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I use my own class as a key type for std::map. How the map implementation determines when two objects are equal?

I know that I can determine operator< or Comp type to arrange elements. But I can find nothing about equality.

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2  
!(a < b) && !(b < a) – chris Nov 10 '12 at 19:37
1  
@chris That's an answer, not a comment :) – dasblinkenlight Nov 10 '12 at 19:40
up vote 4 down vote accepted

It's possible to make the comparison using just operator<, so it doesn't require you to define operator== as well. Basically, if one is not less than the other, and the other is not less than the first, they must be equal. This is a possible utility function implementation of such:

bool isEqual(const Type &arg1, const Type &arg2) const {
    return !(arg1 < arg2) && !(arg2 < arg1);
}
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The std::map<K, V, Comp> class actually doesn't determine if objects are equal! All it cares about is if two objects are part of the same equivalence class which it determines using

Comp comp;
if (!comp(a, b) && !comp(b, a)) {
    // a and b are in the same equivalence class
}

The default definition of Compo is std::less<K>, i.e., the class determines equivalence as neither object being smaller than the other.

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Ah, I forgot about being able to choose the comparison. That's always a good thing to include. – chris Nov 10 '12 at 19:46

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