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1 // boost heap: binomial heap
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2 //
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3 // Copyright (C) 2010 Tim Blechmann
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4 //
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5 // Distributed under the Boost Software License, Version 1.0. (See
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6 // accompanying file LICENSE_1_0.txt or copy at
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7 // http://www.boost.org/LICENSE_1_0.txt)
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8
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9 #ifndef BOOST_HEAP_BINOMIAL_HEAP_HPP
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10 #define BOOST_HEAP_BINOMIAL_HEAP_HPP
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11
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12 #include <algorithm>
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13 #include <utility>
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14 #include <vector>
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15
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16 #include <boost/assert.hpp>
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17
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18 #include <boost/heap/detail/heap_comparison.hpp>
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19 #include <boost/heap/detail/heap_node.hpp>
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20 #include <boost/heap/detail/stable_heap.hpp>
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21 #include <boost/heap/detail/tree_iterator.hpp>
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22
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23 #ifdef BOOST_HAS_PRAGMA_ONCE
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24 #pragma once
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25 #endif
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26
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27 #ifndef BOOST_DOXYGEN_INVOKED
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28 #ifdef BOOST_HEAP_SANITYCHECKS
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29 #define BOOST_HEAP_ASSERT BOOST_ASSERT
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30 #else
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31 #define BOOST_HEAP_ASSERT(expression)
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32 #endif
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33 #endif
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34
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35 namespace boost {
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36 namespace heap {
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37 namespace detail {
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38
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39 typedef parameter::parameters<boost::parameter::optional<tag::allocator>,
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40 boost::parameter::optional<tag::compare>,
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41 boost::parameter::optional<tag::stable>,
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42 boost::parameter::optional<tag::constant_time_size>,
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43 boost::parameter::optional<tag::stability_counter_type>
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44 > binomial_heap_signature;
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45
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46 template <typename T, typename Parspec>
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47 struct make_binomial_heap_base
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48 {
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49 static const bool constant_time_size = parameter::binding<Parspec,
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50 tag::constant_time_size,
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51 boost::mpl::true_
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52 >::type::value;
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53 typedef typename detail::make_heap_base<T, Parspec, constant_time_size>::type base_type;
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54 typedef typename detail::make_heap_base<T, Parspec, constant_time_size>::allocator_argument allocator_argument;
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55 typedef typename detail::make_heap_base<T, Parspec, constant_time_size>::compare_argument compare_argument;
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56
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57 typedef parent_pointing_heap_node<typename base_type::internal_type> node_type;
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58
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59 typedef typename allocator_argument::template rebind<node_type>::other allocator_type;
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60
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61 struct type:
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62 base_type,
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63 allocator_type
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64 {
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65 type(compare_argument const & arg):
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66 base_type(arg)
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67 {}
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68
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69 #ifndef BOOST_NO_CXX11_RVALUE_REFERENCES
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70 type(type const & rhs):
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71 base_type(rhs), allocator_type(rhs)
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72 {}
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73
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74 type(type && rhs):
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75 base_type(std::move(static_cast<base_type&>(rhs))),
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76 allocator_type(std::move(static_cast<allocator_type&>(rhs)))
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77 {}
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78
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79 type & operator=(type && rhs)
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80 {
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81 base_type::operator=(std::move(static_cast<base_type&>(rhs)));
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82 allocator_type::operator=(std::move(static_cast<allocator_type&>(rhs)));
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83 return *this;
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84 }
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85
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86 type & operator=(type const & rhs)
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87 {
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88 base_type::operator=(static_cast<base_type const &>(rhs));
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89 allocator_type::operator=(static_cast<allocator_type const &>(rhs));
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90 return *this;
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91 }
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92 #endif
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93 };
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94 };
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95
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96 }
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97
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98 /**
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99 * \class binomial_heap
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100 * \brief binomial heap
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101 *
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102 * The template parameter T is the type to be managed by the container.
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103 * The user can specify additional options and if no options are provided default options are used.
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104 *
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105 * The container supports the following options:
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106 * - \c boost::heap::stable<>, defaults to \c stable<false>
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107 * - \c boost::heap::compare<>, defaults to \c compare<std::less<T> >
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108 * - \c boost::heap::allocator<>, defaults to \c allocator<std::allocator<T> >
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109 * - \c boost::heap::constant_time_size<>, defaults to \c constant_time_size<true>
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110 * - \c boost::heap::stability_counter_type<>, defaults to \c stability_counter_type<boost::uintmax_t>
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111 *
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112 */
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113 #ifdef BOOST_DOXYGEN_INVOKED
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114 template<class T, class ...Options>
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115 #else
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116 template <typename T,
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117 class A0 = boost::parameter::void_,
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118 class A1 = boost::parameter::void_,
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119 class A2 = boost::parameter::void_,
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120 class A3 = boost::parameter::void_
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121 >
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122 #endif
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123 class binomial_heap:
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124 private detail::make_binomial_heap_base<T,
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125 typename detail::binomial_heap_signature::bind<A0, A1, A2, A3>::type
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126 >::type
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127 {
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128 typedef typename detail::binomial_heap_signature::bind<A0, A1, A2, A3>::type bound_args;
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129 typedef detail::make_binomial_heap_base<T, bound_args> base_maker;
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130 typedef typename base_maker::type super_t;
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131
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132 typedef typename super_t::internal_type internal_type;
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133 typedef typename super_t::size_holder_type size_holder;
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134 typedef typename super_t::stability_counter_type stability_counter_type;
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135 typedef typename base_maker::allocator_argument allocator_argument;
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136
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137 template <typename Heap1, typename Heap2>
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138 friend struct heap_merge_emulate;
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139
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140 public:
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141 static const bool constant_time_size = super_t::constant_time_size;
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142 static const bool has_ordered_iterators = true;
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143 static const bool is_mergable = true;
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144 static const bool is_stable = detail::extract_stable<bound_args>::value;
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145 static const bool has_reserve = false;
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146
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147 private:
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148 #ifndef BOOST_DOXYGEN_INVOKED
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149 struct implementation_defined:
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150 detail::extract_allocator_types<typename base_maker::allocator_argument>
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151 {
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152 typedef T value_type;
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153 typedef typename detail::extract_allocator_types<typename base_maker::allocator_argument>::size_type size_type;
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154 typedef typename detail::extract_allocator_types<typename base_maker::allocator_argument>::reference reference;
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155
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156 typedef typename base_maker::compare_argument value_compare;
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157 typedef typename base_maker::allocator_type allocator_type;
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158 typedef typename base_maker::node_type node;
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159
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160 typedef typename allocator_type::pointer node_pointer;
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161 typedef typename allocator_type::const_pointer const_node_pointer;
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162
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163 typedef detail::node_handle<node_pointer, super_t, reference> handle_type;
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164
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165 typedef typename base_maker::node_type node_type;
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166
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167 typedef boost::intrusive::list<detail::heap_node_base<false>,
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168 boost::intrusive::constant_time_size<true>
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169 > node_list_type;
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170
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171 typedef typename node_list_type::iterator node_list_iterator;
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172 typedef typename node_list_type::const_iterator node_list_const_iterator;
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173 typedef detail::value_extractor<value_type, internal_type, super_t> value_extractor;
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174
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175 typedef detail::recursive_tree_iterator<node_type,
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176 node_list_const_iterator,
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177 const value_type,
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178 value_extractor,
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179 detail::list_iterator_converter<node_type, node_list_type>
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180 > iterator;
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181 typedef iterator const_iterator;
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182
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183 typedef detail::tree_iterator<node_type,
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184 const value_type,
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185 allocator_type,
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186 value_extractor,
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187 detail::list_iterator_converter<node_type, node_list_type>,
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188 true,
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189 true,
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190 value_compare
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191 > ordered_iterator;
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192 };
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193 #endif
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194
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195 public:
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196 typedef T value_type;
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197
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198 typedef typename implementation_defined::size_type size_type;
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199 typedef typename implementation_defined::difference_type difference_type;
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200 typedef typename implementation_defined::value_compare value_compare;
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201 typedef typename implementation_defined::allocator_type allocator_type;
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202 typedef typename implementation_defined::reference reference;
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203 typedef typename implementation_defined::const_reference const_reference;
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204 typedef typename implementation_defined::pointer pointer;
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205 typedef typename implementation_defined::const_pointer const_pointer;
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206 /// \copydoc boost::heap::priority_queue::iterator
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207 typedef typename implementation_defined::iterator iterator;
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208 typedef typename implementation_defined::const_iterator const_iterator;
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209 typedef typename implementation_defined::ordered_iterator ordered_iterator;
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210
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211 typedef typename implementation_defined::handle_type handle_type;
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212
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213 private:
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214 typedef typename implementation_defined::node_type node_type;
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215 typedef typename implementation_defined::node_list_type node_list_type;
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216 typedef typename implementation_defined::node_pointer node_pointer;
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217 typedef typename implementation_defined::const_node_pointer const_node_pointer;
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218 typedef typename implementation_defined::node_list_iterator node_list_iterator;
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219 typedef typename implementation_defined::node_list_const_iterator node_list_const_iterator;
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220
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221 typedef typename super_t::internal_compare internal_compare;
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222
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223 public:
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224 /// \copydoc boost::heap::priority_queue::priority_queue(value_compare const &)
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225 explicit binomial_heap(value_compare const & cmp = value_compare()):
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226 super_t(cmp), top_element(0)
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227 {}
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228
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229 /// \copydoc boost::heap::priority_queue::priority_queue(priority_queue const &)
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230 binomial_heap(binomial_heap const & rhs):
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231 super_t(rhs), top_element(0)
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232 {
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233 if (rhs.empty())
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234 return;
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235
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236 clone_forest(rhs);
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237 size_holder::set_size(rhs.get_size());
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238 }
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239
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240 /// \copydoc boost::heap::priority_queue::operator=(priority_queue const &)
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241 binomial_heap & operator=(binomial_heap const & rhs)
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242 {
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243 clear();
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244 size_holder::set_size(rhs.get_size());
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245 static_cast<super_t&>(*this) = rhs;
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246
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247 if (rhs.empty())
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248 top_element = NULL;
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249 else
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250 clone_forest(rhs);
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251 return *this;
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252 }
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253
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254 #ifndef BOOST_NO_CXX11_RVALUE_REFERENCES
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255 /// \copydoc boost::heap::priority_queue::priority_queue(priority_queue &&)
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256 binomial_heap(binomial_heap && rhs):
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257 super_t(std::move(rhs)), top_element(rhs.top_element)
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258 {
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259 trees.splice(trees.begin(), rhs.trees);
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260 rhs.top_element = NULL;
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261 }
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262
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263 /// \copydoc boost::heap::priority_queue::operator=(priority_queue &&)
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264 binomial_heap & operator=(binomial_heap && rhs)
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265 {
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266 clear();
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267 super_t::operator=(std::move(rhs));
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268 trees.splice(trees.begin(), rhs.trees);
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269 top_element = rhs.top_element;
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270 rhs.top_element = NULL;
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271 return *this;
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272 }
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273 #endif
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274
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275 ~binomial_heap(void)
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276 {
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277 clear();
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278 }
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279
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280 /// \copydoc boost::heap::priority_queue::empty
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281 bool empty(void) const
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282 {
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283 return top_element == NULL;
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284 }
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285
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286 /**
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287 * \b Effects: Returns the number of elements contained in the priority queue.
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288 *
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289 * \b Complexity: Constant, if configured with constant_time_size<true>, otherwise linear.
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290 *
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291 * */
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292 size_type size(void) const
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293 {
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294 if (constant_time_size)
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295 return size_holder::get_size();
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296
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297 if (empty())
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298 return 0;
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299 else
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300 return detail::count_list_nodes<node_type, node_list_type>(trees);
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301 }
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302
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303 /// \copydoc boost::heap::priority_queue::max_size
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304 size_type max_size(void) const
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305 {
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306 return allocator_type::max_size();
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307 }
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308
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309 /// \copydoc boost::heap::priority_queue::clear
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310 void clear(void)
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311 {
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312 typedef detail::node_disposer<node_type, typename node_list_type::value_type, allocator_type> disposer;
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313 trees.clear_and_dispose(disposer(*this));
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314
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315 size_holder::set_size(0);
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316 top_element = NULL;
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317 }
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318
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319 /// \copydoc boost::heap::priority_queue::get_allocator
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320 allocator_type get_allocator(void) const
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321 {
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322 return *this;
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323 }
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324
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325 /// \copydoc boost::heap::priority_queue::swap
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326 void swap(binomial_heap & rhs)
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327 {
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328 super_t::swap(rhs);
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329 std::swap(top_element, rhs.top_element);
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330 trees.swap(rhs.trees);
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331 }
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332
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333 /// \copydoc boost::heap::priority_queue::top
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334 const_reference top(void) const
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335 {
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336 BOOST_ASSERT(!empty());
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337
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338 return super_t::get_value(top_element->value);
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339 }
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340
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341 /**
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342 * \b Effects: Adds a new element to the priority queue. Returns handle to element
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343 *
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344 * \b Complexity: Logarithmic.
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345 *
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346 * */
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347 handle_type push(value_type const & v)
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348 {
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349 node_pointer n = allocator_type::allocate(1);
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350 new(n) node_type(super_t::make_node(v));
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351
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352 insert_node(trees.begin(), n);
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353
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354 if (!top_element || super_t::operator()(top_element->value, n->value))
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355 top_element = n;
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356
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357 size_holder::increment();
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358 sanity_check();
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359 return handle_type(n);
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360 }
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361
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362 #if !defined(BOOST_NO_CXX11_RVALUE_REFERENCES) && !defined(BOOST_NO_CXX11_VARIADIC_TEMPLATES)
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363 /**
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364 * \b Effects: Adds a new element to the priority queue. The element is directly constructed in-place. Returns handle to element.
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365 *
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366 * \b Complexity: Logarithmic.
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367 *
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368 * */
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369 template <class... Args>
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370 handle_type emplace(Args&&... args)
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|
371 {
|
Chris@16
|
372 node_pointer n = allocator_type::allocate(1);
|
Chris@16
|
373 new(n) node_type(super_t::make_node(std::forward<Args>(args)...));
|
Chris@16
|
374
|
Chris@16
|
375 insert_node(trees.begin(), n);
|
Chris@16
|
376
|
Chris@16
|
377 if (!top_element || super_t::operator()(top_element->value, n->value))
|
Chris@16
|
378 top_element = n;
|
Chris@16
|
379
|
Chris@16
|
380 size_holder::increment();
|
Chris@16
|
381 sanity_check();
|
Chris@16
|
382 return handle_type(n);
|
Chris@16
|
383 }
|
Chris@16
|
384 #endif
|
Chris@16
|
385
|
Chris@16
|
386 /**
|
Chris@16
|
387 * \b Effects: Removes the top element from the priority queue.
|
Chris@16
|
388 *
|
Chris@16
|
389 * \b Complexity: Logarithmic.
|
Chris@16
|
390 *
|
Chris@16
|
391 * */
|
Chris@16
|
392 void pop(void)
|
Chris@16
|
393 {
|
Chris@16
|
394 BOOST_ASSERT(!empty());
|
Chris@16
|
395
|
Chris@16
|
396 node_pointer element = top_element;
|
Chris@16
|
397
|
Chris@16
|
398 trees.erase(node_list_type::s_iterator_to(*element));
|
Chris@16
|
399 size_holder::decrement();
|
Chris@16
|
400
|
Chris@16
|
401 if (element->child_count()) {
|
Chris@16
|
402 size_type sz = (1 << element->child_count()) - 1;
|
Chris@101
|
403
|
Chris@16
|
404 binomial_heap children(value_comp(), element->children, sz);
|
Chris@101
|
405 if (trees.empty()) {
|
Chris@101
|
406 stability_counter_type stability_count = super_t::get_stability_count();
|
Chris@16
|
407 swap(children);
|
Chris@101
|
408 super_t::set_stability_count(stability_count);
|
Chris@101
|
409 } else
|
Chris@16
|
410 merge_and_clear_nodes(children);
|
Chris@101
|
411
|
Chris@16
|
412 }
|
Chris@16
|
413
|
Chris@16
|
414 if (trees.empty())
|
Chris@16
|
415 top_element = NULL;
|
Chris@16
|
416 else
|
Chris@16
|
417 update_top_element();
|
Chris@16
|
418
|
Chris@16
|
419 element->~node_type();
|
Chris@16
|
420 allocator_type::deallocate(element, 1);
|
Chris@16
|
421 sanity_check();
|
Chris@16
|
422 }
|
Chris@16
|
423
|
Chris@16
|
424 /**
|
Chris@16
|
425 * \b Effects: Assigns \c v to the element handled by \c handle & updates the priority queue.
|
Chris@16
|
426 *
|
Chris@16
|
427 * \b Complexity: Logarithmic.
|
Chris@16
|
428 *
|
Chris@16
|
429 * */
|
Chris@16
|
430 void update (handle_type handle, const_reference v)
|
Chris@16
|
431 {
|
Chris@16
|
432 if (super_t::operator()(super_t::get_value(handle.node_->value), v))
|
Chris@16
|
433 increase(handle, v);
|
Chris@16
|
434 else
|
Chris@16
|
435 decrease(handle, v);
|
Chris@16
|
436 }
|
Chris@16
|
437
|
Chris@16
|
438 /**
|
Chris@16
|
439 * \b Effects: Updates the heap after the element handled by \c handle has been changed.
|
Chris@16
|
440 *
|
Chris@16
|
441 * \b Complexity: Logarithmic.
|
Chris@16
|
442 *
|
Chris@16
|
443 * \b Note: If this is not called, after a handle has been updated, the behavior of the data structure is undefined!
|
Chris@16
|
444 * */
|
Chris@16
|
445 void update (handle_type handle)
|
Chris@16
|
446 {
|
Chris@16
|
447 node_pointer this_node = handle.node_;
|
Chris@16
|
448
|
Chris@16
|
449 if (this_node->parent) {
|
Chris@16
|
450 if (super_t::operator()(super_t::get_value(this_node->parent->value), super_t::get_value(this_node->value)))
|
Chris@16
|
451 increase(handle);
|
Chris@16
|
452 else
|
Chris@16
|
453 decrease(handle);
|
Chris@16
|
454 }
|
Chris@16
|
455 else
|
Chris@16
|
456 decrease(handle);
|
Chris@16
|
457 }
|
Chris@16
|
458
|
Chris@16
|
459 /**
|
Chris@16
|
460 * \b Effects: Assigns \c v to the element handled by \c handle & updates the priority queue.
|
Chris@16
|
461 *
|
Chris@16
|
462 * \b Complexity: Logarithmic.
|
Chris@16
|
463 *
|
Chris@16
|
464 * \b Note: The new value is expected to be greater than the current one
|
Chris@16
|
465 * */
|
Chris@16
|
466 void increase (handle_type handle, const_reference v)
|
Chris@16
|
467 {
|
Chris@16
|
468 handle.node_->value = super_t::make_node(v);
|
Chris@16
|
469 increase(handle);
|
Chris@16
|
470 }
|
Chris@16
|
471
|
Chris@16
|
472 /**
|
Chris@16
|
473 * \b Effects: Updates the heap after the element handled by \c handle has been changed.
|
Chris@16
|
474 *
|
Chris@16
|
475 * \b Complexity: Logarithmic.
|
Chris@16
|
476 *
|
Chris@16
|
477 * \b Note: If this is not called, after a handle has been updated, the behavior of the data structure is undefined!
|
Chris@16
|
478 * */
|
Chris@16
|
479 void increase (handle_type handle)
|
Chris@16
|
480 {
|
Chris@16
|
481 node_pointer n = handle.node_;
|
Chris@16
|
482 siftup(n, *this);
|
Chris@16
|
483
|
Chris@16
|
484 update_top_element();
|
Chris@16
|
485 sanity_check();
|
Chris@16
|
486 }
|
Chris@16
|
487
|
Chris@16
|
488 /**
|
Chris@16
|
489 * \b Effects: Assigns \c v to the element handled by \c handle & updates the priority queue.
|
Chris@16
|
490 *
|
Chris@16
|
491 * \b Complexity: Logarithmic.
|
Chris@16
|
492 *
|
Chris@16
|
493 * \b Note: The new value is expected to be less than the current one
|
Chris@16
|
494 * */
|
Chris@16
|
495 void decrease (handle_type handle, const_reference v)
|
Chris@16
|
496 {
|
Chris@16
|
497 handle.node_->value = super_t::make_node(v);
|
Chris@16
|
498 decrease(handle);
|
Chris@16
|
499 }
|
Chris@16
|
500
|
Chris@16
|
501 /**
|
Chris@16
|
502 * \b Effects: Updates the heap after the element handled by \c handle has been changed.
|
Chris@16
|
503 *
|
Chris@16
|
504 * \b Complexity: Logarithmic.
|
Chris@16
|
505 *
|
Chris@16
|
506 * \b Note: The new value is expected to be less than the current one. If this is not called, after a handle has been updated, the behavior of the data structure is undefined!
|
Chris@16
|
507 * */
|
Chris@16
|
508 void decrease (handle_type handle)
|
Chris@16
|
509 {
|
Chris@16
|
510 node_pointer n = handle.node_;
|
Chris@16
|
511
|
Chris@16
|
512 siftdown(n);
|
Chris@16
|
513
|
Chris@16
|
514 if (n == top_element)
|
Chris@16
|
515 update_top_element();
|
Chris@16
|
516 }
|
Chris@16
|
517
|
Chris@16
|
518 /**
|
Chris@16
|
519 * \b Effects: Merge with priority queue rhs.
|
Chris@16
|
520 *
|
Chris@16
|
521 * \b Complexity: Logarithmic.
|
Chris@16
|
522 *
|
Chris@16
|
523 * */
|
Chris@16
|
524 void merge(binomial_heap & rhs)
|
Chris@16
|
525 {
|
Chris@16
|
526 if (rhs.empty())
|
Chris@16
|
527 return;
|
Chris@16
|
528
|
Chris@16
|
529 if (empty()) {
|
Chris@16
|
530 swap(rhs);
|
Chris@16
|
531 return;
|
Chris@16
|
532 }
|
Chris@16
|
533
|
Chris@16
|
534 size_type new_size = size_holder::get_size() + rhs.get_size();
|
Chris@16
|
535 merge_and_clear_nodes(rhs);
|
Chris@16
|
536
|
Chris@16
|
537 size_holder::set_size(new_size);
|
Chris@16
|
538 rhs.set_size(0);
|
Chris@16
|
539 rhs.top_element = NULL;
|
Chris@16
|
540
|
Chris@16
|
541 super_t::set_stability_count((std::max)(super_t::get_stability_count(),
|
Chris@16
|
542 rhs.get_stability_count()));
|
Chris@16
|
543 rhs.set_stability_count(0);
|
Chris@16
|
544 }
|
Chris@16
|
545
|
Chris@16
|
546 public:
|
Chris@16
|
547 /// \copydoc boost::heap::priority_queue::begin
|
Chris@16
|
548 iterator begin(void) const
|
Chris@16
|
549 {
|
Chris@16
|
550 return iterator(trees.begin());
|
Chris@16
|
551 }
|
Chris@16
|
552
|
Chris@16
|
553 /// \copydoc boost::heap::priority_queue::end
|
Chris@16
|
554 iterator end(void) const
|
Chris@16
|
555 {
|
Chris@16
|
556 return iterator(trees.end());
|
Chris@16
|
557 }
|
Chris@16
|
558
|
Chris@16
|
559 /// \copydoc boost::heap::fibonacci_heap::ordered_begin
|
Chris@16
|
560 ordered_iterator ordered_begin(void) const
|
Chris@16
|
561 {
|
Chris@16
|
562 return ordered_iterator(trees.begin(), trees.end(), top_element, super_t::value_comp());
|
Chris@16
|
563 }
|
Chris@16
|
564
|
Chris@16
|
565 /// \copydoc boost::heap::fibonacci_heap::ordered_end
|
Chris@16
|
566 ordered_iterator ordered_end(void) const
|
Chris@16
|
567 {
|
Chris@16
|
568 return ordered_iterator(NULL, super_t::value_comp());
|
Chris@16
|
569 }
|
Chris@16
|
570
|
Chris@16
|
571 /**
|
Chris@16
|
572 * \b Effects: Removes the element handled by \c handle from the priority_queue.
|
Chris@16
|
573 *
|
Chris@16
|
574 * \b Complexity: Logarithmic.
|
Chris@16
|
575 * */
|
Chris@16
|
576 void erase(handle_type handle)
|
Chris@16
|
577 {
|
Chris@16
|
578 node_pointer n = handle.node_;
|
Chris@16
|
579 siftup(n, force_inf());
|
Chris@16
|
580 top_element = n;
|
Chris@16
|
581 pop();
|
Chris@16
|
582 }
|
Chris@16
|
583
|
Chris@16
|
584 /// \copydoc boost::heap::d_ary_heap_mutable::s_handle_from_iterator
|
Chris@16
|
585 static handle_type s_handle_from_iterator(iterator const & it)
|
Chris@16
|
586 {
|
Chris@16
|
587 node_type * ptr = const_cast<node_type *>(it.get_node());
|
Chris@16
|
588 return handle_type(ptr);
|
Chris@16
|
589 }
|
Chris@16
|
590
|
Chris@16
|
591 /// \copydoc boost::heap::priority_queue::value_comp
|
Chris@16
|
592 value_compare const & value_comp(void) const
|
Chris@16
|
593 {
|
Chris@16
|
594 return super_t::value_comp();
|
Chris@16
|
595 }
|
Chris@16
|
596
|
Chris@16
|
597 /// \copydoc boost::heap::priority_queue::operator<(HeapType const & rhs) const
|
Chris@16
|
598 template <typename HeapType>
|
Chris@16
|
599 bool operator<(HeapType const & rhs) const
|
Chris@16
|
600 {
|
Chris@16
|
601 return detail::heap_compare(*this, rhs);
|
Chris@16
|
602 }
|
Chris@16
|
603
|
Chris@16
|
604 /// \copydoc boost::heap::priority_queue::operator>(HeapType const & rhs) const
|
Chris@16
|
605 template <typename HeapType>
|
Chris@16
|
606 bool operator>(HeapType const & rhs) const
|
Chris@16
|
607 {
|
Chris@16
|
608 return detail::heap_compare(rhs, *this);
|
Chris@16
|
609 }
|
Chris@16
|
610
|
Chris@16
|
611 /// \copydoc boost::heap::priority_queue::operator>=(HeapType const & rhs) const
|
Chris@16
|
612 template <typename HeapType>
|
Chris@16
|
613 bool operator>=(HeapType const & rhs) const
|
Chris@16
|
614 {
|
Chris@16
|
615 return !operator<(rhs);
|
Chris@16
|
616 }
|
Chris@16
|
617
|
Chris@16
|
618 /// \copydoc boost::heap::priority_queue::operator<=(HeapType const & rhs) const
|
Chris@16
|
619 template <typename HeapType>
|
Chris@16
|
620 bool operator<=(HeapType const & rhs) const
|
Chris@16
|
621 {
|
Chris@16
|
622 return !operator>(rhs);
|
Chris@16
|
623 }
|
Chris@16
|
624
|
Chris@16
|
625 /// \copydoc boost::heap::priority_queue::operator==(HeapType const & rhs) const
|
Chris@16
|
626 template <typename HeapType>
|
Chris@16
|
627 bool operator==(HeapType const & rhs) const
|
Chris@16
|
628 {
|
Chris@16
|
629 return detail::heap_equality(*this, rhs);
|
Chris@16
|
630 }
|
Chris@16
|
631
|
Chris@16
|
632 /// \copydoc boost::heap::priority_queue::operator!=(HeapType const & rhs) const
|
Chris@16
|
633 template <typename HeapType>
|
Chris@16
|
634 bool operator!=(HeapType const & rhs) const
|
Chris@16
|
635 {
|
Chris@16
|
636 return !(*this == rhs);
|
Chris@16
|
637 }
|
Chris@16
|
638
|
Chris@16
|
639 private:
|
Chris@16
|
640 #if !defined(BOOST_DOXYGEN_INVOKED)
|
Chris@16
|
641 void merge_and_clear_nodes(binomial_heap & rhs)
|
Chris@16
|
642 {
|
Chris@16
|
643 BOOST_HEAP_ASSERT (!empty());
|
Chris@16
|
644 BOOST_HEAP_ASSERT (!rhs.empty());
|
Chris@16
|
645
|
Chris@16
|
646 node_list_iterator this_iterator = trees.begin();
|
Chris@16
|
647 node_pointer carry_node = NULL;
|
Chris@16
|
648
|
Chris@16
|
649 while (!rhs.trees.empty()) {
|
Chris@16
|
650 node_pointer rhs_node = static_cast<node_pointer>(&rhs.trees.front());
|
Chris@16
|
651 size_type rhs_degree = rhs_node->child_count();
|
Chris@16
|
652
|
Chris@16
|
653 if (super_t::operator()(top_element->value, rhs_node->value))
|
Chris@16
|
654 top_element = rhs_node;
|
Chris@16
|
655
|
Chris@16
|
656 try_again:
|
Chris@16
|
657 node_pointer this_node = static_cast<node_pointer>(&*this_iterator);
|
Chris@16
|
658 size_type this_degree = this_node->child_count();
|
Chris@16
|
659 sorted_by_degree();
|
Chris@16
|
660 rhs.sorted_by_degree();
|
Chris@16
|
661
|
Chris@16
|
662 if (this_degree == rhs_degree) {
|
Chris@16
|
663 if (carry_node) {
|
Chris@16
|
664 if (carry_node->child_count() < this_degree) {
|
Chris@16
|
665 trees.insert(this_iterator, *carry_node);
|
Chris@16
|
666 carry_node = NULL;
|
Chris@16
|
667 } else {
|
Chris@16
|
668 rhs.trees.pop_front();
|
Chris@16
|
669 carry_node = merge_trees(carry_node, rhs_node);
|
Chris@16
|
670 }
|
Chris@16
|
671 ++this_iterator;
|
Chris@16
|
672 } else {
|
Chris@16
|
673 this_iterator = trees.erase(this_iterator);
|
Chris@16
|
674 rhs.trees.pop_front();
|
Chris@16
|
675 carry_node = merge_trees(this_node, rhs_node);
|
Chris@16
|
676 }
|
Chris@16
|
677
|
Chris@16
|
678 if (this_iterator == trees.end())
|
Chris@16
|
679 break;
|
Chris@16
|
680 else
|
Chris@16
|
681 continue;
|
Chris@16
|
682 }
|
Chris@16
|
683
|
Chris@16
|
684 if (this_degree < rhs_degree) {
|
Chris@16
|
685 if (carry_node) {
|
Chris@16
|
686 if (carry_node->child_count() < this_degree) {
|
Chris@16
|
687 trees.insert(this_iterator, *carry_node);
|
Chris@16
|
688 carry_node = NULL;
|
Chris@16
|
689 ++this_iterator;
|
Chris@16
|
690 } else if (carry_node->child_count() == rhs_degree) {
|
Chris@16
|
691 rhs.trees.pop_front();
|
Chris@16
|
692 carry_node = merge_trees(carry_node, rhs_node);
|
Chris@16
|
693 continue;
|
Chris@16
|
694 } else {
|
Chris@16
|
695 this_iterator = trees.erase(this_iterator);
|
Chris@16
|
696 carry_node = merge_trees(this_node, carry_node);
|
Chris@16
|
697 }
|
Chris@16
|
698 goto try_again;
|
Chris@16
|
699 } else {
|
Chris@16
|
700 ++this_iterator;
|
Chris@16
|
701 if (this_iterator == trees.end())
|
Chris@16
|
702 break;
|
Chris@16
|
703 goto try_again;
|
Chris@16
|
704 }
|
Chris@16
|
705
|
Chris@16
|
706 if (this_iterator == trees.end())
|
Chris@16
|
707 break;
|
Chris@16
|
708 else
|
Chris@16
|
709 continue;
|
Chris@16
|
710 }
|
Chris@16
|
711
|
Chris@16
|
712 if (this_degree > rhs_degree) {
|
Chris@16
|
713 rhs.trees.pop_front();
|
Chris@16
|
714 if (carry_node) {
|
Chris@16
|
715 if (carry_node->child_count() < rhs_degree) {
|
Chris@16
|
716 trees.insert(this_iterator, *carry_node);
|
Chris@16
|
717 trees.insert(this_iterator, *rhs_node);
|
Chris@16
|
718 carry_node = NULL;
|
Chris@16
|
719 } else
|
Chris@16
|
720 carry_node = merge_trees(rhs_node, carry_node);
|
Chris@16
|
721 } else
|
Chris@16
|
722 trees.insert(this_iterator, *rhs_node);
|
Chris@16
|
723 }
|
Chris@16
|
724 }
|
Chris@16
|
725
|
Chris@16
|
726 if (!rhs.trees.empty()) {
|
Chris@16
|
727 if (carry_node) {
|
Chris@16
|
728 node_list_iterator rhs_it = rhs.trees.begin();
|
Chris@16
|
729 while (static_cast<node_pointer>(&*rhs_it)->child_count() < carry_node->child_count())
|
Chris@16
|
730 ++rhs_it;
|
Chris@16
|
731 rhs.insert_node(rhs_it, carry_node);
|
Chris@16
|
732 rhs.increment();
|
Chris@16
|
733 sorted_by_degree();
|
Chris@16
|
734 rhs.sorted_by_degree();
|
Chris@16
|
735 if (trees.empty()) {
|
Chris@16
|
736 trees.splice(trees.end(), rhs.trees, rhs.trees.begin(), rhs.trees.end());
|
Chris@16
|
737 update_top_element();
|
Chris@16
|
738 } else
|
Chris@16
|
739 merge_and_clear_nodes(rhs);
|
Chris@16
|
740 } else
|
Chris@16
|
741 trees.splice(trees.end(), rhs.trees, rhs.trees.begin(), rhs.trees.end());
|
Chris@16
|
742 return;
|
Chris@16
|
743 }
|
Chris@16
|
744
|
Chris@16
|
745 if (carry_node)
|
Chris@16
|
746 insert_node(this_iterator, carry_node);
|
Chris@16
|
747 }
|
Chris@16
|
748
|
Chris@16
|
749 void clone_forest(binomial_heap const & rhs)
|
Chris@16
|
750 {
|
Chris@16
|
751 BOOST_HEAP_ASSERT(trees.empty());
|
Chris@16
|
752 typedef typename node_type::template node_cloner<allocator_type> node_cloner;
|
Chris@16
|
753 trees.clone_from(rhs.trees, node_cloner(*this, NULL), detail::nop_disposer());
|
Chris@16
|
754
|
Chris@16
|
755 update_top_element();
|
Chris@16
|
756 }
|
Chris@16
|
757
|
Chris@16
|
758 struct force_inf
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Chris@16
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759 {
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Chris@16
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760 template <typename X>
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Chris@16
|
761 bool operator()(X const &, X const &) const
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Chris@16
|
762 {
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Chris@16
|
763 return false;
|
Chris@16
|
764 }
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Chris@16
|
765 };
|
Chris@16
|
766
|
Chris@16
|
767 template <typename Compare>
|
Chris@16
|
768 void siftup(node_pointer n, Compare const & cmp)
|
Chris@16
|
769 {
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Chris@16
|
770 while (n->parent) {
|
Chris@16
|
771 node_pointer parent = n->parent;
|
Chris@16
|
772 node_pointer grand_parent = parent->parent;
|
Chris@16
|
773 if (cmp(n->value, parent->value))
|
Chris@16
|
774 return;
|
Chris@16
|
775
|
Chris@16
|
776 n->remove_from_parent();
|
Chris@16
|
777
|
Chris@16
|
778 n->swap_children(parent);
|
Chris@16
|
779 n->update_children();
|
Chris@16
|
780 parent->update_children();
|
Chris@16
|
781
|
Chris@16
|
782 if (grand_parent) {
|
Chris@16
|
783 parent->remove_from_parent();
|
Chris@16
|
784 grand_parent->add_child(n);
|
Chris@16
|
785 } else {
|
Chris@16
|
786 node_list_iterator it = trees.erase(node_list_type::s_iterator_to(*parent));
|
Chris@16
|
787 trees.insert(it, *n);
|
Chris@16
|
788 }
|
Chris@16
|
789 n->add_child(parent);
|
Chris@16
|
790 BOOST_HEAP_ASSERT(parent->child_count() == n->child_count());
|
Chris@16
|
791 }
|
Chris@16
|
792 }
|
Chris@16
|
793
|
Chris@16
|
794 void siftdown(node_pointer n)
|
Chris@16
|
795 {
|
Chris@16
|
796 while (n->child_count()) {
|
Chris@16
|
797 node_pointer max_child = detail::find_max_child<node_list_type, node_type, internal_compare>(n->children, super_t::get_internal_cmp());
|
Chris@16
|
798
|
Chris@16
|
799 if (super_t::operator()(max_child->value, n->value))
|
Chris@16
|
800 return;
|
Chris@16
|
801
|
Chris@16
|
802 max_child->remove_from_parent();
|
Chris@16
|
803
|
Chris@16
|
804 n->swap_children(max_child);
|
Chris@16
|
805 n->update_children();
|
Chris@16
|
806 max_child->update_children();
|
Chris@16
|
807
|
Chris@16
|
808 node_pointer parent = n->parent;
|
Chris@16
|
809 if (parent) {
|
Chris@16
|
810 n->remove_from_parent();
|
Chris@16
|
811 max_child->add_child(n);
|
Chris@16
|
812 parent->add_child(max_child);
|
Chris@16
|
813 } else {
|
Chris@16
|
814 node_list_iterator position = trees.erase(node_list_type::s_iterator_to(*n));
|
Chris@16
|
815 max_child->add_child(n);
|
Chris@16
|
816 trees.insert(position, *max_child);
|
Chris@16
|
817 }
|
Chris@16
|
818 }
|
Chris@16
|
819 }
|
Chris@16
|
820
|
Chris@16
|
821 void insert_node(node_list_iterator it, node_pointer n)
|
Chris@16
|
822 {
|
Chris@16
|
823 if (it != trees.end())
|
Chris@16
|
824 BOOST_HEAP_ASSERT(static_cast<node_pointer>(&*it)->child_count() >= n->child_count());
|
Chris@16
|
825
|
Chris@16
|
826 while(true) {
|
Chris@16
|
827 BOOST_HEAP_ASSERT(!n->is_linked());
|
Chris@16
|
828 if (it == trees.end())
|
Chris@16
|
829 break;
|
Chris@16
|
830
|
Chris@16
|
831 node_pointer this_node = static_cast<node_pointer>(&*it);
|
Chris@16
|
832 size_type this_degree = this_node->child_count();
|
Chris@16
|
833 size_type n_degree = n->child_count();
|
Chris@16
|
834 if (this_degree == n_degree) {
|
Chris@16
|
835 BOOST_HEAP_ASSERT(it->is_linked());
|
Chris@16
|
836 it = trees.erase(it);
|
Chris@16
|
837
|
Chris@16
|
838 n = merge_trees(n, this_node);
|
Chris@16
|
839 } else
|
Chris@16
|
840 break;
|
Chris@16
|
841 }
|
Chris@16
|
842 trees.insert(it, *n);
|
Chris@16
|
843 }
|
Chris@16
|
844
|
Chris@16
|
845 // private constructor, just used in pop()
|
Chris@16
|
846 explicit binomial_heap(value_compare const & cmp, node_list_type & child_list, size_type size):
|
Chris@16
|
847 super_t(cmp)
|
Chris@16
|
848 {
|
Chris@16
|
849 size_holder::set_size(size);
|
Chris@16
|
850 if (size)
|
Chris@16
|
851 top_element = static_cast<node_pointer>(&*child_list.begin()); // not correct, but we will reset it later
|
Chris@16
|
852 else
|
Chris@16
|
853 top_element = NULL;
|
Chris@16
|
854
|
Chris@16
|
855 for (node_list_iterator it = child_list.begin(); it != child_list.end(); ++it) {
|
Chris@16
|
856 node_pointer n = static_cast<node_pointer>(&*it);
|
Chris@16
|
857 n->parent = NULL;
|
Chris@16
|
858 }
|
Chris@16
|
859
|
Chris@16
|
860 trees.splice(trees.end(), child_list, child_list.begin(), child_list.end());
|
Chris@16
|
861
|
Chris@16
|
862 trees.sort(detail::cmp_by_degree<node_type>());
|
Chris@16
|
863 }
|
Chris@16
|
864
|
Chris@16
|
865 node_pointer merge_trees (node_pointer node1, node_pointer node2)
|
Chris@16
|
866 {
|
Chris@16
|
867 BOOST_HEAP_ASSERT(node1->child_count() == node2->child_count());
|
Chris@16
|
868
|
Chris@16
|
869 if (super_t::operator()(node1->value, node2->value))
|
Chris@16
|
870 std::swap(node1, node2);
|
Chris@16
|
871
|
Chris@16
|
872 if (node2->parent)
|
Chris@16
|
873 node2->remove_from_parent();
|
Chris@16
|
874
|
Chris@16
|
875 node1->add_child(node2);
|
Chris@16
|
876 return node1;
|
Chris@16
|
877 }
|
Chris@16
|
878
|
Chris@16
|
879 void update_top_element(void)
|
Chris@16
|
880 {
|
Chris@16
|
881 top_element = detail::find_max_child<node_list_type, node_type, internal_compare>(trees, super_t::get_internal_cmp());
|
Chris@16
|
882 }
|
Chris@16
|
883
|
Chris@16
|
884 void sorted_by_degree(void) const
|
Chris@16
|
885 {
|
Chris@16
|
886 #ifdef BOOST_HEAP_SANITYCHECKS
|
Chris@16
|
887 int degree = -1;
|
Chris@16
|
888
|
Chris@16
|
889 for (node_list_const_iterator it = trees.begin(); it != trees.end(); ++it) {
|
Chris@16
|
890 const_node_pointer n = static_cast<const_node_pointer>(&*it);
|
Chris@16
|
891 BOOST_HEAP_ASSERT(int(n->child_count()) > degree);
|
Chris@16
|
892 degree = n->child_count();
|
Chris@16
|
893
|
Chris@16
|
894 BOOST_HEAP_ASSERT((detail::is_heap<node_type, super_t>(n, *this)));
|
Chris@16
|
895
|
Chris@16
|
896 size_type child_nodes = detail::count_nodes<node_type>(n);
|
Chris@16
|
897 BOOST_HEAP_ASSERT(child_nodes == size_type(1 << static_cast<const_node_pointer>(&*it)->child_count()));
|
Chris@16
|
898 }
|
Chris@16
|
899 #endif
|
Chris@16
|
900 }
|
Chris@16
|
901
|
Chris@16
|
902 void sanity_check(void)
|
Chris@16
|
903 {
|
Chris@16
|
904 #ifdef BOOST_HEAP_SANITYCHECKS
|
Chris@16
|
905 sorted_by_degree();
|
Chris@16
|
906
|
Chris@16
|
907 if (!empty()) {
|
Chris@16
|
908 node_pointer found_top = detail::find_max_child<node_list_type, node_type, internal_compare>(trees, super_t::get_internal_cmp());
|
Chris@16
|
909 BOOST_HEAP_ASSERT(top_element == found_top);
|
Chris@16
|
910 }
|
Chris@16
|
911
|
Chris@16
|
912 if (constant_time_size) {
|
Chris@16
|
913 size_t counted = detail::count_list_nodes<node_type, node_list_type>(trees);
|
Chris@16
|
914 size_t stored = size_holder::get_size();
|
Chris@16
|
915 BOOST_HEAP_ASSERT(counted == stored);
|
Chris@16
|
916 }
|
Chris@16
|
917 #endif
|
Chris@16
|
918 }
|
Chris@16
|
919
|
Chris@16
|
920 node_pointer top_element;
|
Chris@16
|
921 node_list_type trees;
|
Chris@16
|
922 #endif // BOOST_DOXYGEN_INVOKED
|
Chris@16
|
923 };
|
Chris@16
|
924
|
Chris@16
|
925
|
Chris@16
|
926 } /* namespace heap */
|
Chris@16
|
927 } /* namespace boost */
|
Chris@16
|
928
|
Chris@16
|
929 #undef BOOST_HEAP_ASSERT
|
Chris@16
|
930
|
Chris@16
|
931 #endif /* BOOST_HEAP_D_ARY_HEAP_HPP */
|