176 lines
4.7 KiB
C++
176 lines
4.7 KiB
C++
// Copyright (C) 2010 Davis E. King (davis@dlib.net)
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// License: Boost Software License See LICENSE.txt for the full license.
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#ifndef DLIB_UNORDERED_PAiR_Hh_
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#define DLIB_UNORDERED_PAiR_Hh_
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#include "serialize.h"
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namespace dlib
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{
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// ----------------------------------------------------------------------------------------
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template <
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typename T
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>
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struct unordered_pair
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{
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/*!
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REQUIREMENTS ON T
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T must be default constructable, copyable, and comparable using
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operator < and ==
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WHAT THIS OBJECT REPRESENTS
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This object is very similar to the std::pair struct except unordered_pair
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is only capable of representing an unordered set of two items rather than
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an ordered list of two items like std::pair.
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This is best illustrated by example. Suppose we have the following
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five variables:
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std::pair<int,int> p1(1, 5), p2(5,1);
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unordered_pair<int> up1(1,5), up2(5,1), up3(6,7);
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Then it is the case that:
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up1 == up2
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up1 != up3
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p1 != p2
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So the unordered_pair doesn't care about the order of the arguments.
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In this case, up1 and up2 are both equivalent.
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!*/
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typedef T type;
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typedef T first_type;
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typedef T second_type;
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const T first;
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const T second;
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unordered_pair() : first(), second()
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/*!
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ensures
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- #first and #second are default initialized
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!*/ {}
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unordered_pair(
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const T& a,
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const T& b
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) :
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first( a < b ? a : b),
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second(a < b ? b : a)
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/*!
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ensures
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- #first <= #second
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- #first and #second contain copies of the items a and b.
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!*/ {}
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template <typename U>
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unordered_pair (
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const unordered_pair <U>& p
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) :
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first(p.first),
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second(p.second)
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/*!
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ensures
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- #*this is a copy of p
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!*/ {}
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unordered_pair& operator= (
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const unordered_pair& item
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)
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/*!
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ensures
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- #*this == item
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!*/
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{
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const_cast<T&>(first) = item.first;
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const_cast<T&>(second) = item.second;
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return *this;
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}
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};
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// ----------------------------------------------------------------------------------------
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template <typename T>
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bool operator==(const unordered_pair<T>& a, const unordered_pair <T>& b)
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{
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return a.first == b.first && a.second == b.second;
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}
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template <typename T>
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bool operator!=(const unordered_pair<T>& a, const unordered_pair <T>& b)
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{
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return !(a == b);
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}
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template <typename T>
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bool operator<(const unordered_pair<T>& a, const unordered_pair<T>& b)
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{
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return (a.first < b.first || (!(b.first < a.first) && a.second < b.second));
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}
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template <typename T>
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bool operator>(const unordered_pair<T>& a, const unordered_pair <T>& b)
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{
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return b < a;
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}
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template <typename T>
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bool operator<=(const unordered_pair<T>& a, const unordered_pair <T>& b)
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{
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return !(b < a);
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}
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template <typename T>
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bool operator>=(const unordered_pair<T>& a, const unordered_pair <T>& b)
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{
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return !(a < b);
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}
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template <typename T>
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unordered_pair<T> make_unordered_pair (const T& a, const T& b)
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{
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return unordered_pair<T>(a,b);
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}
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// ----------------------------------------------------------------------------------------
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template <typename T>
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void serialize (
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const unordered_pair<T>& item,
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std::ostream& out
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)
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{
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try
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{
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serialize(item.first,out);
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serialize(item.second,out);
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}
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catch (serialization_error& e)
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{ throw serialization_error(e.info + "\n while serializing object of type unordered_pair"); }
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}
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template <typename T>
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void deserialize (
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unordered_pair<T>& item,
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std::istream& in
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)
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{
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try
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{
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T a, b;
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deserialize(a,in);
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deserialize(b,in);
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item = make_unordered_pair(a,b);
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}
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catch (serialization_error& e)
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{ throw serialization_error(e.info + "\n while deserializing object of type unordered_pair"); }
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}
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// ----------------------------------------------------------------------------------------
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}
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#endif // DLIB_UNORDERED_PAiR_Hh_
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