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Apparently, unordered_set::erase and unordered_set::count return something that is not strictly boolean (logically, that is, I'm not talking about the actual type).

The linked page reads for the third version of erase:

size_type erase( const key_type& key );

Removes the elements with the key value key

This has a tone to it that suggests there could be more than just one element with a given key. It doesn't explicitly state this, but it sounds like it a lot.
Now, the point of a set, even an unordered one, is to have each element once.

The standard library acknowledges the existence of the bool type and uses it for boolean values like unordered_set::empty(). So, what's the point of returning size_type in the cases above? Even in spite of hash collisions, the container should distinguish elements with different keys, right? Can I still rely on that?

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up vote 6 down vote accepted

a.erase(k) size_type Erases all elements with key equivalent to k. Returns the number of elements erased.

b.count(k) size_type Returns the number of elements with key equivalent to k.

It's because of the unordered associative container requirements [23.2.5].

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1  
It would be helpful if you linked the source of this quote. – bitmask Aug 8 '12 at 7:11
    
@bitmask edited. – ForEveR Aug 8 '12 at 7:15
1  
Thanks. Just a small nit pick: That section seems to refer to {multi}{set,map} only. The unordered counterparts are in 23.2.5. – bitmask Aug 8 '12 at 7:24
    
@bitmask yeah. sorry.) – ForEveR Aug 8 '12 at 7:26
    
The unordered requirements should be effectively the same. – Puppy Aug 8 '12 at 7:31

It's probably just so that they could re-use the wording from unordered_multiset. You don't have to worry about hash collisions except for performance-wise, the container is still correct even if every element collides- even if such a thing would be stupendously slow.

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Even though I expected as much, it is still comforting to hear it. – bitmask Aug 8 '12 at 7:10

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