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Could anybody explain me what is the difference between overload == and <?

For example, if I use a map:

map<Type, int> a();

friend bool operator<(const Type& lhs, const Type& rhs);

friend bool operator==(const Type& lhs, const Type& rhs);

And I implement both operators, when I call:

a.find(value);

The operator function of == is being called? I think not. I debugged and saw that < is called, but why? What should be the behavior of the operator function of <?

I come from Java where the method equals is called and is pretty simple to understand the behavior.

Thanks.

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6 Answers 6

up vote 7 down vote accepted

operator== overloads the == operator (and no other); operator< overloads the < operator (and no other).

std::map is defined to use std::less (and only std::less) by default, and std::less is defined to use < by default. In general, however, I would recommend not overloading operator< unless ordered comparison makes sense for your class, in which case, you should overload all six comparison operators, in a coherent fashion. Otherwise, you can specify a comparison functional type as an additional template argument to std::map; the comparison functional object should define a strict weak ordering relationship. If the type is designed to be used as a key, but the ordering is still purely arbitrary, you might specialize std::less.

As for Java, without operator overloading, it obviously can't use <; by default, SortedMap (the Java equivalent to std::map) requires the keys to be Comparable, however, which in turn requires a compare function, which returns a value <, == or > 0, depending on whether this is <, == or > than other. I'll admit that I find this a little bit more logical, but the difference is very, very small. (The rationale behind the C++ decision is that build-in types like int or double can be used as keys. In Java, you'ld have to box them.)

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so when a use map<Type, int> and I dont implement any comparison function what is the comparison of Type that c++ does? –  thiagoh Aug 22 '12 at 17:25
    
@thiagoh C++ would use bool operator< for Type by default, if that exists. If it doesn't, and you provide no comparison, you will get a compiler error. –  juanchopanza Aug 22 '12 at 20:37
    
@thiagoh Whatever you tell it to. The type of the comparison operator is an argument to the template, and the value (instance) is an argument to the constructor. Both arguments have defaults: the type defaults to std::less<KeyType>, and the value defaults to Cmp() (where Cmp is the type of the comparison). But these are just defaults. And except for a KeyType of std::string, I've found it rare to use the defaults. Most user defined types do not have a natural ordering. –  James Kanze Aug 23 '12 at 7:50
    
so.. @JamesKanze when i dont give any parameter c++ uses bool operator< of Type? i think so.. but how i implement an equal behavior like java? –  thiagoh Aug 23 '12 at 12:48
    
@thiagoh When you don't specify a comparison function, the standard uses std::less<KeyType>. Which in turn used < unless you provide a specialization (and for pointers, where the compiler is required to make std::less have defined and consistent behavior even if the two pointers do not point into the same array). –  James Kanze Aug 23 '12 at 14:06

The requirements that the C++ standard places on std::map mean that it is implemented as a self-balancing binary search tree. This means that some kind of ordering comparison between elements must be available. In the case of std::map, the requirement is a strict weak ordering, and the default is a less-than comparison. This is all that is required to arrange elements in a binary tree, and the equality condition is met when one element (call it A) is not less than another one (call it B), and the converse is also true, i.e. B is not less than A. An equality comparison could have been used, but this would open some scope for inconsistency. If you look at hash tables, such as std::unordered_map, you will find that an equality comparison is indeed required, although this is only to resolve collisions.

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std::map is an ordered container, therefore it needs an operator < to define the order of elements.

A separate operator == is not needed because it is implemented in terms of operator <, a==b being equivalent to !a<b && !b<a

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Probably because map is implemented as a balanced tree. Use unordered_map if you require a hash table.

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Because std::map<T, U> has such behaviour, it uses std::less<T> functor or your functor for many operations.

Behaviour can be different, but usual checks that lhs is less than rhs.

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The operator < is needed, because the find operation bases on the inner implementation of map (on the tree). To be able to find in complexity better than linear, it can't have to compare with every element.

A good example of the similar algorithm is Binary Search. As you can see in sample pseudocode, it doesn't use the identity operator at all.

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1  
So how does it know when it finds the right element? –  Luchian Grigore Aug 22 '12 at 9:26
2  
a equals b if neither a < b nor b < a, I suppose. It's only a guess. –  JohnB Aug 22 '12 at 9:27
    
I tried to put it in proper words, thanks @JohnB –  Bartek Banachewicz Aug 22 '12 at 9:28
1  
@JohnB The relationship !op(a, b) && !op(b, a) is required to define an equivalence relationship, yes. (On the other hand, the premise that < is necessary is completely false, and most of the keys I've used other than std::string have not supported <.) –  James Kanze Aug 22 '12 at 9:49

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