00001 // <memory> -*- C++ -*- 00002 00003 // Copyright (C) 2001, 2002, 2004 Free Software Foundation, Inc. 00004 // 00005 // This file is part of the GNU ISO C++ Library. This library is free 00006 // software; you can redistribute it and/or modify it under the 00007 // terms of the GNU General Public License as published by the 00008 // Free Software Foundation; either version 2, or (at your option) 00009 // any later version. 00010 00011 // This library is distributed in the hope that it will be useful, 00012 // but WITHOUT ANY WARRANTY; without even the implied warranty of 00013 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 00014 // GNU General Public License for more details. 00015 00016 // You should have received a copy of the GNU General Public License along 00017 // with this library; see the file COPYING. If not, write to the Free 00018 // Software Foundation, 59 Temple Place - Suite 330, Boston, MA 02111-1307, 00019 // USA. 00020 00021 // As a special exception, you may use this file as part of a free software 00022 // library without restriction. Specifically, if other files instantiate 00023 // templates or use macros or inline functions from this file, or you compile 00024 // this file and link it with other files to produce an executable, this 00025 // file does not by itself cause the resulting executable to be covered by 00026 // the GNU General Public License. This exception does not however 00027 // invalidate any other reasons why the executable file might be covered by 00028 // the GNU General Public License. 00029 00030 /* 00031 * Copyright (c) 1997-1999 00032 * Silicon Graphics Computer Systems, Inc. 00033 * 00034 * Permission to use, copy, modify, distribute and sell this software 00035 * and its documentation for any purpose is hereby granted without fee, 00036 * provided that the above copyright notice appear in all copies and 00037 * that both that copyright notice and this permission notice appear 00038 * in supporting documentation. Silicon Graphics makes no 00039 * representations about the suitability of this software for any 00040 * purpose. It is provided "as is" without express or implied warranty. 00041 * 00042 */ 00043 00044 /** @file memory 00045 * This is a Standard C++ Library header. You should @c #include this header 00046 * in your programs, rather than any of the "st[dl]_*.h" implementation files. 00047 */ 00048 00049 #ifndef _CPP_MEMORY 00050 #define _CPP_MEMORY 1 00051 00052 #pragma GCC system_header 00053 00054 #include <bits/stl_algobase.h> 00055 #include <bits/stl_alloc.h> 00056 #include <bits/stl_construct.h> 00057 #include <bits/stl_iterator_base_types.h> //for iterator_traits 00058 #include <bits/stl_uninitialized.h> 00059 #include <bits/stl_raw_storage_iter.h> 00060 #include <limits> 00061 00062 namespace std 00063 { 00064 /** 00065 * @if maint 00066 * This is a helper function. The unused second parameter exists to 00067 * permit the real get_temporary_buffer to use template parameter deduction. 00068 * 00069 * XXX This should perhaps use the pool. 00070 * @endif 00071 */ 00072 template<typename _Tp> 00073 pair<_Tp*, ptrdiff_t> 00074 __get_temporary_buffer(ptrdiff_t __len, _Tp*) 00075 { 00076 const ptrdiff_t __max = numeric_limits<ptrdiff_t>::max() / sizeof(_Tp); 00077 if (__len > __max) 00078 __len = __max; 00079 00080 while (__len > 0) 00081 { 00082 _Tp* __tmp = (_Tp*) std::malloc((std::size_t)__len * sizeof(_Tp)); 00083 if (__tmp != 0) 00084 return pair<_Tp*, ptrdiff_t>(__tmp, __len); 00085 __len /= 2; 00086 } 00087 return pair<_Tp*, ptrdiff_t>((_Tp*)0, 0); 00088 } 00089 00090 /** 00091 * @brief This is a mostly-useless wrapper around malloc(). 00092 * @param len The number of objects of type Tp. 00093 * @return See full description. 00094 * 00095 * Reinventing the wheel, but this time with prettier spokes! 00096 * 00097 * This function tries to obtain storage for @c len adjacent Tp objects. 00098 * The objects themselves are not constructed, of course. A pair<> is 00099 * returned containing "the buffer s address and capacity (in the units of 00100 * sizeof(Tp)), or a pair of 0 values if no storage can be obtained." 00101 * Note that the capacity obtained may be less than that requested if the 00102 * memory is unavailable; you should compare len with the .second return 00103 * value. 00104 */ 00105 template<typename _Tp> 00106 inline pair<_Tp*,ptrdiff_t> 00107 get_temporary_buffer(ptrdiff_t __len) 00108 { return __get_temporary_buffer(__len, (_Tp*) 0); } 00109 00110 /** 00111 * @brief The companion to get_temporary_buffer(). 00112 * @param p A buffer previously allocated by get_temporary_buffer. 00113 * @return None. 00114 * 00115 * Frees the memory pointed to by p. 00116 */ 00117 template<typename _Tp> 00118 void 00119 return_temporary_buffer(_Tp* __p) 00120 { std::free(__p); } 00121 00122 /** 00123 * A wrapper class to provide auto_ptr with reference semantics. For 00124 * example, an auto_ptr can be assigned (or constructed from) the result of 00125 * a function which returns an auto_ptr by value. 00126 * 00127 * All the auto_ptr_ref stuff should happen behind the scenes. 00128 */ 00129 template<typename _Tp1> 00130 struct auto_ptr_ref 00131 { 00132 _Tp1* _M_ptr; 00133 00134 explicit 00135 auto_ptr_ref(_Tp1* __p): _M_ptr(__p) { } 00136 }; 00137 00138 00139 /** 00140 * @brief A simple smart pointer providing strict ownership semantics. 00141 * 00142 * The Standard says: 00143 * <pre> 00144 * An @c auto_ptr owns the object it holds a pointer to. Copying an 00145 * @c auto_ptr copies the pointer and transfers ownership to the destination. 00146 * If more than one @c auto_ptr owns the same object at the same time the 00147 * behavior of the program is undefined. 00148 * 00149 * The uses of @c auto_ptr include providing temporary exception-safety for 00150 * dynamically allocated memory, passing ownership of dynamically allocated 00151 * memory to a function, and returning dynamically allocated memory from a 00152 * function. @c auto_ptr does not meet the CopyConstructible and Assignable 00153 * requirements for Standard Library <a href="tables.html#65">container</a> 00154 * elements and thus instantiating a Standard Library container with an 00155 * @c auto_ptr results in undefined behavior. 00156 * </pre> 00157 * Quoted from [20.4.5]/3. 00158 * 00159 * Good examples of what can and cannot be done with auto_ptr can be found 00160 * in the libstdc++ testsuite. 00161 * 00162 * @if maint 00163 * _GLIBCPP_RESOLVE_LIB_DEFECTS 00164 * 127. auto_ptr<> conversion issues 00165 * These resolutions have all been incorporated. 00166 * @endif 00167 */ 00168 template<typename _Tp> 00169 class auto_ptr 00170 { 00171 private: 00172 _Tp* _M_ptr; 00173 00174 public: 00175 /// The pointed-to type. 00176 typedef _Tp element_type; 00177 00178 /** 00179 * @brief An %auto_ptr is usually constructed from a raw pointer. 00180 * @param p A pointer (defaults to NULL). 00181 * 00182 * This object now @e owns the object pointed to by @a p. 00183 */ 00184 explicit 00185 auto_ptr(element_type* __p = 0) throw() : _M_ptr(__p) { } 00186 00187 /** 00188 * @brief An %auto_ptr can be constructed from another %auto_ptr. 00189 * @param a Another %auto_ptr of the same type. 00190 * 00191 * This object now @e owns the object previously owned by @a a, 00192 * which has given up ownsership. 00193 */ 00194 auto_ptr(auto_ptr& __a) throw() : _M_ptr(__a.release()) { } 00195 00196 /** 00197 * @brief An %auto_ptr can be constructed from another %auto_ptr. 00198 * @param a Another %auto_ptr of a different but related type. 00199 * 00200 * A pointer-to-Tp1 must be convertible to a pointer-to-Tp/element_type. 00201 * 00202 * This object now @e owns the object previously owned by @a a, 00203 * which has given up ownsership. 00204 */ 00205 template<typename _Tp1> 00206 auto_ptr(auto_ptr<_Tp1>& __a) throw() : _M_ptr(__a.release()) { } 00207 00208 /** 00209 * @brief %auto_ptr assignment operator. 00210 * @param a Another %auto_ptr of the same type. 00211 * 00212 * This object now @e owns the object previously owned by @a a, 00213 * which has given up ownsership. The object that this one @e 00214 * used to own and track has been deleted. 00215 */ 00216 auto_ptr& 00217 operator=(auto_ptr& __a) throw() 00218 { 00219 reset(__a.release()); 00220 return *this; 00221 } 00222 00223 /** 00224 * @brief %auto_ptr assignment operator. 00225 * @param a Another %auto_ptr of a different but related type. 00226 * 00227 * A pointer-to-Tp1 must be convertible to a pointer-to-Tp/element_type. 00228 * 00229 * This object now @e owns the object previously owned by @a a, 00230 * which has given up ownsership. The object that this one @e 00231 * used to own and track has been deleted. 00232 */ 00233 template<typename _Tp1> 00234 auto_ptr& 00235 operator=(auto_ptr<_Tp1>& __a) throw() 00236 { 00237 reset(__a.release()); 00238 return *this; 00239 } 00240 00241 /** 00242 * When the %auto_ptr goes out of scope, the object it owns is deleted. 00243 * If it no longer owns anything (i.e., @c get() is @c NULL), then this 00244 * has no effect. 00245 * 00246 * @if maint 00247 * The C++ standard says there is supposed to be an empty throw 00248 * specification here, but omitting it is standard conforming. Its 00249 * presence can be detected only if _Tp::~_Tp() throws, but this is 00250 * prohibited. [17.4.3.6]/2 00251 * @end maint 00252 */ 00253 ~auto_ptr() { delete _M_ptr; } 00254 00255 /** 00256 * @brief Smart pointer dereferencing. 00257 * 00258 * If this %auto_ptr no longer owns anything, then this 00259 * operation will crash. (For a smart pointer, "no longer owns 00260 * anything" is the same as being a null pointer, and you know 00261 * what happens when you dereference one of those...) 00262 */ 00263 element_type& 00264 operator*() const throw() { return *_M_ptr; } 00265 00266 /** 00267 * @brief Smart pointer dereferencing. 00268 * 00269 * This returns the pointer itself, which the language then will 00270 * automatically cause to be dereferenced. 00271 */ 00272 element_type* 00273 operator->() const throw() { return _M_ptr; } 00274 00275 /** 00276 * @brief Bypassing the smart pointer. 00277 * @return The raw pointer being managed. 00278 * 00279 * You can get a copy of the pointer that this object owns, for 00280 * situations such as passing to a function which only accepts a raw 00281 * pointer. 00282 * 00283 * @note This %auto_ptr still owns the memory. 00284 */ 00285 element_type* 00286 get() const throw() { return _M_ptr; } 00287 00288 /** 00289 * @brief Bypassing the smart pointer. 00290 * @return The raw pointer being managed. 00291 * 00292 * You can get a copy of the pointer that this object owns, for 00293 * situations such as passing to a function which only accepts a raw 00294 * pointer. 00295 * 00296 * @note This %auto_ptr no longer owns the memory. When this object 00297 * goes out of scope, nothing will happen. 00298 */ 00299 element_type* 00300 release() throw() 00301 { 00302 element_type* __tmp = _M_ptr; 00303 _M_ptr = 0; 00304 return __tmp; 00305 } 00306 00307 /** 00308 * @brief Forcibly deletes the managed object. 00309 * @param p A pointer (defaults to NULL). 00310 * 00311 * This object now @e owns the object pointed to by @a p. The previous 00312 * object has been deleted. 00313 */ 00314 void 00315 reset(element_type* __p = 0) throw() 00316 { 00317 if (__p != _M_ptr) 00318 { 00319 delete _M_ptr; 00320 _M_ptr = __p; 00321 } 00322 } 00323 00324 /** @{ 00325 * @brief Automatic conversions 00326 * 00327 * These operations convert an %auto_ptr into and from an auto_ptr_ref 00328 * automatically as needed. This allows constructs such as 00329 * @code 00330 * auto_ptr<Derived> func_returning_auto_ptr(.....); 00331 * ... 00332 * auto_ptr<Base> ptr = func_returning_auto_ptr(.....); 00333 * @endcode 00334 */ 00335 auto_ptr(auto_ptr_ref<element_type> __ref) throw() 00336 : _M_ptr(__ref._M_ptr) { } 00337 00338 auto_ptr& 00339 operator=(auto_ptr_ref<element_type> __ref) throw() 00340 { 00341 if (__ref._M_ptr != this->get()) 00342 { 00343 delete _M_ptr; 00344 _M_ptr = __ref._M_ptr; 00345 } 00346 return *this; 00347 } 00348 00349 template<typename _Tp1> 00350 operator auto_ptr_ref<_Tp1>() throw() 00351 { return auto_ptr_ref<_Tp1>(this->release()); } 00352 00353 template<typename _Tp1> 00354 operator auto_ptr<_Tp1>() throw() 00355 { return auto_ptr<_Tp1>(this->release()); } 00356 /** @} */ 00357 }; 00358 } // namespace std 00359 00360 #endif
1.4.1