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Why is std::numeric_limits<T>::max() a function?

I was wondering if someone could explain the reasoning behind why in std::numeric_limit min and max are methods and not constants?

Furthermore, I'd like to know what techniques can be used to make use of the min/max values as part of template parameters, eg:

template<unsigned long long max>
class foo
{
public:
   void boo() { std::cout << max << std::endl; }
};

.
.
.

foo<std::numeric_limits<int>::max()> f;
f.boo();
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marked as duplicate by John Zwinck, Fred Nurk, Xeo, dmckee, bk1e May 16 '11 at 1:23

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
...and regarding the second part of your question, about instantiating templates, see this answer: stackoverflow.com/questions/2738435/… –  John Zwinck May 16 '11 at 0:36
    
@John: Thanks for those answers, but i was hoping for a solution not based on Boost as I don't have access to it in the project I'm currently working on. –  Soda Coader May 16 '11 at 0:46
    
Well then you may want to use Aaron's solution below. –  John Zwinck May 16 '11 at 1:21

1 Answer 1

Fall back on good old C!

foo< INT_MAX > f;

or even

const int my_int_max = INTMAX;
foo< my_int_max > f;

Works for me on g++ (Debian 4.4.5-8) 4.4.5

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