1// SGI's rope class -*- C++ -*- 2 3// Copyright (C) 2001-2020 Free Software Foundation, Inc. 4// 5// This file is part of the GNU ISO C++ Library. This library is free 6// software; you can redistribute it and/or modify it under the 7// terms of the GNU General Public License as published by the 8// Free Software Foundation; either version 3, or (at your option) 9// any later version. 10 11// This library is distributed in the hope that it will be useful, 12// but WITHOUT ANY WARRANTY; without even the implied warranty of 13// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 14// GNU General Public License for more details. 15 16// Under Section 7 of GPL version 3, you are granted additional 17// permissions described in the GCC Runtime Library Exception, version 18// 3.1, as published by the Free Software Foundation. 19 20// You should have received a copy of the GNU General Public License and 21// a copy of the GCC Runtime Library Exception along with this program; 22// see the files COPYING3 and COPYING.RUNTIME respectively. If not, see 23// <http://www.gnu.org/licenses/>. 24 25/* 26 * Copyright (c) 1997 27 * Silicon Graphics Computer Systems, Inc. 28 * 29 * Permission to use, copy, modify, distribute and sell this software 30 * and its documentation for any purpose is hereby granted without fee, 31 * provided that the above copyright notice appear in all copies and 32 * that both that copyright notice and this permission notice appear 33 * in supporting documentation. Silicon Graphics makes no 34 * representations about the suitability of this software for any 35 * purpose. It is provided "as is" without express or implied warranty. 36 */ 37 38/** @file ext/rope 39 * This file is a GNU extension to the Standard C++ Library (possibly 40 * containing extensions from the HP/SGI STL subset). 41 */ 42 43#ifndef _ROPE 44#define _ROPE 1 45 46#pragma GCC system_header 47 48#include <algorithm> 49#include <iosfwd> 50#include <bits/stl_construct.h> 51#include <bits/stl_uninitialized.h> 52#include <bits/stl_function.h> 53#include <bits/stl_numeric.h> 54#include <bits/allocator.h> 55#include <bits/gthr.h> 56#include <ext/alloc_traits.h> 57#include <tr1/functional> 58 59# ifdef __GC 60# define __GC_CONST const 61# else 62# define __GC_CONST // constant except for deallocation 63# endif 64 65#include <ext/memory> // For uninitialized_copy_n 66 67namespace __gnu_cxx _GLIBCXX_VISIBILITY(default) 68{ 69_GLIBCXX_BEGIN_NAMESPACE_VERSION 70 71 namespace __detail 72 { 73 enum { _S_max_rope_depth = 45 }; 74 enum _Tag {_S_leaf, _S_concat, _S_substringfn, _S_function}; 75 } // namespace __detail 76 77 // See libstdc++/36832. 78 template<typename _ForwardIterator, typename _Allocator> 79 void 80 _Destroy_const(_ForwardIterator __first, 81 _ForwardIterator __last, _Allocator __alloc) 82 { 83 for (; __first != __last; ++__first) 84 __alloc.destroy(&*__first); 85 } 86 87 template<typename _ForwardIterator, typename _Tp> 88 inline void 89 _Destroy_const(_ForwardIterator __first, 90 _ForwardIterator __last, std::allocator<_Tp>) 91 { std::_Destroy(__first, __last); } 92 93 // The _S_eos function is used for those functions that 94 // convert to/from C-like strings to detect the end of the string. 95 96 // The end-of-C-string character. 97 // This is what the draft standard says it should be. 98 template <class _CharT> 99 inline _CharT 100 _S_eos(_CharT*) 101 { return _CharT(); } 102 103 // Test for basic character types. 104 // For basic character types leaves having a trailing eos. 105 template <class _CharT> 106 inline bool 107 _S_is_basic_char_type(_CharT*) 108 { return false; } 109 110 template <class _CharT> 111 inline bool 112 _S_is_one_byte_char_type(_CharT*) 113 { return false; } 114 115 inline bool 116 _S_is_basic_char_type(char*) 117 { return true; } 118 119 inline bool 120 _S_is_one_byte_char_type(char*) 121 { return true; } 122 123 inline bool 124 _S_is_basic_char_type(wchar_t*) 125 { return true; } 126 127 // Store an eos iff _CharT is a basic character type. 128 // Do not reference _S_eos if it isn't. 129 template <class _CharT> 130 inline void 131 _S_cond_store_eos(_CharT&) { } 132 133 inline void 134 _S_cond_store_eos(char& __c) 135 { __c = 0; } 136 137 inline void 138 _S_cond_store_eos(wchar_t& __c) 139 { __c = 0; } 140 141 // char_producers are logically functions that generate a section of 142 // a string. These can be converted to ropes. The resulting rope 143 // invokes the char_producer on demand. This allows, for example, 144 // files to be viewed as ropes without reading the entire file. 145 template <class _CharT> 146 class char_producer 147 { 148 public: 149 virtual ~char_producer() { } 150 151 virtual void 152 operator()(std::size_t __start_pos, std::size_t __len, 153 _CharT* __buffer) = 0; 154 // Buffer should really be an arbitrary output iterator. 155 // That way we could flatten directly into an ostream, etc. 156 // This is thoroughly impossible, since iterator types don't 157 // have runtime descriptions. 158 }; 159 160 // Sequence buffers: 161 // 162 // Sequence must provide an append operation that appends an 163 // array to the sequence. Sequence buffers are useful only if 164 // appending an entire array is cheaper than appending element by element. 165 // This is true for many string representations. 166 // This should perhaps inherit from ostream<sequence::value_type> 167 // and be implemented correspondingly, so that they can be used 168 // for formatted. For the sake of portability, we don't do this yet. 169 // 170 // For now, sequence buffers behave as output iterators. But they also 171 // behave a little like basic_ostringstream<sequence::value_type> and a 172 // little like containers. 173 174 template<class _Sequence, std::size_t _Buf_sz = 100> 175 class sequence_buffer 176 : public std::iterator<std::output_iterator_tag, void, void, void, void> 177 { 178 public: 179 typedef typename _Sequence::value_type value_type; 180 protected: 181 _Sequence* _M_prefix; 182 value_type _M_buffer[_Buf_sz]; 183 std::size_t _M_buf_count; 184 public: 185 186 void 187 flush() 188 { 189 _M_prefix->append(_M_buffer, _M_buffer + _M_buf_count); 190 _M_buf_count = 0; 191 } 192 193 ~sequence_buffer() 194 { flush(); } 195 196 sequence_buffer() 197 : _M_prefix(0), _M_buf_count(0) { } 198 199 sequence_buffer(const sequence_buffer& __x) 200 { 201 _M_prefix = __x._M_prefix; 202 _M_buf_count = __x._M_buf_count; 203 std::copy(__x._M_buffer, __x._M_buffer + __x._M_buf_count, _M_buffer); 204 } 205 206 sequence_buffer(sequence_buffer& __x) 207 { 208 __x.flush(); 209 _M_prefix = __x._M_prefix; 210 _M_buf_count = 0; 211 } 212 213 sequence_buffer(_Sequence& __s) 214 : _M_prefix(&__s), _M_buf_count(0) { } 215 216 sequence_buffer& 217 operator=(sequence_buffer& __x) 218 { 219 __x.flush(); 220 _M_prefix = __x._M_prefix; 221 _M_buf_count = 0; 222 return *this; 223 } 224 225 sequence_buffer& 226 operator=(const sequence_buffer& __x) 227 { 228 _M_prefix = __x._M_prefix; 229 _M_buf_count = __x._M_buf_count; 230 std::copy(__x._M_buffer, __x._M_buffer + __x._M_buf_count, _M_buffer); 231 return *this; 232 } 233 234 void 235 push_back(value_type __x) 236 { 237 if (_M_buf_count < _Buf_sz) 238 { 239 _M_buffer[_M_buf_count] = __x; 240 ++_M_buf_count; 241 } 242 else 243 { 244 flush(); 245 _M_buffer[0] = __x; 246 _M_buf_count = 1; 247 } 248 } 249 250 void 251 append(value_type* __s, std::size_t __len) 252 { 253 if (__len + _M_buf_count <= _Buf_sz) 254 { 255 std::size_t __i = _M_buf_count; 256 for (std::size_t __j = 0; __j < __len; __i++, __j++) 257 _M_buffer[__i] = __s[__j]; 258 _M_buf_count += __len; 259 } 260 else if (0 == _M_buf_count) 261 _M_prefix->append(__s, __s + __len); 262 else 263 { 264 flush(); 265 append(__s, __len); 266 } 267 } 268 269 sequence_buffer& 270 write(value_type* __s, std::size_t __len) 271 { 272 append(__s, __len); 273 return *this; 274 } 275 276 sequence_buffer& 277 put(value_type __x) 278 { 279 push_back(__x); 280 return *this; 281 } 282 283 sequence_buffer& 284 operator=(const value_type& __rhs) 285 { 286 push_back(__rhs); 287 return *this; 288 } 289 290 sequence_buffer& 291 operator*() 292 { return *this; } 293 294 sequence_buffer& 295 operator++() 296 { return *this; } 297 298 sequence_buffer 299 operator++(int) 300 { return *this; } 301 }; 302 303 // The following should be treated as private, at least for now. 304 template<class _CharT> 305 class _Rope_char_consumer 306 { 307 public: 308 // If we had member templates, these should not be virtual. 309 // For now we need to use run-time parametrization where 310 // compile-time would do. Hence this should all be private 311 // for now. 312 // The symmetry with char_producer is accidental and temporary. 313 virtual ~_Rope_char_consumer() { } 314 315 virtual bool 316 operator()(const _CharT* __buffer, std::size_t __len) = 0; 317 }; 318 319 // First a lot of forward declarations. The standard seems to require 320 // much stricter "declaration before use" than many of the implementations 321 // that preceded it. 322 template<class _CharT, class _Alloc = std::allocator<_CharT> > 323 class rope; 324 325 template<class _CharT, class _Alloc> 326 struct _Rope_RopeConcatenation; 327 328 template<class _CharT, class _Alloc> 329 struct _Rope_RopeLeaf; 330 331 template<class _CharT, class _Alloc> 332 struct _Rope_RopeFunction; 333 334 template<class _CharT, class _Alloc> 335 struct _Rope_RopeSubstring; 336 337 template<class _CharT, class _Alloc> 338 class _Rope_iterator; 339 340 template<class _CharT, class _Alloc> 341 class _Rope_const_iterator; 342 343 template<class _CharT, class _Alloc> 344 class _Rope_char_ref_proxy; 345 346 template<class _CharT, class _Alloc> 347 class _Rope_char_ptr_proxy; 348 349 template<class _CharT, class _Alloc> 350 bool 351 operator==(const _Rope_char_ptr_proxy<_CharT, _Alloc>& __x, 352 const _Rope_char_ptr_proxy<_CharT, _Alloc>& __y); 353 354 template<class _CharT, class _Alloc> 355 _Rope_const_iterator<_CharT, _Alloc> 356 operator-(const _Rope_const_iterator<_CharT, _Alloc>& __x, 357 std::ptrdiff_t __n); 358 359 template<class _CharT, class _Alloc> 360 _Rope_const_iterator<_CharT, _Alloc> 361 operator+(const _Rope_const_iterator<_CharT, _Alloc>& __x, 362 std::ptrdiff_t __n); 363 364 template<class _CharT, class _Alloc> 365 _Rope_const_iterator<_CharT, _Alloc> 366 operator+(std::ptrdiff_t __n, 367 const _Rope_const_iterator<_CharT, _Alloc>& __x); 368 369 template<class _CharT, class _Alloc> 370 bool 371 operator==(const _Rope_const_iterator<_CharT, _Alloc>& __x, 372 const _Rope_const_iterator<_CharT, _Alloc>& __y); 373 374 template<class _CharT, class _Alloc> 375 bool 376 operator<(const _Rope_const_iterator<_CharT, _Alloc>& __x, 377 const _Rope_const_iterator<_CharT, _Alloc>& __y); 378 379 template<class _CharT, class _Alloc> 380 std::ptrdiff_t 381 operator-(const _Rope_const_iterator<_CharT, _Alloc>& __x, 382 const _Rope_const_iterator<_CharT, _Alloc>& __y); 383 384 template<class _CharT, class _Alloc> 385 _Rope_iterator<_CharT, _Alloc> 386 operator-(const _Rope_iterator<_CharT, _Alloc>& __x, std::ptrdiff_t __n); 387 388 template<class _CharT, class _Alloc> 389 _Rope_iterator<_CharT, _Alloc> 390 operator+(const _Rope_iterator<_CharT, _Alloc>& __x, std::ptrdiff_t __n); 391 392 template<class _CharT, class _Alloc> 393 _Rope_iterator<_CharT, _Alloc> 394 operator+(std::ptrdiff_t __n, const _Rope_iterator<_CharT, _Alloc>& __x); 395 396 template<class _CharT, class _Alloc> 397 bool 398 operator==(const _Rope_iterator<_CharT, _Alloc>& __x, 399 const _Rope_iterator<_CharT, _Alloc>& __y); 400 401 template<class _CharT, class _Alloc> 402 bool 403 operator<(const _Rope_iterator<_CharT, _Alloc>& __x, 404 const _Rope_iterator<_CharT, _Alloc>& __y); 405 406 template<class _CharT, class _Alloc> 407 std::ptrdiff_t 408 operator-(const _Rope_iterator<_CharT, _Alloc>& __x, 409 const _Rope_iterator<_CharT, _Alloc>& __y); 410 411 template<class _CharT, class _Alloc> 412 rope<_CharT, _Alloc> 413 operator+(const rope<_CharT, _Alloc>& __left, 414 const rope<_CharT, _Alloc>& __right); 415 416 template<class _CharT, class _Alloc> 417 rope<_CharT, _Alloc> 418 operator+(const rope<_CharT, _Alloc>& __left, const _CharT* __right); 419 420 template<class _CharT, class _Alloc> 421 rope<_CharT, _Alloc> 422 operator+(const rope<_CharT, _Alloc>& __left, _CharT __right); 423 424 // Some helpers, so we can use power on ropes. 425 // See below for why this isn't local to the implementation. 426 427 // This uses a nonstandard refcount convention. 428 // The result has refcount 0. 429 template<class _CharT, class _Alloc> 430 struct _Rope_Concat_fn 431 : public std::binary_function<rope<_CharT, _Alloc>, rope<_CharT, _Alloc>, 432 rope<_CharT, _Alloc> > 433 { 434 rope<_CharT, _Alloc> 435 operator()(const rope<_CharT, _Alloc>& __x, 436 const rope<_CharT, _Alloc>& __y) 437 { return __x + __y; } 438 }; 439 440 template <class _CharT, class _Alloc> 441 inline rope<_CharT, _Alloc> 442 identity_element(_Rope_Concat_fn<_CharT, _Alloc>) 443 { return rope<_CharT, _Alloc>(); } 444 445 // Class _Refcount_Base provides a type, _RC_t, a data member, 446 // _M_ref_count, and member functions _M_incr and _M_decr, which perform 447 // atomic preincrement/predecrement. The constructor initializes 448 // _M_ref_count. 449 struct _Refcount_Base 450 { 451 // The type _RC_t 452 typedef std::size_t _RC_t; 453 454 // The data member _M_ref_count 455 volatile _RC_t _M_ref_count; 456 457 // Constructor 458#ifdef __GTHREAD_MUTEX_INIT 459 __gthread_mutex_t _M_ref_count_lock = __GTHREAD_MUTEX_INIT; 460#else 461 __gthread_mutex_t _M_ref_count_lock; 462#endif 463 464 _Refcount_Base(_RC_t __n) : _M_ref_count(__n) 465 { 466#ifndef __GTHREAD_MUTEX_INIT 467#ifdef __GTHREAD_MUTEX_INIT_FUNCTION 468 __GTHREAD_MUTEX_INIT_FUNCTION (&_M_ref_count_lock); 469#else 470#error __GTHREAD_MUTEX_INIT or __GTHREAD_MUTEX_INIT_FUNCTION should be defined by gthr.h abstraction layer, report problem to libstdc++@gcc.gnu.org. 471#endif 472#endif 473 } 474 475#ifndef __GTHREAD_MUTEX_INIT 476 ~_Refcount_Base() 477 { __gthread_mutex_destroy(&_M_ref_count_lock); } 478#endif 479 480 void 481 _M_incr() 482 { 483 __gthread_mutex_lock(&_M_ref_count_lock); 484 ++_M_ref_count; 485 __gthread_mutex_unlock(&_M_ref_count_lock); 486 } 487 488 _RC_t 489 _M_decr() 490 { 491 __gthread_mutex_lock(&_M_ref_count_lock); 492 volatile _RC_t __tmp = --_M_ref_count; 493 __gthread_mutex_unlock(&_M_ref_count_lock); 494 return __tmp; 495 } 496 }; 497 498 // 499 // What follows should really be local to rope. Unfortunately, 500 // that doesn't work, since it makes it impossible to define generic 501 // equality on rope iterators. According to the draft standard, the 502 // template parameters for such an equality operator cannot be inferred 503 // from the occurrence of a member class as a parameter. 504 // (SGI compilers in fact allow this, but the __result wouldn't be 505 // portable.) 506 // Similarly, some of the static member functions are member functions 507 // only to avoid polluting the global namespace, and to circumvent 508 // restrictions on type inference for template functions. 509 // 510 511 // 512 // The internal data structure for representing a rope. This is 513 // private to the implementation. A rope is really just a pointer 514 // to one of these. 515 // 516 // A few basic functions for manipulating this data structure 517 // are members of _RopeRep. Most of the more complex algorithms 518 // are implemented as rope members. 519 // 520 // Some of the static member functions of _RopeRep have identically 521 // named functions in rope that simply invoke the _RopeRep versions. 522 523#define __ROPE_DEFINE_ALLOCS(__a) \ 524 __ROPE_DEFINE_ALLOC(_CharT,_Data) /* character data */ \ 525 typedef _Rope_RopeConcatenation<_CharT,__a> __C; \ 526 __ROPE_DEFINE_ALLOC(__C,_C) \ 527 typedef _Rope_RopeLeaf<_CharT,__a> __L; \ 528 __ROPE_DEFINE_ALLOC(__L,_L) \ 529 typedef _Rope_RopeFunction<_CharT,__a> __F; \ 530 __ROPE_DEFINE_ALLOC(__F,_F) \ 531 typedef _Rope_RopeSubstring<_CharT,__a> __S; \ 532 __ROPE_DEFINE_ALLOC(__S,_S) 533 534 // Internal rope nodes potentially store a copy of the allocator 535 // instance used to allocate them. This is mostly redundant. 536 // But the alternative would be to pass allocator instances around 537 // in some form to nearly all internal functions, since any pointer 538 // assignment may result in a zero reference count and thus require 539 // deallocation. 540 541#define __STATIC_IF_SGI_ALLOC /* not static */ 542 543 template <class _CharT, class _Alloc> 544 struct _Rope_rep_base 545 : public _Alloc 546 { 547 typedef std::size_t size_type; 548 typedef _Alloc allocator_type; 549 550 allocator_type 551 get_allocator() const 552 { return *static_cast<const _Alloc*>(this); } 553 554 allocator_type& 555 _M_get_allocator() 556 { return *static_cast<_Alloc*>(this); } 557 558 const allocator_type& 559 _M_get_allocator() const 560 { return *static_cast<const _Alloc*>(this); } 561 562 _Rope_rep_base(size_type __size, const allocator_type&) 563 : _M_size(__size) { } 564 565 size_type _M_size; 566 567# define __ROPE_DEFINE_ALLOC(_Tp, __name) \ 568 typedef typename \ 569 __alloc_traits<_Alloc>::template rebind<_Tp>::other __name##Alloc; \ 570 static _Tp* __name##_allocate(size_type __n) \ 571 { return __name##Alloc().allocate(__n); } \ 572 static void __name##_deallocate(_Tp *__p, size_type __n) \ 573 { __name##Alloc().deallocate(__p, __n); } 574 __ROPE_DEFINE_ALLOCS(_Alloc) 575# undef __ROPE_DEFINE_ALLOC 576 }; 577 578 template<class _CharT, class _Alloc> 579 struct _Rope_RopeRep 580 : public _Rope_rep_base<_CharT, _Alloc> 581# ifndef __GC 582 , _Refcount_Base 583# endif 584 { 585 public: 586 __detail::_Tag _M_tag:8; 587 bool _M_is_balanced:8; 588 unsigned char _M_depth; 589 __GC_CONST _CharT* _M_c_string; 590#ifdef __GTHREAD_MUTEX_INIT 591 __gthread_mutex_t _M_c_string_lock = __GTHREAD_MUTEX_INIT; 592#else 593 __gthread_mutex_t _M_c_string_lock; 594#endif 595 /* Flattened version of string, if needed. */ 596 /* typically 0. */ 597 /* If it's not 0, then the memory is owned */ 598 /* by this node. */ 599 /* In the case of a leaf, this may point to */ 600 /* the same memory as the data field. */ 601 typedef typename _Rope_rep_base<_CharT, _Alloc>::allocator_type 602 allocator_type; 603 typedef std::size_t size_type; 604 605 using _Rope_rep_base<_CharT, _Alloc>::get_allocator; 606 using _Rope_rep_base<_CharT, _Alloc>::_M_get_allocator; 607 608 _Rope_RopeRep(__detail::_Tag __t, int __d, bool __b, size_type __size, 609 const allocator_type& __a) 610 : _Rope_rep_base<_CharT, _Alloc>(__size, __a), 611#ifndef __GC 612 _Refcount_Base(1), 613#endif 614 _M_tag(__t), _M_is_balanced(__b), _M_depth(__d), _M_c_string(0) 615#ifdef __GTHREAD_MUTEX_INIT 616 { } 617#else 618 { __GTHREAD_MUTEX_INIT_FUNCTION (&_M_c_string_lock); } 619 ~_Rope_RopeRep() 620 { __gthread_mutex_destroy (&_M_c_string_lock); } 621#endif 622#ifdef __GC 623 void 624 _M_incr () { } 625#endif 626 static void 627 _S_free_string(__GC_CONST _CharT*, size_type __len, 628 allocator_type& __a); 629#define __STL_FREE_STRING(__s, __l, __a) _S_free_string(__s, __l, __a); 630 // Deallocate data section of a leaf. 631 // This shouldn't be a member function. 632 // But its hard to do anything else at the 633 // moment, because it's templatized w.r.t. 634 // an allocator. 635 // Does nothing if __GC is defined. 636#ifndef __GC 637 void _M_free_c_string(); 638 void _M_free_tree(); 639 // Deallocate t. Assumes t is not 0. 640 void 641 _M_unref_nonnil() 642 { 643 if (0 == _M_decr()) 644 _M_free_tree(); 645 } 646 647 void 648 _M_ref_nonnil() 649 { _M_incr(); } 650 651 static void 652 _S_unref(_Rope_RopeRep* __t) 653 { 654 if (0 != __t) 655 __t->_M_unref_nonnil(); 656 } 657 658 static void 659 _S_ref(_Rope_RopeRep* __t) 660 { 661 if (0 != __t) 662 __t->_M_incr(); 663 } 664 665 static void 666 _S_free_if_unref(_Rope_RopeRep* __t) 667 { 668 if (0 != __t && 0 == __t->_M_ref_count) 669 __t->_M_free_tree(); 670 } 671# else /* __GC */ 672 void _M_unref_nonnil() { } 673 void _M_ref_nonnil() { } 674 static void _S_unref(_Rope_RopeRep*) { } 675 static void _S_ref(_Rope_RopeRep*) { } 676 static void _S_free_if_unref(_Rope_RopeRep*) { } 677# endif 678protected: 679 _Rope_RopeRep& 680 operator=(const _Rope_RopeRep&); 681 682 _Rope_RopeRep(const _Rope_RopeRep&); 683 }; 684 685 template<class _CharT, class _Alloc> 686 struct _Rope_RopeLeaf 687 : public _Rope_RopeRep<_CharT, _Alloc> 688 { 689 typedef std::size_t size_type; 690 public: 691 // Apparently needed by VC++ 692 // The data fields of leaves are allocated with some 693 // extra space, to accommodate future growth and for basic 694 // character types, to hold a trailing eos character. 695 enum { _S_alloc_granularity = 8 }; 696 697 static size_type 698 _S_rounded_up_size(size_type __n) 699 { 700 size_type __size_with_eos; 701 702 if (_S_is_basic_char_type((_CharT*)0)) 703 __size_with_eos = __n + 1; 704 else 705 __size_with_eos = __n; 706#ifdef __GC 707 return __size_with_eos; 708#else 709 // Allow slop for in-place expansion. 710 return ((__size_with_eos + size_type(_S_alloc_granularity) - 1) 711 &~ (size_type(_S_alloc_granularity) - 1)); 712#endif 713 } 714 __GC_CONST _CharT* _M_data; /* Not necessarily 0 terminated. */ 715 /* The allocated size is */ 716 /* _S_rounded_up_size(size), except */ 717 /* in the GC case, in which it */ 718 /* doesn't matter. */ 719 typedef typename _Rope_rep_base<_CharT,_Alloc>::allocator_type 720 allocator_type; 721 722 _Rope_RopeLeaf(__GC_CONST _CharT* __d, size_type __size, 723 const allocator_type& __a) 724 : _Rope_RopeRep<_CharT, _Alloc>(__detail::_S_leaf, 0, true, 725 __size, __a), _M_data(__d) 726 { 727 if (_S_is_basic_char_type((_CharT *)0)) 728 { 729 // already eos terminated. 730 this->_M_c_string = __d; 731 } 732 } 733 // The constructor assumes that d has been allocated with 734 // the proper allocator and the properly padded size. 735 // In contrast, the destructor deallocates the data: 736#ifndef __GC 737 ~_Rope_RopeLeaf() throw() 738 { 739 if (_M_data != this->_M_c_string) 740 this->_M_free_c_string(); 741 742 this->__STL_FREE_STRING(_M_data, this->_M_size, this->_M_get_allocator()); 743 } 744#endif 745protected: 746 _Rope_RopeLeaf& 747 operator=(const _Rope_RopeLeaf&); 748 749 _Rope_RopeLeaf(const _Rope_RopeLeaf&); 750 }; 751 752 template<class _CharT, class _Alloc> 753 struct _Rope_RopeConcatenation 754 : public _Rope_RopeRep<_CharT, _Alloc> 755 { 756 public: 757 _Rope_RopeRep<_CharT, _Alloc>* _M_left; 758 _Rope_RopeRep<_CharT, _Alloc>* _M_right; 759 760 typedef typename _Rope_rep_base<_CharT, _Alloc>::allocator_type 761 allocator_type; 762 763 _Rope_RopeConcatenation(_Rope_RopeRep<_CharT, _Alloc>* __l, 764 _Rope_RopeRep<_CharT, _Alloc>* __r, 765 const allocator_type& __a) 766 : _Rope_RopeRep<_CharT, _Alloc>(__detail::_S_concat, 767 std::max(__l->_M_depth, 768 __r->_M_depth) + 1, 769 false, 770 __l->_M_size + __r->_M_size, __a), 771 _M_left(__l), _M_right(__r) 772 { } 773#ifndef __GC 774 ~_Rope_RopeConcatenation() throw() 775 { 776 this->_M_free_c_string(); 777 _M_left->_M_unref_nonnil(); 778 _M_right->_M_unref_nonnil(); 779 } 780#endif 781protected: 782 _Rope_RopeConcatenation& 783 operator=(const _Rope_RopeConcatenation&); 784 785 _Rope_RopeConcatenation(const _Rope_RopeConcatenation&); 786 }; 787 788 template<class _CharT, class _Alloc> 789 struct _Rope_RopeFunction 790 : public _Rope_RopeRep<_CharT, _Alloc> 791 { 792 public: 793 char_producer<_CharT>* _M_fn; 794#ifndef __GC 795 bool _M_delete_when_done; // Char_producer is owned by the 796 // rope and should be explicitly 797 // deleted when the rope becomes 798 // inaccessible. 799#else 800 // In the GC case, we either register the rope for 801 // finalization, or not. Thus the field is unnecessary; 802 // the information is stored in the collector data structures. 803 // We do need a finalization procedure to be invoked by the 804 // collector. 805 static void 806 _S_fn_finalization_proc(void * __tree, void *) 807 { delete ((_Rope_RopeFunction *)__tree) -> _M_fn; } 808#endif 809 typedef typename _Rope_rep_base<_CharT, _Alloc>::allocator_type 810 allocator_type; 811 812 _Rope_RopeFunction(char_producer<_CharT>* __f, std::size_t __size, 813 bool __d, const allocator_type& __a) 814 : _Rope_RopeRep<_CharT, _Alloc>(__detail::_S_function, 0, true, __size, __a) 815 , _M_fn(__f) 816#ifndef __GC 817 , _M_delete_when_done(__d) 818#endif 819 { 820#ifdef __GC 821 if (__d) 822 { 823 GC_REGISTER_FINALIZER(this, _Rope_RopeFunction:: 824 _S_fn_finalization_proc, 0, 0, 0); 825 } 826#endif 827 } 828#ifndef __GC 829 ~_Rope_RopeFunction() throw() 830 { 831 this->_M_free_c_string(); 832 if (_M_delete_when_done) 833 delete _M_fn; 834 } 835# endif 836 protected: 837 _Rope_RopeFunction& 838 operator=(const _Rope_RopeFunction&); 839 840 _Rope_RopeFunction(const _Rope_RopeFunction&); 841 }; 842 // Substring results are usually represented using just 843 // concatenation nodes. But in the case of very long flat ropes 844 // or ropes with a functional representation that isn't practical. 845 // In that case, we represent the __result as a special case of 846 // RopeFunction, whose char_producer points back to the rope itself. 847 // In all cases except repeated substring operations and 848 // deallocation, we treat the __result as a RopeFunction. 849 template<class _CharT, class _Alloc> 850 struct _Rope_RopeSubstring 851 : public _Rope_RopeFunction<_CharT, _Alloc>, 852 public char_producer<_CharT> 853 { 854 typedef std::size_t size_type; 855 public: 856 // XXX this whole class should be rewritten. 857 _Rope_RopeRep<_CharT,_Alloc>* _M_base; // not 0 858 size_type _M_start; 859 860 virtual void 861 operator()(size_type __start_pos, size_type __req_len, 862 _CharT* __buffer) 863 { 864 switch(_M_base->_M_tag) 865 { 866 case __detail::_S_function: 867 case __detail::_S_substringfn: 868 { 869 char_producer<_CharT>* __fn = 870 ((_Rope_RopeFunction<_CharT,_Alloc>*)_M_base)->_M_fn; 871 (*__fn)(__start_pos + _M_start, __req_len, __buffer); 872 } 873 break; 874 case __detail::_S_leaf: 875 { 876 __GC_CONST _CharT* __s = 877 ((_Rope_RopeLeaf<_CharT,_Alloc>*)_M_base)->_M_data; 878 uninitialized_copy_n(__s + __start_pos + _M_start, __req_len, 879 __buffer); 880 } 881 break; 882 default: 883 break; 884 } 885 } 886 887 typedef typename _Rope_rep_base<_CharT, _Alloc>::allocator_type 888 allocator_type; 889 890 _Rope_RopeSubstring(_Rope_RopeRep<_CharT, _Alloc>* __b, size_type __s, 891 size_type __l, const allocator_type& __a) 892 : _Rope_RopeFunction<_CharT, _Alloc>(this, __l, false, __a), 893 char_producer<_CharT>(), _M_base(__b), _M_start(__s) 894 { 895#ifndef __GC 896 _M_base->_M_ref_nonnil(); 897#endif 898 this->_M_tag = __detail::_S_substringfn; 899 } 900 virtual ~_Rope_RopeSubstring() throw() 901 { 902#ifndef __GC 903 _M_base->_M_unref_nonnil(); 904 // _M_free_c_string(); -- done by parent class 905#endif 906 } 907 }; 908 909 // Self-destructing pointers to Rope_rep. 910 // These are not conventional smart pointers. Their 911 // only purpose in life is to ensure that unref is called 912 // on the pointer either at normal exit or if an exception 913 // is raised. It is the caller's responsibility to 914 // adjust reference counts when these pointers are initialized 915 // or assigned to. (This convention significantly reduces 916 // the number of potentially expensive reference count 917 // updates.) 918#ifndef __GC 919 template<class _CharT, class _Alloc> 920 struct _Rope_self_destruct_ptr 921 { 922 _Rope_RopeRep<_CharT, _Alloc>* _M_ptr; 923 924 ~_Rope_self_destruct_ptr() 925 { _Rope_RopeRep<_CharT, _Alloc>::_S_unref(_M_ptr); } 926#if __cpp_exceptions 927 _Rope_self_destruct_ptr() : _M_ptr(0) { } 928#else 929 _Rope_self_destruct_ptr() { } 930#endif 931 _Rope_self_destruct_ptr(_Rope_RopeRep<_CharT, _Alloc>* __p) 932 : _M_ptr(__p) { } 933 934 _Rope_RopeRep<_CharT, _Alloc>& 935 operator*() 936 { return *_M_ptr; } 937 938 _Rope_RopeRep<_CharT, _Alloc>* 939 operator->() 940 { return _M_ptr; } 941 942 operator _Rope_RopeRep<_CharT, _Alloc>*() 943 { return _M_ptr; } 944 945 _Rope_self_destruct_ptr& 946 operator=(_Rope_RopeRep<_CharT, _Alloc>* __x) 947 { _M_ptr = __x; return *this; } 948 }; 949#endif 950 951 // Dereferencing a nonconst iterator has to return something 952 // that behaves almost like a reference. It's not possible to 953 // return an actual reference since assignment requires extra 954 // work. And we would get into the same problems as with the 955 // CD2 version of basic_string. 956 template<class _CharT, class _Alloc> 957 class _Rope_char_ref_proxy 958 { 959 friend class rope<_CharT, _Alloc>; 960 friend class _Rope_iterator<_CharT, _Alloc>; 961 friend class _Rope_char_ptr_proxy<_CharT, _Alloc>; 962#ifdef __GC 963 typedef _Rope_RopeRep<_CharT, _Alloc>* _Self_destruct_ptr; 964#else 965 typedef _Rope_self_destruct_ptr<_CharT, _Alloc> _Self_destruct_ptr; 966#endif 967 typedef _Rope_RopeRep<_CharT, _Alloc> _RopeRep; 968 typedef rope<_CharT, _Alloc> _My_rope; 969 std::size_t _M_pos; 970 _CharT _M_current; 971 bool _M_current_valid; 972 _My_rope* _M_root; // The whole rope. 973 public: 974 _Rope_char_ref_proxy(_My_rope* __r, std::size_t __p) 975 : _M_pos(__p), _M_current(), _M_current_valid(false), _M_root(__r) { } 976 977 _Rope_char_ref_proxy(const _Rope_char_ref_proxy& __x) 978 : _M_pos(__x._M_pos), _M_current(__x._M_current), 979 _M_current_valid(false), _M_root(__x._M_root) { } 980 981 // Don't preserve cache if the reference can outlive the 982 // expression. We claim that's not possible without calling 983 // a copy constructor or generating reference to a proxy 984 // reference. We declare the latter to have undefined semantics. 985 _Rope_char_ref_proxy(_My_rope* __r, std::size_t __p, _CharT __c) 986 : _M_pos(__p), _M_current(__c), _M_current_valid(true), _M_root(__r) { } 987 988 inline operator _CharT () const; 989 990 _Rope_char_ref_proxy& 991 operator=(_CharT __c); 992 993 _Rope_char_ptr_proxy<_CharT, _Alloc> operator&() const; 994 995 _Rope_char_ref_proxy& 996 operator=(const _Rope_char_ref_proxy& __c) 997 { return operator=((_CharT)__c); } 998 }; 999 1000 template<class _CharT, class __Alloc> 1001 inline void 1002 swap(_Rope_char_ref_proxy <_CharT, __Alloc > __a, 1003 _Rope_char_ref_proxy <_CharT, __Alloc > __b) 1004 { 1005 _CharT __tmp = __a; 1006 __a = __b; 1007 __b = __tmp; 1008 } 1009 1010 template<class _CharT, class _Alloc> 1011 class _Rope_char_ptr_proxy 1012 { 1013 // XXX this class should be rewritten. 1014 friend class _Rope_char_ref_proxy<_CharT, _Alloc>; 1015 std::size_t _M_pos; 1016 rope<_CharT,_Alloc>* _M_root; // The whole rope. 1017 public: 1018 _Rope_char_ptr_proxy(const _Rope_char_ref_proxy<_CharT,_Alloc>& __x) 1019 : _M_pos(__x._M_pos), _M_root(__x._M_root) { } 1020 1021 _Rope_char_ptr_proxy(const _Rope_char_ptr_proxy& __x) 1022 : _M_pos(__x._M_pos), _M_root(__x._M_root) { } 1023 1024 _Rope_char_ptr_proxy() { } 1025 1026 _Rope_char_ptr_proxy(_CharT* __x) 1027 : _M_root(0), _M_pos(0) { } 1028 1029 _Rope_char_ptr_proxy& 1030 operator=(const _Rope_char_ptr_proxy& __x) 1031 { 1032 _M_pos = __x._M_pos; 1033 _M_root = __x._M_root; 1034 return *this; 1035 } 1036 1037 template<class _CharT2, class _Alloc2> 1038 friend bool 1039 operator==(const _Rope_char_ptr_proxy<_CharT2, _Alloc2>& __x, 1040 const _Rope_char_ptr_proxy<_CharT2, _Alloc2>& __y); 1041 1042 _Rope_char_ref_proxy<_CharT, _Alloc> operator*() const 1043 { return _Rope_char_ref_proxy<_CharT, _Alloc>(_M_root, _M_pos); } 1044 }; 1045 1046 // Rope iterators: 1047 // Unlike in the C version, we cache only part of the stack 1048 // for rope iterators, since they must be efficiently copyable. 1049 // When we run out of cache, we have to reconstruct the iterator 1050 // value. 1051 // Pointers from iterators are not included in reference counts. 1052 // Iterators are assumed to be thread private. Ropes can 1053 // be shared. 1054 1055 template<class _CharT, class _Alloc> 1056 class _Rope_iterator_base 1057 : public std::iterator<std::random_access_iterator_tag, _CharT> 1058 { 1059 friend class rope<_CharT, _Alloc>; 1060 public: 1061 typedef _Alloc _allocator_type; // used in _Rope_rotate, VC++ workaround 1062 typedef _Rope_RopeRep<_CharT, _Alloc> _RopeRep; 1063 // Borland doesn't want this to be protected. 1064 protected: 1065 enum { _S_path_cache_len = 4 }; // Must be <= 9. 1066 enum { _S_iterator_buf_len = 15 }; 1067 std::size_t _M_current_pos; 1068 _RopeRep* _M_root; // The whole rope. 1069 std::size_t _M_leaf_pos; // Starting position for current leaf 1070 __GC_CONST _CharT* _M_buf_start; 1071 // Buffer possibly 1072 // containing current char. 1073 __GC_CONST _CharT* _M_buf_ptr; 1074 // Pointer to current char in buffer. 1075 // != 0 ==> buffer valid. 1076 __GC_CONST _CharT* _M_buf_end; 1077 // One past __last valid char in buffer. 1078 // What follows is the path cache. We go out of our 1079 // way to make this compact. 1080 // Path_end contains the bottom section of the path from 1081 // the root to the current leaf. 1082 const _RopeRep* _M_path_end[_S_path_cache_len]; 1083 int _M_leaf_index; // Last valid __pos in path_end; 1084 // _M_path_end[0] ... _M_path_end[leaf_index-1] 1085 // point to concatenation nodes. 1086 unsigned char _M_path_directions; 1087 // (path_directions >> __i) & 1 is 1 1088 // iff we got from _M_path_end[leaf_index - __i - 1] 1089 // to _M_path_end[leaf_index - __i] by going to the 1090 // __right. Assumes path_cache_len <= 9. 1091 _CharT _M_tmp_buf[_S_iterator_buf_len]; 1092 // Short buffer for surrounding chars. 1093 // This is useful primarily for 1094 // RopeFunctions. We put the buffer 1095 // here to avoid locking in the 1096 // multithreaded case. 1097 // The cached path is generally assumed to be valid 1098 // only if the buffer is valid. 1099 static void _S_setbuf(_Rope_iterator_base& __x); 1100 // Set buffer contents given 1101 // path cache. 1102 static void _S_setcache(_Rope_iterator_base& __x); 1103 // Set buffer contents and 1104 // path cache. 1105 static void _S_setcache_for_incr(_Rope_iterator_base& __x); 1106 // As above, but assumes path 1107 // cache is valid for previous posn. 1108 _Rope_iterator_base() { } 1109 1110 _Rope_iterator_base(_RopeRep* __root, std::size_t __pos) 1111 : _M_current_pos(__pos), _M_root(__root), _M_buf_ptr(0) { } 1112 1113 void _M_incr(std::size_t __n); 1114 void _M_decr(std::size_t __n); 1115 public: 1116 std::size_t 1117 index() const 1118 { return _M_current_pos; } 1119 1120 _Rope_iterator_base(const _Rope_iterator_base& __x) 1121 { 1122 if (0 != __x._M_buf_ptr && __x._M_buf_start != __x._M_tmp_buf) 1123 *this = __x; 1124 else 1125 { 1126 _M_current_pos = __x._M_current_pos; 1127 _M_root = __x._M_root; 1128 _M_buf_ptr = 0; 1129 } 1130 } 1131 }; 1132 1133 template<class _CharT, class _Alloc> 1134 class _Rope_iterator; 1135 1136 template<class _CharT, class _Alloc> 1137 class _Rope_const_iterator 1138 : public _Rope_iterator_base<_CharT, _Alloc> 1139 { 1140 friend class rope<_CharT, _Alloc>; 1141 protected: 1142 typedef _Rope_RopeRep<_CharT, _Alloc> _RopeRep; 1143 // The one from the base class may not be directly visible. 1144 _Rope_const_iterator(const _RopeRep* __root, std::size_t __pos) 1145 : _Rope_iterator_base<_CharT, _Alloc>(const_cast<_RopeRep*>(__root), 1146 __pos) 1147 // Only nonconst iterators modify root ref count 1148 { } 1149 public: 1150 typedef _CharT reference; // Really a value. Returning a reference 1151 // Would be a mess, since it would have 1152 // to be included in refcount. 1153 typedef const _CharT* pointer; 1154 1155 public: 1156 _Rope_const_iterator() { } 1157 1158 _Rope_const_iterator(const _Rope_const_iterator& __x) 1159 : _Rope_iterator_base<_CharT,_Alloc>(__x) { } 1160 1161 _Rope_const_iterator(const _Rope_iterator<_CharT,_Alloc>& __x); 1162 1163 _Rope_const_iterator(const rope<_CharT, _Alloc>& __r, std::size_t __pos) 1164 : _Rope_iterator_base<_CharT,_Alloc>(__r._M_tree_ptr, __pos) { } 1165 1166 _Rope_const_iterator& 1167 operator=(const _Rope_const_iterator& __x) 1168 { 1169 if (0 != __x._M_buf_ptr && __x._M_buf_start != __x._M_tmp_buf) 1170 *(static_cast<_Rope_iterator_base<_CharT, _Alloc>*>(this)) = __x; 1171 else 1172 { 1173 this->_M_current_pos = __x._M_current_pos; 1174 this->_M_root = __x._M_root; 1175 this->_M_buf_ptr = 0; 1176 } 1177 return(*this); 1178 } 1179 1180 reference 1181 operator*() 1182 { 1183 if (0 == this->_M_buf_ptr) 1184 this->_S_setcache(*this); 1185 return *this->_M_buf_ptr; 1186 } 1187 1188 // Without this const version, Rope iterators do not meet the 1189 // requirements of an Input Iterator. 1190 reference 1191 operator*() const 1192 { 1193 return *const_cast<_Rope_const_iterator&>(*this); 1194 } 1195 1196 _Rope_const_iterator& 1197 operator++() 1198 { 1199 __GC_CONST _CharT* __next; 1200 if (0 != this->_M_buf_ptr 1201 && (__next = this->_M_buf_ptr + 1) < this->_M_buf_end) 1202 { 1203 this->_M_buf_ptr = __next; 1204 ++this->_M_current_pos; 1205 } 1206 else 1207 this->_M_incr(1); 1208 return *this; 1209 } 1210 1211 _Rope_const_iterator& 1212 operator+=(std::ptrdiff_t __n) 1213 { 1214 if (__n >= 0) 1215 this->_M_incr(__n); 1216 else 1217 this->_M_decr(-__n); 1218 return *this; 1219 } 1220 1221 _Rope_const_iterator& 1222 operator--() 1223 { 1224 this->_M_decr(1); 1225 return *this; 1226 } 1227 1228 _Rope_const_iterator& 1229 operator-=(std::ptrdiff_t __n) 1230 { 1231 if (__n >= 0) 1232 this->_M_decr(__n); 1233 else 1234 this->_M_incr(-__n); 1235 return *this; 1236 } 1237 1238 _Rope_const_iterator 1239 operator++(int) 1240 { 1241 std::size_t __old_pos = this->_M_current_pos; 1242 this->_M_incr(1); 1243 return _Rope_const_iterator<_CharT,_Alloc>(this->_M_root, __old_pos); 1244 // This makes a subsequent dereference expensive. 1245 // Perhaps we should instead copy the iterator 1246 // if it has a valid cache? 1247 } 1248 1249 _Rope_const_iterator 1250 operator--(int) 1251 { 1252 std::size_t __old_pos = this->_M_current_pos; 1253 this->_M_decr(1); 1254 return _Rope_const_iterator<_CharT,_Alloc>(this->_M_root, __old_pos); 1255 } 1256 1257 template<class _CharT2, class _Alloc2> 1258 friend _Rope_const_iterator<_CharT2, _Alloc2> 1259 operator-(const _Rope_const_iterator<_CharT2, _Alloc2>& __x, 1260 std::ptrdiff_t __n); 1261 1262 template<class _CharT2, class _Alloc2> 1263 friend _Rope_const_iterator<_CharT2, _Alloc2> 1264 operator+(const _Rope_const_iterator<_CharT2, _Alloc2>& __x, 1265 std::ptrdiff_t __n); 1266 1267 template<class _CharT2, class _Alloc2> 1268 friend _Rope_const_iterator<_CharT2, _Alloc2> 1269 operator+(std::ptrdiff_t __n, 1270 const _Rope_const_iterator<_CharT2, _Alloc2>& __x); 1271 1272 reference 1273 operator[](std::size_t __n) 1274 { return rope<_CharT, _Alloc>::_S_fetch(this->_M_root, 1275 this->_M_current_pos + __n); } 1276 1277 template<class _CharT2, class _Alloc2> 1278 friend bool 1279 operator==(const _Rope_const_iterator<_CharT2, _Alloc2>& __x, 1280 const _Rope_const_iterator<_CharT2, _Alloc2>& __y); 1281 1282 template<class _CharT2, class _Alloc2> 1283 friend bool 1284 operator<(const _Rope_const_iterator<_CharT2, _Alloc2>& __x, 1285 const _Rope_const_iterator<_CharT2, _Alloc2>& __y); 1286 1287 template<class _CharT2, class _Alloc2> 1288 friend std::ptrdiff_t 1289 operator-(const _Rope_const_iterator<_CharT2, _Alloc2>& __x, 1290 const _Rope_const_iterator<_CharT2, _Alloc2>& __y); 1291 }; 1292 1293 template<class _CharT, class _Alloc> 1294 class _Rope_iterator 1295 : public _Rope_iterator_base<_CharT, _Alloc> 1296 { 1297 friend class rope<_CharT, _Alloc>; 1298 protected: 1299 typedef typename _Rope_iterator_base<_CharT, _Alloc>::_RopeRep _RopeRep; 1300 rope<_CharT, _Alloc>* _M_root_rope; 1301 1302 // root is treated as a cached version of this, and is used to 1303 // detect changes to the underlying rope. 1304 1305 // Root is included in the reference count. This is necessary 1306 // so that we can detect changes reliably. Unfortunately, it 1307 // requires careful bookkeeping for the nonGC case. 1308 _Rope_iterator(rope<_CharT, _Alloc>* __r, std::size_t __pos) 1309 : _Rope_iterator_base<_CharT, _Alloc>(__r->_M_tree_ptr, __pos), 1310 _M_root_rope(__r) 1311 { _RopeRep::_S_ref(this->_M_root); 1312 if (!(__r -> empty())) 1313 this->_S_setcache(*this); 1314 } 1315 1316 void _M_check(); 1317 public: 1318 typedef _Rope_char_ref_proxy<_CharT, _Alloc> reference; 1319 typedef _Rope_char_ref_proxy<_CharT, _Alloc>* pointer; 1320 1321 rope<_CharT, _Alloc>& 1322 container() 1323 { return *_M_root_rope; } 1324 1325 _Rope_iterator() 1326 { 1327 this->_M_root = 0; // Needed for reference counting. 1328 } 1329 1330 _Rope_iterator(const _Rope_iterator& __x) 1331 : _Rope_iterator_base<_CharT, _Alloc>(__x) 1332 { 1333 _M_root_rope = __x._M_root_rope; 1334 _RopeRep::_S_ref(this->_M_root); 1335 } 1336 1337 _Rope_iterator(rope<_CharT, _Alloc>& __r, std::size_t __pos); 1338 1339 ~_Rope_iterator() 1340 { _RopeRep::_S_unref(this->_M_root); } 1341 1342 _Rope_iterator& 1343 operator=(const _Rope_iterator& __x) 1344 { 1345 _RopeRep* __old = this->_M_root; 1346 1347 _RopeRep::_S_ref(__x._M_root); 1348 if (0 != __x._M_buf_ptr && __x._M_buf_start != __x._M_tmp_buf) 1349 { 1350 _M_root_rope = __x._M_root_rope; 1351 *(static_cast<_Rope_iterator_base<_CharT, _Alloc>*>(this)) = __x; 1352 } 1353 else 1354 { 1355 this->_M_current_pos = __x._M_current_pos; 1356 this->_M_root = __x._M_root; 1357 _M_root_rope = __x._M_root_rope; 1358 this->_M_buf_ptr = 0; 1359 } 1360 _RopeRep::_S_unref(__old); 1361 return(*this); 1362 } 1363 1364 reference 1365 operator*() 1366 { 1367 _M_check(); 1368 if (0 == this->_M_buf_ptr) 1369 return _Rope_char_ref_proxy<_CharT, _Alloc>(_M_root_rope, 1370 this->_M_current_pos); 1371 else 1372 return _Rope_char_ref_proxy<_CharT, _Alloc>(_M_root_rope, 1373 this->_M_current_pos, 1374 *this->_M_buf_ptr); 1375 } 1376 1377 // See above comment. 1378 reference 1379 operator*() const 1380 { 1381 return *const_cast<_Rope_iterator&>(*this); 1382 } 1383 1384 _Rope_iterator& 1385 operator++() 1386 { 1387 this->_M_incr(1); 1388 return *this; 1389 } 1390 1391 _Rope_iterator& 1392 operator+=(std::ptrdiff_t __n) 1393 { 1394 if (__n >= 0) 1395 this->_M_incr(__n); 1396 else 1397 this->_M_decr(-__n); 1398 return *this; 1399 } 1400 1401 _Rope_iterator& 1402 operator--() 1403 { 1404 this->_M_decr(1); 1405 return *this; 1406 } 1407 1408 _Rope_iterator& 1409 operator-=(std::ptrdiff_t __n) 1410 { 1411 if (__n >= 0) 1412 this->_M_decr(__n); 1413 else 1414 this->_M_incr(-__n); 1415 return *this; 1416 } 1417 1418 _Rope_iterator 1419 operator++(int) 1420 { 1421 std::size_t __old_pos = this->_M_current_pos; 1422 this->_M_incr(1); 1423 return _Rope_iterator<_CharT,_Alloc>(_M_root_rope, __old_pos); 1424 } 1425 1426 _Rope_iterator 1427 operator--(int) 1428 { 1429 std::size_t __old_pos = this->_M_current_pos; 1430 this->_M_decr(1); 1431 return _Rope_iterator<_CharT,_Alloc>(_M_root_rope, __old_pos); 1432 } 1433 1434 reference 1435 operator[](std::ptrdiff_t __n) 1436 { return _Rope_char_ref_proxy<_CharT, _Alloc>(_M_root_rope, 1437 this->_M_current_pos 1438 + __n); } 1439 1440 template<class _CharT2, class _Alloc2> 1441 friend bool 1442 operator==(const _Rope_iterator<_CharT2, _Alloc2>& __x, 1443 const _Rope_iterator<_CharT2, _Alloc2>& __y); 1444 1445 template<class _CharT2, class _Alloc2> 1446 friend bool 1447 operator<(const _Rope_iterator<_CharT2, _Alloc2>& __x, 1448 const _Rope_iterator<_CharT2, _Alloc2>& __y); 1449 1450 template<class _CharT2, class _Alloc2> 1451 friend std::ptrdiff_t 1452 operator-(const _Rope_iterator<_CharT2, _Alloc2>& __x, 1453 const _Rope_iterator<_CharT2, _Alloc2>& __y); 1454 1455 template<class _CharT2, class _Alloc2> 1456 friend _Rope_iterator<_CharT2, _Alloc2> 1457 operator-(const _Rope_iterator<_CharT2, _Alloc2>& __x, 1458 std::ptrdiff_t __n); 1459 1460 template<class _CharT2, class _Alloc2> 1461 friend _Rope_iterator<_CharT2, _Alloc2> 1462 operator+(const _Rope_iterator<_CharT2, _Alloc2>& __x, 1463 std::ptrdiff_t __n); 1464 1465 template<class _CharT2, class _Alloc2> 1466 friend _Rope_iterator<_CharT2, _Alloc2> 1467 operator+(std::ptrdiff_t __n, 1468 const _Rope_iterator<_CharT2, _Alloc2>& __x); 1469 }; 1470 1471 1472 template <class _CharT, class _Alloc> 1473 struct _Rope_base 1474 : public _Alloc 1475 { 1476 typedef _Alloc allocator_type; 1477 1478 allocator_type 1479 get_allocator() const 1480 { return *static_cast<const _Alloc*>(this); } 1481 1482 allocator_type& 1483 _M_get_allocator() 1484 { return *static_cast<_Alloc*>(this); } 1485 1486 const allocator_type& 1487 _M_get_allocator() const 1488 { return *static_cast<const _Alloc*>(this); } 1489 1490 typedef _Rope_RopeRep<_CharT, _Alloc> _RopeRep; 1491 // The one in _Base may not be visible due to template rules. 1492 1493 _Rope_base(_RopeRep* __t, const allocator_type&) 1494 : _M_tree_ptr(__t) { } 1495 1496 _Rope_base(const allocator_type&) { } 1497 1498 // The only data member of a rope: 1499 _RopeRep *_M_tree_ptr; 1500 1501#define __ROPE_DEFINE_ALLOC(_Tp, __name) \ 1502 typedef typename \ 1503 __alloc_traits<_Alloc>::template rebind<_Tp>::other __name##Alloc; \ 1504 static _Tp* __name##_allocate(std::size_t __n) \ 1505 { return __name##Alloc().allocate(__n); } \ 1506 static void __name##_deallocate(_Tp *__p, std::size_t __n) \ 1507 { __name##Alloc().deallocate(__p, __n); } 1508 __ROPE_DEFINE_ALLOCS(_Alloc) 1509#undef __ROPE_DEFINE_ALLOC 1510 1511 protected: 1512 _Rope_base& 1513 operator=(const _Rope_base&); 1514 1515 _Rope_base(const _Rope_base&); 1516 }; 1517 1518 /** 1519 * This is an SGI extension. 1520 * @ingroup SGIextensions 1521 * @doctodo 1522 */ 1523 template <class _CharT, class _Alloc> 1524 class rope : public _Rope_base<_CharT, _Alloc> 1525 { 1526 public: 1527 typedef _CharT value_type; 1528 typedef std::ptrdiff_t difference_type; 1529 typedef std::size_t size_type; 1530 typedef _CharT const_reference; 1531 typedef const _CharT* const_pointer; 1532 typedef _Rope_iterator<_CharT, _Alloc> iterator; 1533 typedef _Rope_const_iterator<_CharT, _Alloc> const_iterator; 1534 typedef _Rope_char_ref_proxy<_CharT, _Alloc> reference; 1535 typedef _Rope_char_ptr_proxy<_CharT, _Alloc> pointer; 1536 1537 friend class _Rope_iterator<_CharT, _Alloc>; 1538 friend class _Rope_const_iterator<_CharT, _Alloc>; 1539 friend struct _Rope_RopeRep<_CharT, _Alloc>; 1540 friend class _Rope_iterator_base<_CharT, _Alloc>; 1541 friend class _Rope_char_ptr_proxy<_CharT, _Alloc>; 1542 friend class _Rope_char_ref_proxy<_CharT, _Alloc>; 1543 friend struct _Rope_RopeSubstring<_CharT, _Alloc>; 1544 1545 protected: 1546 typedef _Rope_base<_CharT, _Alloc> _Base; 1547 typedef typename _Base::allocator_type allocator_type; 1548 using _Base::_M_tree_ptr; 1549 using _Base::get_allocator; 1550 using _Base::_M_get_allocator; 1551 typedef __GC_CONST _CharT* _Cstrptr; 1552 1553 static _CharT _S_empty_c_str[1]; 1554 1555 static bool 1556 _S_is0(_CharT __c) 1557 { return __c == _S_eos((_CharT*)0); } 1558 1559 enum { _S_copy_max = 23 }; 1560 // For strings shorter than _S_copy_max, we copy to 1561 // concatenate. 1562 1563 typedef _Rope_RopeRep<_CharT, _Alloc> _RopeRep; 1564 typedef _Rope_RopeConcatenation<_CharT, _Alloc> _RopeConcatenation; 1565 typedef _Rope_RopeLeaf<_CharT, _Alloc> _RopeLeaf; 1566 typedef _Rope_RopeFunction<_CharT, _Alloc> _RopeFunction; 1567 typedef _Rope_RopeSubstring<_CharT, _Alloc> _RopeSubstring; 1568 1569 // Retrieve a character at the indicated position. 1570 static _CharT _S_fetch(_RopeRep* __r, size_type __pos); 1571 1572#ifndef __GC 1573 // Obtain a pointer to the character at the indicated position. 1574 // The pointer can be used to change the character. 1575 // If such a pointer cannot be produced, as is frequently the 1576 // case, 0 is returned instead. 1577 // (Returns nonzero only if all nodes in the path have a refcount 1578 // of 1.) 1579 static _CharT* _S_fetch_ptr(_RopeRep* __r, size_type __pos); 1580#endif 1581 1582 static bool 1583 _S_apply_to_pieces(// should be template parameter 1584 _Rope_char_consumer<_CharT>& __c, 1585 const _RopeRep* __r, 1586 size_type __begin, size_type __end); 1587 // begin and end are assumed to be in range. 1588 1589#ifndef __GC 1590 static void 1591 _S_unref(_RopeRep* __t) 1592 { _RopeRep::_S_unref(__t); } 1593 1594 static void 1595 _S_ref(_RopeRep* __t) 1596 { _RopeRep::_S_ref(__t); } 1597 1598#else /* __GC */ 1599 static void _S_unref(_RopeRep*) { } 1600 static void _S_ref(_RopeRep*) { } 1601#endif 1602 1603#ifdef __GC 1604 typedef _Rope_RopeRep<_CharT, _Alloc>* _Self_destruct_ptr; 1605#else 1606 typedef _Rope_self_destruct_ptr<_CharT, _Alloc> _Self_destruct_ptr; 1607#endif 1608 1609 // _Result is counted in refcount. 1610 static _RopeRep* _S_substring(_RopeRep* __base, 1611 size_type __start, size_type __endp1); 1612 1613 static _RopeRep* _S_concat_char_iter(_RopeRep* __r, 1614 const _CharT* __iter, 1615 size_type __slen); 1616 // Concatenate rope and char ptr, copying __s. 1617 // Should really take an arbitrary iterator. 1618 // Result is counted in refcount. 1619 static _RopeRep* _S_destr_concat_char_iter(_RopeRep* __r, 1620 const _CharT* __iter, 1621 size_type __slen) 1622 // As above, but one reference to __r is about to be 1623 // destroyed. Thus the pieces may be recycled if all 1624 // relevant reference counts are 1. 1625#ifdef __GC 1626 // We can't really do anything since refcounts are unavailable. 1627 { return _S_concat_char_iter(__r, __iter, __slen); } 1628#else 1629 ; 1630#endif 1631 1632 static _RopeRep* _S_concat(_RopeRep* __left, _RopeRep* __right); 1633 // General concatenation on _RopeRep. _Result 1634 // has refcount of 1. Adjusts argument refcounts. 1635 1636 public: 1637 void 1638 apply_to_pieces(size_type __begin, size_type __end, 1639 _Rope_char_consumer<_CharT>& __c) const 1640 { _S_apply_to_pieces(__c, this->_M_tree_ptr, __begin, __end); } 1641 1642 protected: 1643 1644 static size_type 1645 _S_rounded_up_size(size_type __n) 1646 { return _RopeLeaf::_S_rounded_up_size(__n); } 1647 1648 static size_type 1649 _S_allocated_capacity(size_type __n) 1650 { 1651 if (_S_is_basic_char_type((_CharT*)0)) 1652 return _S_rounded_up_size(__n) - 1; 1653 else 1654 return _S_rounded_up_size(__n); 1655 1656 } 1657 1658 // Allocate and construct a RopeLeaf using the supplied allocator 1659 // Takes ownership of s instead of copying. 1660 static _RopeLeaf* 1661 _S_new_RopeLeaf(__GC_CONST _CharT *__s, 1662 size_type __size, allocator_type& __a) 1663 { 1664 _RopeLeaf* __space = typename _Base::_LAlloc(__a).allocate(1); 1665 return new(__space) _RopeLeaf(__s, __size, __a); 1666 } 1667 1668 static _RopeConcatenation* 1669 _S_new_RopeConcatenation(_RopeRep* __left, _RopeRep* __right, 1670 allocator_type& __a) 1671 { 1672 _RopeConcatenation* __space = typename _Base::_CAlloc(__a).allocate(1); 1673 return new(__space) _RopeConcatenation(__left, __right, __a); 1674 } 1675 1676 static _RopeFunction* 1677 _S_new_RopeFunction(char_producer<_CharT>* __f, 1678 size_type __size, bool __d, allocator_type& __a) 1679 { 1680 _RopeFunction* __space = typename _Base::_FAlloc(__a).allocate(1); 1681 return new(__space) _RopeFunction(__f, __size, __d, __a); 1682 } 1683 1684 static _RopeSubstring* 1685 _S_new_RopeSubstring(_Rope_RopeRep<_CharT,_Alloc>* __b, size_type __s, 1686 size_type __l, allocator_type& __a) 1687 { 1688 _RopeSubstring* __space = typename _Base::_SAlloc(__a).allocate(1); 1689 return new(__space) _RopeSubstring(__b, __s, __l, __a); 1690 } 1691 1692 static _RopeLeaf* 1693 _S_RopeLeaf_from_unowned_char_ptr(const _CharT *__s, 1694 size_type __size, allocator_type& __a) 1695#define __STL_ROPE_FROM_UNOWNED_CHAR_PTR(__s, __size, __a) \ 1696 _S_RopeLeaf_from_unowned_char_ptr(__s, __size, __a) 1697 { 1698 if (0 == __size) 1699 return 0; 1700 _CharT* __buf = __a.allocate(_S_rounded_up_size(__size)); 1701 1702 __uninitialized_copy_n_a(__s, __size, __buf, __a); 1703 _S_cond_store_eos(__buf[__size]); 1704 __try 1705 { return _S_new_RopeLeaf(__buf, __size, __a); } 1706 __catch(...) 1707 { 1708 _RopeRep::__STL_FREE_STRING(__buf, __size, __a); 1709 __throw_exception_again; 1710 } 1711 } 1712 1713 // Concatenation of nonempty strings. 1714 // Always builds a concatenation node. 1715 // Rebalances if the result is too deep. 1716 // Result has refcount 1. 1717 // Does not increment left and right ref counts even though 1718 // they are referenced. 1719 static _RopeRep* 1720 _S_tree_concat(_RopeRep* __left, _RopeRep* __right); 1721 1722 // Concatenation helper functions 1723 static _RopeLeaf* 1724 _S_leaf_concat_char_iter(_RopeLeaf* __r, 1725 const _CharT* __iter, size_type __slen); 1726 // Concatenate by copying leaf. 1727 // should take an arbitrary iterator 1728 // result has refcount 1. 1729#ifndef __GC 1730 static _RopeLeaf* 1731 _S_destr_leaf_concat_char_iter(_RopeLeaf* __r, 1732 const _CharT* __iter, size_type __slen); 1733 // A version that potentially clobbers __r if __r->_M_ref_count == 1. 1734#endif 1735 1736 private: 1737 1738 static size_type _S_char_ptr_len(const _CharT* __s); 1739 // slightly generalized strlen 1740 1741 rope(_RopeRep* __t, const allocator_type& __a = allocator_type()) 1742 : _Base(__t, __a) { } 1743 1744 1745 // Copy __r to the _CharT buffer. 1746 // Returns __buffer + __r->_M_size. 1747 // Assumes that buffer is uninitialized. 1748 static _CharT* _S_flatten(_RopeRep* __r, _CharT* __buffer); 1749 1750 // Again, with explicit starting position and length. 1751 // Assumes that buffer is uninitialized. 1752 static _CharT* _S_flatten(_RopeRep* __r, 1753 size_type __start, size_type __len, 1754 _CharT* __buffer); 1755 1756 static const unsigned long 1757 _S_min_len[__detail::_S_max_rope_depth + 1]; 1758 1759 static bool 1760 _S_is_balanced(_RopeRep* __r) 1761 { return (__r->_M_size >= _S_min_len[__r->_M_depth]); } 1762 1763 static bool 1764 _S_is_almost_balanced(_RopeRep* __r) 1765 { return (__r->_M_depth == 0 1766 || __r->_M_size >= _S_min_len[__r->_M_depth - 1]); } 1767 1768 static bool 1769 _S_is_roughly_balanced(_RopeRep* __r) 1770 { return (__r->_M_depth <= 1 1771 || __r->_M_size >= _S_min_len[__r->_M_depth - 2]); } 1772 1773 // Assumes the result is not empty. 1774 static _RopeRep* 1775 _S_concat_and_set_balanced(_RopeRep* __left, _RopeRep* __right) 1776 { 1777 _RopeRep* __result = _S_concat(__left, __right); 1778 if (_S_is_balanced(__result)) 1779 __result->_M_is_balanced = true; 1780 return __result; 1781 } 1782 1783 // The basic rebalancing operation. Logically copies the 1784 // rope. The result has refcount of 1. The client will 1785 // usually decrement the reference count of __r. 1786 // The result is within height 2 of balanced by the above 1787 // definition. 1788 static _RopeRep* _S_balance(_RopeRep* __r); 1789 1790 // Add all unbalanced subtrees to the forest of balanced trees. 1791 // Used only by balance. 1792 static void _S_add_to_forest(_RopeRep*__r, _RopeRep** __forest); 1793 1794 // Add __r to forest, assuming __r is already balanced. 1795 static void _S_add_leaf_to_forest(_RopeRep* __r, _RopeRep** __forest); 1796 1797 // Print to stdout, exposing structure 1798 static void _S_dump(_RopeRep* __r, int __indent = 0); 1799 1800 // Return -1, 0, or 1 if __x < __y, __x == __y, or __x > __y resp. 1801 static int _S_compare(const _RopeRep* __x, const _RopeRep* __y); 1802 1803 public: 1804 _GLIBCXX_NODISCARD bool 1805 empty() const 1806 { return 0 == this->_M_tree_ptr; } 1807 1808 // Comparison member function. This is public only for those 1809 // clients that need a ternary comparison. Others 1810 // should use the comparison operators below. 1811 int 1812 compare(const rope& __y) const 1813 { return _S_compare(this->_M_tree_ptr, __y._M_tree_ptr); } 1814 1815 rope(const _CharT* __s, const allocator_type& __a = allocator_type()) 1816 : _Base(__a) 1817 { 1818 this->_M_tree_ptr = 1819 __STL_ROPE_FROM_UNOWNED_CHAR_PTR(__s, _S_char_ptr_len(__s), 1820 _M_get_allocator()); 1821 } 1822 1823 rope(const _CharT* __s, size_type __len, 1824 const allocator_type& __a = allocator_type()) 1825 : _Base(__a) 1826 { 1827 this->_M_tree_ptr = 1828 __STL_ROPE_FROM_UNOWNED_CHAR_PTR(__s, __len, _M_get_allocator()); 1829 } 1830 1831 // Should perhaps be templatized with respect to the iterator type 1832 // and use Sequence_buffer. (It should perhaps use sequence_buffer 1833 // even now.) 1834 rope(const _CharT* __s, const _CharT* __e, 1835 const allocator_type& __a = allocator_type()) 1836 : _Base(__a) 1837 { 1838 this->_M_tree_ptr = 1839 __STL_ROPE_FROM_UNOWNED_CHAR_PTR(__s, __e - __s, _M_get_allocator()); 1840 } 1841 1842 rope(const const_iterator& __s, const const_iterator& __e, 1843 const allocator_type& __a = allocator_type()) 1844 : _Base(_S_substring(__s._M_root, __s._M_current_pos, 1845 __e._M_current_pos), __a) 1846 { } 1847 1848 rope(const iterator& __s, const iterator& __e, 1849 const allocator_type& __a = allocator_type()) 1850 : _Base(_S_substring(__s._M_root, __s._M_current_pos, 1851 __e._M_current_pos), __a) 1852 { } 1853 1854 rope(_CharT __c, const allocator_type& __a = allocator_type()) 1855 : _Base(__a) 1856 { 1857 _CharT* __buf = this->_Data_allocate(_S_rounded_up_size(1)); 1858 1859 __alloc_traits<allocator_type>::construct(_M_get_allocator(), 1860 __buf, __c); 1861 __try 1862 { 1863 this->_M_tree_ptr = _S_new_RopeLeaf(__buf, 1, 1864 _M_get_allocator()); 1865 } 1866 __catch(...) 1867 { 1868 _RopeRep::__STL_FREE_STRING(__buf, 1, _M_get_allocator()); 1869 __throw_exception_again; 1870 } 1871 } 1872 1873 rope(size_type __n, _CharT __c, 1874 const allocator_type& __a = allocator_type()); 1875 1876 rope(const allocator_type& __a = allocator_type()) 1877 : _Base(0, __a) { } 1878 1879 // Construct a rope from a function that can compute its members 1880 rope(char_producer<_CharT> *__fn, size_type __len, bool __delete_fn, 1881 const allocator_type& __a = allocator_type()) 1882 : _Base(__a) 1883 { 1884 this->_M_tree_ptr = (0 == __len) 1885 ? 0 1886 : _S_new_RopeFunction(__fn, __len, __delete_fn, _M_get_allocator()); 1887 } 1888 1889 rope(const rope& __x, const allocator_type& __a = allocator_type()) 1890 : _Base(__x._M_tree_ptr, __a) 1891 { _S_ref(this->_M_tree_ptr); } 1892 1893 ~rope() throw() 1894 { _S_unref(this->_M_tree_ptr); } 1895 1896 rope& 1897 operator=(const rope& __x) 1898 { 1899 _RopeRep* __old = this->_M_tree_ptr; 1900 this->_M_tree_ptr = __x._M_tree_ptr; 1901 _S_ref(this->_M_tree_ptr); 1902 _S_unref(__old); 1903 return *this; 1904 } 1905 1906 void 1907 clear() 1908 { 1909 _S_unref(this->_M_tree_ptr); 1910 this->_M_tree_ptr = 0; 1911 } 1912 1913 void 1914 push_back(_CharT __x) 1915 { 1916 _RopeRep* __old = this->_M_tree_ptr; 1917 this->_M_tree_ptr 1918 = _S_destr_concat_char_iter(this->_M_tree_ptr, &__x, 1); 1919 _S_unref(__old); 1920 } 1921 1922 void 1923 pop_back() 1924 { 1925 _RopeRep* __old = this->_M_tree_ptr; 1926 this->_M_tree_ptr = _S_substring(this->_M_tree_ptr, 1927 0, this->_M_tree_ptr->_M_size - 1); 1928 _S_unref(__old); 1929 } 1930 1931 _CharT 1932 back() const 1933 { return _S_fetch(this->_M_tree_ptr, this->_M_tree_ptr->_M_size - 1); } 1934 1935 void 1936 push_front(_CharT __x) 1937 { 1938 _RopeRep* __old = this->_M_tree_ptr; 1939 _RopeRep* __left = 1940 __STL_ROPE_FROM_UNOWNED_CHAR_PTR(&__x, 1, _M_get_allocator()); 1941 __try 1942 { 1943 this->_M_tree_ptr = _S_concat(__left, this->_M_tree_ptr); 1944 _S_unref(__old); 1945 _S_unref(__left); 1946 } 1947 __catch(...) 1948 { 1949 _S_unref(__left); 1950 __throw_exception_again; 1951 } 1952 } 1953 1954 void 1955 pop_front() 1956 { 1957 _RopeRep* __old = this->_M_tree_ptr; 1958 this->_M_tree_ptr 1959 = _S_substring(this->_M_tree_ptr, 1, this->_M_tree_ptr->_M_size); 1960 _S_unref(__old); 1961 } 1962 1963 _CharT 1964 front() const 1965 { return _S_fetch(this->_M_tree_ptr, 0); } 1966 1967 void 1968 balance() 1969 { 1970 _RopeRep* __old = this->_M_tree_ptr; 1971 this->_M_tree_ptr = _S_balance(this->_M_tree_ptr); 1972 _S_unref(__old); 1973 } 1974 1975 void 1976 copy(_CharT* __buffer) const 1977 { 1978 _Destroy_const(__buffer, __buffer + size(), _M_get_allocator()); 1979 _S_flatten(this->_M_tree_ptr, __buffer); 1980 } 1981 1982 // This is the copy function from the standard, but 1983 // with the arguments reordered to make it consistent with the 1984 // rest of the interface. 1985 // Note that this guaranteed not to compile if the draft standard 1986 // order is assumed. 1987 size_type 1988 copy(size_type __pos, size_type __n, _CharT* __buffer) const 1989 { 1990 size_type __size = size(); 1991 size_type __len = (__pos + __n > __size? __size - __pos : __n); 1992 1993 _Destroy_const(__buffer, __buffer + __len, _M_get_allocator()); 1994 _S_flatten(this->_M_tree_ptr, __pos, __len, __buffer); 1995 return __len; 1996 } 1997 1998 // Print to stdout, exposing structure. May be useful for 1999 // performance debugging. 2000 void 2001 dump() 2002 { _S_dump(this->_M_tree_ptr); } 2003 2004 // Convert to 0 terminated string in new allocated memory. 2005 // Embedded 0s in the input do not terminate the copy. 2006 const _CharT* c_str() const; 2007 2008 // As above, but also use the flattened representation as 2009 // the new rope representation. 2010 const _CharT* replace_with_c_str(); 2011 2012 // Reclaim memory for the c_str generated flattened string. 2013 // Intentionally undocumented, since it's hard to say when this 2014 // is safe for multiple threads. 2015 void 2016 delete_c_str () 2017 { 2018 if (0 == this->_M_tree_ptr) 2019 return; 2020 if (__detail::_S_leaf == this->_M_tree_ptr->_M_tag && 2021 ((_RopeLeaf*)this->_M_tree_ptr)->_M_data == 2022 this->_M_tree_ptr->_M_c_string) 2023 { 2024 // Representation shared 2025 return; 2026 } 2027#ifndef __GC 2028 this->_M_tree_ptr->_M_free_c_string(); 2029#endif 2030 this->_M_tree_ptr->_M_c_string = 0; 2031 } 2032 2033 _CharT 2034 operator[] (size_type __pos) const 2035 { return _S_fetch(this->_M_tree_ptr, __pos); } 2036 2037 _CharT 2038 at(size_type __pos) const 2039 { 2040 // if (__pos >= size()) throw out_of_range; // XXX 2041 return (*this)[__pos]; 2042 } 2043 2044 const_iterator 2045 begin() const 2046 { return(const_iterator(this->_M_tree_ptr, 0)); } 2047 2048 // An easy way to get a const iterator from a non-const container. 2049 const_iterator 2050 const_begin() const 2051 { return(const_iterator(this->_M_tree_ptr, 0)); } 2052 2053 const_iterator 2054 end() const 2055 { return(const_iterator(this->_M_tree_ptr, size())); } 2056 2057 const_iterator 2058 const_end() const 2059 { return(const_iterator(this->_M_tree_ptr, size())); } 2060 2061 size_type 2062 size() const 2063 { return(0 == this->_M_tree_ptr? 0 : this->_M_tree_ptr->_M_size); } 2064 2065 size_type 2066 length() const 2067 { return size(); } 2068 2069 size_type 2070 max_size() const 2071 { 2072 return _S_min_len[int(__detail::_S_max_rope_depth) - 1] - 1; 2073 // Guarantees that the result can be sufficiently 2074 // balanced. Longer ropes will probably still work, 2075 // but it's harder to make guarantees. 2076 } 2077 2078 typedef std::reverse_iterator<const_iterator> const_reverse_iterator; 2079 2080 const_reverse_iterator 2081 rbegin() const 2082 { return const_reverse_iterator(end()); } 2083 2084 const_reverse_iterator 2085 const_rbegin() const 2086 { return const_reverse_iterator(end()); } 2087 2088 const_reverse_iterator 2089 rend() const 2090 { return const_reverse_iterator(begin()); } 2091 2092 const_reverse_iterator 2093 const_rend() const 2094 { return const_reverse_iterator(begin()); } 2095 2096 template<class _CharT2, class _Alloc2> 2097 friend rope<_CharT2, _Alloc2> 2098 operator+(const rope<_CharT2, _Alloc2>& __left, 2099 const rope<_CharT2, _Alloc2>& __right); 2100 2101 template<class _CharT2, class _Alloc2> 2102 friend rope<_CharT2, _Alloc2> 2103 operator+(const rope<_CharT2, _Alloc2>& __left, const _CharT2* __right); 2104 2105 template<class _CharT2, class _Alloc2> 2106 friend rope<_CharT2, _Alloc2> 2107 operator+(const rope<_CharT2, _Alloc2>& __left, _CharT2 __right); 2108 2109 // The symmetric cases are intentionally omitted, since they're 2110 // presumed to be less common, and we don't handle them as well. 2111 2112 // The following should really be templatized. The first 2113 // argument should be an input iterator or forward iterator with 2114 // value_type _CharT. 2115 rope& 2116 append(const _CharT* __iter, size_type __n) 2117 { 2118 _RopeRep* __result = 2119 _S_destr_concat_char_iter(this->_M_tree_ptr, __iter, __n); 2120 _S_unref(this->_M_tree_ptr); 2121 this->_M_tree_ptr = __result; 2122 return *this; 2123 } 2124 2125 rope& 2126 append(const _CharT* __c_string) 2127 { 2128 size_type __len = _S_char_ptr_len(__c_string); 2129 append(__c_string, __len); 2130 return(*this); 2131 } 2132 2133 rope& 2134 append(const _CharT* __s, const _CharT* __e) 2135 { 2136 _RopeRep* __result = 2137 _S_destr_concat_char_iter(this->_M_tree_ptr, __s, __e - __s); 2138 _S_unref(this->_M_tree_ptr); 2139 this->_M_tree_ptr = __result; 2140 return *this; 2141 } 2142 2143 rope& 2144 append(const_iterator __s, const_iterator __e) 2145 { 2146 _Self_destruct_ptr __appendee(_S_substring(__s._M_root, 2147 __s._M_current_pos, 2148 __e._M_current_pos)); 2149 _RopeRep* __result = _S_concat(this->_M_tree_ptr, 2150 (_RopeRep*)__appendee); 2151 _S_unref(this->_M_tree_ptr); 2152 this->_M_tree_ptr = __result; 2153 return *this; 2154 } 2155 2156 rope& 2157 append(_CharT __c) 2158 { 2159 _RopeRep* __result = 2160 _S_destr_concat_char_iter(this->_M_tree_ptr, &__c, 1); 2161 _S_unref(this->_M_tree_ptr); 2162 this->_M_tree_ptr = __result; 2163 return *this; 2164 } 2165 2166 rope& 2167 append() 2168 { return append(_CharT()); } // XXX why? 2169 2170 rope& 2171 append(const rope& __y) 2172 { 2173 _RopeRep* __result = _S_concat(this->_M_tree_ptr, __y._M_tree_ptr); 2174 _S_unref(this->_M_tree_ptr); 2175 this->_M_tree_ptr = __result; 2176 return *this; 2177 } 2178 2179 rope& 2180 append(size_type __n, _CharT __c) 2181 { 2182 rope<_CharT,_Alloc> __last(__n, __c); 2183 return append(__last); 2184 } 2185 2186 void 2187 swap(rope& __b) 2188 { 2189 _RopeRep* __tmp = this->_M_tree_ptr; 2190 this->_M_tree_ptr = __b._M_tree_ptr; 2191 __b._M_tree_ptr = __tmp; 2192 } 2193 2194 protected: 2195 // Result is included in refcount. 2196 static _RopeRep* 2197 replace(_RopeRep* __old, size_type __pos1, 2198 size_type __pos2, _RopeRep* __r) 2199 { 2200 if (0 == __old) 2201 { 2202 _S_ref(__r); 2203 return __r; 2204 } 2205 _Self_destruct_ptr __left(_S_substring(__old, 0, __pos1)); 2206 _Self_destruct_ptr __right(_S_substring(__old, __pos2, __old->_M_size)); 2207 _RopeRep* __result; 2208 2209 if (0 == __r) 2210 __result = _S_concat(__left, __right); 2211 else 2212 { 2213 _Self_destruct_ptr __left_result(_S_concat(__left, __r)); 2214 __result = _S_concat(__left_result, __right); 2215 } 2216 return __result; 2217 } 2218 2219 public: 2220 void 2221 insert(size_type __p, const rope& __r) 2222 { 2223 _RopeRep* __result = 2224 replace(this->_M_tree_ptr, __p, __p, __r._M_tree_ptr); 2225 _S_unref(this->_M_tree_ptr); 2226 this->_M_tree_ptr = __result; 2227 } 2228 2229 void 2230 insert(size_type __p, size_type __n, _CharT __c) 2231 { 2232 rope<_CharT,_Alloc> __r(__n,__c); 2233 insert(__p, __r); 2234 } 2235 2236 void 2237 insert(size_type __p, const _CharT* __i, size_type __n) 2238 { 2239 _Self_destruct_ptr __left(_S_substring(this->_M_tree_ptr, 0, __p)); 2240 _Self_destruct_ptr __right(_S_substring(this->_M_tree_ptr, 2241 __p, size())); 2242 _Self_destruct_ptr __left_result(_S_concat_char_iter(__left, __i, __n)); 2243 // _S_ destr_concat_char_iter should be safe here. 2244 // But as it stands it's probably not a win, since __left 2245 // is likely to have additional references. 2246 _RopeRep* __result = _S_concat(__left_result, __right); 2247 _S_unref(this->_M_tree_ptr); 2248 this->_M_tree_ptr = __result; 2249 } 2250 2251 void 2252 insert(size_type __p, const _CharT* __c_string) 2253 { insert(__p, __c_string, _S_char_ptr_len(__c_string)); } 2254 2255 void 2256 insert(size_type __p, _CharT __c) 2257 { insert(__p, &__c, 1); } 2258 2259 void 2260 insert(size_type __p) 2261 { 2262 _CharT __c = _CharT(); 2263 insert(__p, &__c, 1); 2264 } 2265 2266 void 2267 insert(size_type __p, const _CharT* __i, const _CharT* __j) 2268 { 2269 rope __r(__i, __j); 2270 insert(__p, __r); 2271 } 2272 2273 void 2274 insert(size_type __p, const const_iterator& __i, 2275 const const_iterator& __j) 2276 { 2277 rope __r(__i, __j); 2278 insert(__p, __r); 2279 } 2280 2281 void 2282 insert(size_type __p, const iterator& __i, 2283 const iterator& __j) 2284 { 2285 rope __r(__i, __j); 2286 insert(__p, __r); 2287 } 2288 2289 // (position, length) versions of replace operations: 2290 2291 void 2292 replace(size_type __p, size_type __n, const rope& __r) 2293 { 2294 _RopeRep* __result = 2295 replace(this->_M_tree_ptr, __p, __p + __n, __r._M_tree_ptr); 2296 _S_unref(this->_M_tree_ptr); 2297 this->_M_tree_ptr = __result; 2298 } 2299 2300 void 2301 replace(size_type __p, size_type __n, 2302 const _CharT* __i, size_type __i_len) 2303 { 2304 rope __r(__i, __i_len); 2305 replace(__p, __n, __r); 2306 } 2307 2308 void 2309 replace(size_type __p, size_type __n, _CharT __c) 2310 { 2311 rope __r(__c); 2312 replace(__p, __n, __r); 2313 } 2314 2315 void 2316 replace(size_type __p, size_type __n, const _CharT* __c_string) 2317 { 2318 rope __r(__c_string); 2319 replace(__p, __n, __r); 2320 } 2321 2322 void 2323 replace(size_type __p, size_type __n, 2324 const _CharT* __i, const _CharT* __j) 2325 { 2326 rope __r(__i, __j); 2327 replace(__p, __n, __r); 2328 } 2329 2330 void 2331 replace(size_type __p, size_type __n, 2332 const const_iterator& __i, const const_iterator& __j) 2333 { 2334 rope __r(__i, __j); 2335 replace(__p, __n, __r); 2336 } 2337 2338 void 2339 replace(size_type __p, size_type __n, 2340 const iterator& __i, const iterator& __j) 2341 { 2342 rope __r(__i, __j); 2343 replace(__p, __n, __r); 2344 } 2345 2346 // Single character variants: 2347 void 2348 replace(size_type __p, _CharT __c) 2349 { 2350 iterator __i(this, __p); 2351 *__i = __c; 2352 } 2353 2354 void 2355 replace(size_type __p, const rope& __r) 2356 { replace(__p, 1, __r); } 2357 2358 void 2359 replace(size_type __p, const _CharT* __i, size_type __i_len) 2360 { replace(__p, 1, __i, __i_len); } 2361 2362 void 2363 replace(size_type __p, const _CharT* __c_string) 2364 { replace(__p, 1, __c_string); } 2365 2366 void 2367 replace(size_type __p, const _CharT* __i, const _CharT* __j) 2368 { replace(__p, 1, __i, __j); } 2369 2370 void 2371 replace(size_type __p, const const_iterator& __i, 2372 const const_iterator& __j) 2373 { replace(__p, 1, __i, __j); } 2374 2375 void 2376 replace(size_type __p, const iterator& __i, 2377 const iterator& __j) 2378 { replace(__p, 1, __i, __j); } 2379 2380 // Erase, (position, size) variant. 2381 void 2382 erase(size_type __p, size_type __n) 2383 { 2384 _RopeRep* __result = replace(this->_M_tree_ptr, __p, 2385 __p + __n, 0); 2386 _S_unref(this->_M_tree_ptr); 2387 this->_M_tree_ptr = __result; 2388 } 2389 2390 // Erase, single character 2391 void 2392 erase(size_type __p) 2393 { erase(__p, __p + 1); } 2394 2395 // Insert, iterator variants. 2396 iterator 2397 insert(const iterator& __p, const rope& __r) 2398 { 2399 insert(__p.index(), __r); 2400 return __p; 2401 } 2402 2403 iterator 2404 insert(const iterator& __p, size_type __n, _CharT __c) 2405 { 2406 insert(__p.index(), __n, __c); 2407 return __p; 2408 } 2409 2410 iterator insert(const iterator& __p, _CharT __c) 2411 { 2412 insert(__p.index(), __c); 2413 return __p; 2414 } 2415 2416 iterator 2417 insert(const iterator& __p ) 2418 { 2419 insert(__p.index()); 2420 return __p; 2421 } 2422 2423 iterator 2424 insert(const iterator& __p, const _CharT* c_string) 2425 { 2426 insert(__p.index(), c_string); 2427 return __p; 2428 } 2429 2430 iterator 2431 insert(const iterator& __p, const _CharT* __i, size_type __n) 2432 { 2433 insert(__p.index(), __i, __n); 2434 return __p; 2435 } 2436 2437 iterator 2438 insert(const iterator& __p, const _CharT* __i, 2439 const _CharT* __j) 2440 { 2441 insert(__p.index(), __i, __j); 2442 return __p; 2443 } 2444 2445 iterator 2446 insert(const iterator& __p, 2447 const const_iterator& __i, const const_iterator& __j) 2448 { 2449 insert(__p.index(), __i, __j); 2450 return __p; 2451 } 2452 2453 iterator 2454 insert(const iterator& __p, 2455 const iterator& __i, const iterator& __j) 2456 { 2457 insert(__p.index(), __i, __j); 2458 return __p; 2459 } 2460 2461 // Replace, range variants. 2462 void 2463 replace(const iterator& __p, const iterator& __q, const rope& __r) 2464 { replace(__p.index(), __q.index() - __p.index(), __r); } 2465 2466 void 2467 replace(const iterator& __p, const iterator& __q, _CharT __c) 2468 { replace(__p.index(), __q.index() - __p.index(), __c); } 2469 2470 void 2471 replace(const iterator& __p, const iterator& __q, 2472 const _CharT* __c_string) 2473 { replace(__p.index(), __q.index() - __p.index(), __c_string); } 2474 2475 void 2476 replace(const iterator& __p, const iterator& __q, 2477 const _CharT* __i, size_type __n) 2478 { replace(__p.index(), __q.index() - __p.index(), __i, __n); } 2479 2480 void 2481 replace(const iterator& __p, const iterator& __q, 2482 const _CharT* __i, const _CharT* __j) 2483 { replace(__p.index(), __q.index() - __p.index(), __i, __j); } 2484 2485 void 2486 replace(const iterator& __p, const iterator& __q, 2487 const const_iterator& __i, const const_iterator& __j) 2488 { replace(__p.index(), __q.index() - __p.index(), __i, __j); } 2489 2490 void 2491 replace(const iterator& __p, const iterator& __q, 2492 const iterator& __i, const iterator& __j) 2493 { replace(__p.index(), __q.index() - __p.index(), __i, __j); } 2494 2495 // Replace, iterator variants. 2496 void 2497 replace(const iterator& __p, const rope& __r) 2498 { replace(__p.index(), __r); } 2499 2500 void 2501 replace(const iterator& __p, _CharT __c) 2502 { replace(__p.index(), __c); } 2503 2504 void 2505 replace(const iterator& __p, const _CharT* __c_string) 2506 { replace(__p.index(), __c_string); } 2507 2508 void 2509 replace(const iterator& __p, const _CharT* __i, size_type __n) 2510 { replace(__p.index(), __i, __n); } 2511 2512 void 2513 replace(const iterator& __p, const _CharT* __i, const _CharT* __j) 2514 { replace(__p.index(), __i, __j); } 2515 2516 void 2517 replace(const iterator& __p, const_iterator __i, const_iterator __j) 2518 { replace(__p.index(), __i, __j); } 2519 2520 void 2521 replace(const iterator& __p, iterator __i, iterator __j) 2522 { replace(__p.index(), __i, __j); } 2523 2524 // Iterator and range variants of erase 2525 iterator 2526 erase(const iterator& __p, const iterator& __q) 2527 { 2528 size_type __p_index = __p.index(); 2529 erase(__p_index, __q.index() - __p_index); 2530 return iterator(this, __p_index); 2531 } 2532 2533 iterator 2534 erase(const iterator& __p) 2535 { 2536 size_type __p_index = __p.index(); 2537 erase(__p_index, 1); 2538 return iterator(this, __p_index); 2539 } 2540 2541 rope 2542 substr(size_type __start, size_type __len = 1) const 2543 { 2544 return rope<_CharT, _Alloc>(_S_substring(this->_M_tree_ptr, 2545 __start, 2546 __start + __len)); 2547 } 2548 2549 rope 2550 substr(iterator __start, iterator __end) const 2551 { 2552 return rope<_CharT, _Alloc>(_S_substring(this->_M_tree_ptr, 2553 __start.index(), 2554 __end.index())); 2555 } 2556 2557 rope 2558 substr(iterator __start) const 2559 { 2560 size_type __pos = __start.index(); 2561 return rope<_CharT, _Alloc>(_S_substring(this->_M_tree_ptr, 2562 __pos, __pos + 1)); 2563 } 2564 2565 rope 2566 substr(const_iterator __start, const_iterator __end) const 2567 { 2568 // This might eventually take advantage of the cache in the 2569 // iterator. 2570 return rope<_CharT, _Alloc>(_S_substring(this->_M_tree_ptr, 2571 __start.index(), 2572 __end.index())); 2573 } 2574 2575 rope<_CharT, _Alloc> 2576 substr(const_iterator __start) 2577 { 2578 size_type __pos = __start.index(); 2579 return rope<_CharT, _Alloc>(_S_substring(this->_M_tree_ptr, 2580 __pos, __pos + 1)); 2581 } 2582 2583 static const size_type npos; 2584 2585 size_type find(_CharT __c, size_type __pos = 0) const; 2586 2587 size_type 2588 find(const _CharT* __s, size_type __pos = 0) const 2589 { 2590 size_type __result_pos; 2591 const_iterator __result = 2592 std::search(const_begin() + __pos, const_end(), 2593 __s, __s + _S_char_ptr_len(__s)); 2594 __result_pos = __result.index(); 2595#ifndef __STL_OLD_ROPE_SEMANTICS 2596 if (__result_pos == size()) 2597 __result_pos = npos; 2598#endif 2599 return __result_pos; 2600 } 2601 2602 iterator 2603 mutable_begin() 2604 { return(iterator(this, 0)); } 2605 2606 iterator 2607 mutable_end() 2608 { return(iterator(this, size())); } 2609 2610 typedef std::reverse_iterator<iterator> reverse_iterator; 2611 2612 reverse_iterator 2613 mutable_rbegin() 2614 { return reverse_iterator(mutable_end()); } 2615 2616 reverse_iterator 2617 mutable_rend() 2618 { return reverse_iterator(mutable_begin()); } 2619 2620 reference 2621 mutable_reference_at(size_type __pos) 2622 { return reference(this, __pos); } 2623 2624#ifdef __STD_STUFF 2625 reference 2626 operator[] (size_type __pos) 2627 { return _char_ref_proxy(this, __pos); } 2628 2629 reference 2630 at(size_type __pos) 2631 { 2632 // if (__pos >= size()) throw out_of_range; // XXX 2633 return (*this)[__pos]; 2634 } 2635 2636 void resize(size_type __n, _CharT __c) { } 2637 void resize(size_type __n) { } 2638 void reserve(size_type __res_arg = 0) { } 2639 2640 size_type 2641 capacity() const 2642 { return max_size(); } 2643 2644 // Stuff below this line is dangerous because it's error prone. 2645 // I would really like to get rid of it. 2646 // copy function with funny arg ordering. 2647 size_type 2648 copy(_CharT* __buffer, size_type __n, 2649 size_type __pos = 0) const 2650 { return copy(__pos, __n, __buffer); } 2651 2652 iterator 2653 end() 2654 { return mutable_end(); } 2655 2656 iterator 2657 begin() 2658 { return mutable_begin(); } 2659 2660 reverse_iterator 2661 rend() 2662 { return mutable_rend(); } 2663 2664 reverse_iterator 2665 rbegin() 2666 { return mutable_rbegin(); } 2667 2668#else 2669 const_iterator 2670 end() 2671 { return const_end(); } 2672 2673 const_iterator 2674 begin() 2675 { return const_begin(); } 2676 2677 const_reverse_iterator 2678 rend() 2679 { return const_rend(); } 2680 2681 const_reverse_iterator 2682 rbegin() 2683 { return const_rbegin(); } 2684 2685#endif 2686 }; 2687 2688 template <class _CharT, class _Alloc> 2689 const typename rope<_CharT, _Alloc>::size_type 2690 rope<_CharT, _Alloc>::npos = (size_type)(-1); 2691 2692 template <class _CharT, class _Alloc> 2693 inline bool operator==(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2694 const _Rope_const_iterator<_CharT, _Alloc>& __y) 2695 { return (__x._M_current_pos == __y._M_current_pos 2696 && __x._M_root == __y._M_root); } 2697 2698 template <class _CharT, class _Alloc> 2699 inline bool operator<(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2700 const _Rope_const_iterator<_CharT, _Alloc>& __y) 2701 { return (__x._M_current_pos < __y._M_current_pos); } 2702 2703 template <class _CharT, class _Alloc> 2704 inline bool operator!=(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2705 const _Rope_const_iterator<_CharT, _Alloc>& __y) 2706 { return !(__x == __y); } 2707 2708 template <class _CharT, class _Alloc> 2709 inline bool operator>(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2710 const _Rope_const_iterator<_CharT, _Alloc>& __y) 2711 { return __y < __x; } 2712 2713 template <class _CharT, class _Alloc> 2714 inline bool 2715 operator<=(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2716 const _Rope_const_iterator<_CharT, _Alloc>& __y) 2717 { return !(__y < __x); } 2718 2719 template <class _CharT, class _Alloc> 2720 inline bool 2721 operator>=(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2722 const _Rope_const_iterator<_CharT, _Alloc>& __y) 2723 { return !(__x < __y); } 2724 2725 template <class _CharT, class _Alloc> 2726 inline std::ptrdiff_t 2727 operator-(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2728 const _Rope_const_iterator<_CharT, _Alloc>& __y) 2729 { 2730 return (std::ptrdiff_t)__x._M_current_pos 2731 - (std::ptrdiff_t)__y._M_current_pos; 2732 } 2733 2734 template <class _CharT, class _Alloc> 2735 inline _Rope_const_iterator<_CharT, _Alloc> 2736 operator-(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2737 std::ptrdiff_t __n) 2738 { return _Rope_const_iterator<_CharT, _Alloc>(__x._M_root, 2739 __x._M_current_pos - __n); } 2740 2741 template <class _CharT, class _Alloc> 2742 inline _Rope_const_iterator<_CharT, _Alloc> 2743 operator+(const _Rope_const_iterator<_CharT, _Alloc>& __x, 2744 std::ptrdiff_t __n) 2745 { return _Rope_const_iterator<_CharT, _Alloc>(__x._M_root, 2746 __x._M_current_pos + __n); } 2747 2748 template <class _CharT, class _Alloc> 2749 inline _Rope_const_iterator<_CharT, _Alloc> 2750 operator+(std::ptrdiff_t __n, 2751 const _Rope_const_iterator<_CharT, _Alloc>& __x) 2752 { return _Rope_const_iterator<_CharT, _Alloc>(__x._M_root, 2753 __x._M_current_pos + __n); } 2754 2755 template <class _CharT, class _Alloc> 2756 inline bool 2757 operator==(const _Rope_iterator<_CharT, _Alloc>& __x, 2758 const _Rope_iterator<_CharT, _Alloc>& __y) 2759 {return (__x._M_current_pos == __y._M_current_pos 2760 && __x._M_root_rope == __y._M_root_rope); } 2761 2762 template <class _CharT, class _Alloc> 2763 inline bool 2764 operator<(const _Rope_iterator<_CharT, _Alloc>& __x, 2765 const _Rope_iterator<_CharT, _Alloc>& __y) 2766 { return (__x._M_current_pos < __y._M_current_pos); } 2767 2768 template <class _CharT, class _Alloc> 2769 inline bool 2770 operator!=(const _Rope_iterator<_CharT, _Alloc>& __x, 2771 const _Rope_iterator<_CharT, _Alloc>& __y) 2772 { return !(__x == __y); } 2773 2774 template <class _CharT, class _Alloc> 2775 inline bool 2776 operator>(const _Rope_iterator<_CharT, _Alloc>& __x, 2777 const _Rope_iterator<_CharT, _Alloc>& __y) 2778 { return __y < __x; } 2779 2780 template <class _CharT, class _Alloc> 2781 inline bool 2782 operator<=(const _Rope_iterator<_CharT, _Alloc>& __x, 2783 const _Rope_iterator<_CharT, _Alloc>& __y) 2784 { return !(__y < __x); } 2785 2786 template <class _CharT, class _Alloc> 2787 inline bool 2788 operator>=(const _Rope_iterator<_CharT, _Alloc>& __x, 2789 const _Rope_iterator<_CharT, _Alloc>& __y) 2790 { return !(__x < __y); } 2791 2792 template <class _CharT, class _Alloc> 2793 inline std::ptrdiff_t 2794 operator-(const _Rope_iterator<_CharT, _Alloc>& __x, 2795 const _Rope_iterator<_CharT, _Alloc>& __y) 2796 { return ((std::ptrdiff_t)__x._M_current_pos 2797 - (std::ptrdiff_t)__y._M_current_pos); } 2798 2799 template <class _CharT, class _Alloc> 2800 inline _Rope_iterator<_CharT, _Alloc> 2801 operator-(const _Rope_iterator<_CharT, _Alloc>& __x, 2802 std::ptrdiff_t __n) 2803 { return _Rope_iterator<_CharT, _Alloc>(__x._M_root_rope, 2804 __x._M_current_pos - __n); } 2805 2806 template <class _CharT, class _Alloc> 2807 inline _Rope_iterator<_CharT, _Alloc> 2808 operator+(const _Rope_iterator<_CharT, _Alloc>& __x, std::ptrdiff_t __n) 2809 { return _Rope_iterator<_CharT, _Alloc>(__x._M_root_rope, 2810 __x._M_current_pos + __n); } 2811 2812 template <class _CharT, class _Alloc> 2813 inline _Rope_iterator<_CharT, _Alloc> 2814 operator+(std::ptrdiff_t __n, const _Rope_iterator<_CharT, _Alloc>& __x) 2815 { return _Rope_iterator<_CharT, _Alloc>(__x._M_root_rope, 2816 __x._M_current_pos + __n); } 2817 2818 template <class _CharT, class _Alloc> 2819 inline rope<_CharT, _Alloc> 2820 operator+(const rope<_CharT, _Alloc>& __left, 2821 const rope<_CharT, _Alloc>& __right) 2822 { 2823 // Inlining this should make it possible to keep __left and 2824 // __right in registers. 2825 typedef rope<_CharT, _Alloc> rope_type; 2826 return rope_type(rope_type::_S_concat(__left._M_tree_ptr, 2827 __right._M_tree_ptr)); 2828 } 2829 2830 template <class _CharT, class _Alloc> 2831 inline rope<_CharT, _Alloc>& 2832 operator+=(rope<_CharT, _Alloc>& __left, 2833 const rope<_CharT, _Alloc>& __right) 2834 { 2835 __left.append(__right); 2836 return __left; 2837 } 2838 2839 template <class _CharT, class _Alloc> 2840 inline rope<_CharT, _Alloc> 2841 operator+(const rope<_CharT, _Alloc>& __left, 2842 const _CharT* __right) 2843 { 2844 typedef rope<_CharT, _Alloc> rope_type; 2845 std::size_t __rlen = rope_type::_S_char_ptr_len(__right); 2846 return rope_type(rope_type::_S_concat_char_iter(__left._M_tree_ptr, 2847 __right, __rlen)); 2848 } 2849 2850 template <class _CharT, class _Alloc> 2851 inline rope<_CharT, _Alloc>& 2852 operator+=(rope<_CharT, _Alloc>& __left, 2853 const _CharT* __right) 2854 { 2855 __left.append(__right); 2856 return __left; 2857 } 2858 2859 template <class _CharT, class _Alloc> 2860 inline rope<_CharT, _Alloc> 2861 operator+(const rope<_CharT, _Alloc>& __left, _CharT __right) 2862 { 2863 typedef rope<_CharT, _Alloc> rope_type; 2864 return rope_type(rope_type::_S_concat_char_iter(__left._M_tree_ptr, 2865 &__right, 1)); 2866 } 2867 2868 template <class _CharT, class _Alloc> 2869 inline rope<_CharT, _Alloc>& 2870 operator+=(rope<_CharT, _Alloc>& __left, _CharT __right) 2871 { 2872 __left.append(__right); 2873 return __left; 2874 } 2875 2876 template <class _CharT, class _Alloc> 2877 bool 2878 operator<(const rope<_CharT, _Alloc>& __left, 2879 const rope<_CharT, _Alloc>& __right) 2880 { return __left.compare(__right) < 0; } 2881 2882 template <class _CharT, class _Alloc> 2883 bool 2884 operator==(const rope<_CharT, _Alloc>& __left, 2885 const rope<_CharT, _Alloc>& __right) 2886 { return __left.compare(__right) == 0; } 2887 2888 template <class _CharT, class _Alloc> 2889 inline bool 2890 operator==(const _Rope_char_ptr_proxy<_CharT, _Alloc>& __x, 2891 const _Rope_char_ptr_proxy<_CharT, _Alloc>& __y) 2892 { return (__x._M_pos == __y._M_pos && __x._M_root == __y._M_root); } 2893 2894 template <class _CharT, class _Alloc> 2895 inline bool 2896 operator!=(const rope<_CharT, _Alloc>& __x, 2897 const rope<_CharT, _Alloc>& __y) 2898 { return !(__x == __y); } 2899 2900 template <class _CharT, class _Alloc> 2901 inline bool 2902 operator>(const rope<_CharT, _Alloc>& __x, 2903 const rope<_CharT, _Alloc>& __y) 2904 { return __y < __x; } 2905 2906 template <class _CharT, class _Alloc> 2907 inline bool 2908 operator<=(const rope<_CharT, _Alloc>& __x, 2909 const rope<_CharT, _Alloc>& __y) 2910 { return !(__y < __x); } 2911 2912 template <class _CharT, class _Alloc> 2913 inline bool 2914 operator>=(const rope<_CharT, _Alloc>& __x, 2915 const rope<_CharT, _Alloc>& __y) 2916 { return !(__x < __y); } 2917 2918 template <class _CharT, class _Alloc> 2919 inline bool 2920 operator!=(const _Rope_char_ptr_proxy<_CharT, _Alloc>& __x, 2921 const _Rope_char_ptr_proxy<_CharT, _Alloc>& __y) 2922 { return !(__x == __y); } 2923 2924 template<class _CharT, class _Traits, class _Alloc> 2925 std::basic_ostream<_CharT, _Traits>& 2926 operator<<(std::basic_ostream<_CharT, _Traits>& __o, 2927 const rope<_CharT, _Alloc>& __r); 2928 2929 typedef rope<char> crope; 2930 typedef rope<wchar_t> wrope; 2931 2932 inline crope::reference 2933 __mutable_reference_at(crope& __c, std::size_t __i) 2934 { return __c.mutable_reference_at(__i); } 2935 2936 inline wrope::reference 2937 __mutable_reference_at(wrope& __c, std::size_t __i) 2938 { return __c.mutable_reference_at(__i); } 2939 2940 template <class _CharT, class _Alloc> 2941 inline void 2942 swap(rope<_CharT, _Alloc>& __x, rope<_CharT, _Alloc>& __y) 2943 { __x.swap(__y); } 2944 2945_GLIBCXX_END_NAMESPACE_VERSION 2946} // namespace 2947 2948 2949namespace std _GLIBCXX_VISIBILITY(default) 2950{ 2951_GLIBCXX_BEGIN_NAMESPACE_VERSION 2952 2953namespace tr1 2954{ 2955 template<> 2956 struct hash<__gnu_cxx::crope> 2957 { 2958 size_t 2959 operator()(const __gnu_cxx::crope& __str) const 2960 { 2961 size_t __size = __str.size(); 2962 if (0 == __size) 2963 return 0; 2964 return 13 * __str[0] + 5 * __str[__size - 1] + __size; 2965 } 2966 }; 2967 2968 2969 template<> 2970 struct hash<__gnu_cxx::wrope> 2971 { 2972 size_t 2973 operator()(const __gnu_cxx::wrope& __str) const 2974 { 2975 size_t __size = __str.size(); 2976 if (0 == __size) 2977 return 0; 2978 return 13 * __str[0] + 5 * __str[__size - 1] + __size; 2979 } 2980 }; 2981} // namespace tr1 2982 2983_GLIBCXX_END_NAMESPACE_VERSION 2984} // namespace std 2985 2986# include <ext/ropeimpl.h> 2987 2988#endif 2989