it. <g> –  Pete Becker Sep 5 '13 at 14:14
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You can use boost::operators. It does exactly what you want and much more.

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