forked from Imagelibrary/binutils-gdb
PR build/29110 points out that GDB fails to build on mingw when the "win32" thread model is in use. It turns out that the Fedora cross tools using the "posix" thread model, which somehow manages to support std::future, whereas the win32 model does not. While looking into this, I found that the configuring with --disable-threading will also cause a build failure. This patch fixes this build by introducing a compatibility wrapper for std::future. I am not able to test the win32 thread model build, but I'm going to ask the reporter to try this patch. Bug: https://sourceware.org/bugzilla/show_bug.cgi?id=29110
337 lines
11 KiB
C++
337 lines
11 KiB
C++
/* DIE indexing
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Copyright (C) 2022 Free Software Foundation, Inc.
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This file is part of GDB.
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This program is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 3 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program. If not, see <http://www.gnu.org/licenses/>. */
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#ifndef GDB_DWARF2_COOKED_INDEX_H
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#define GDB_DWARF2_COOKED_INDEX_H
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#include "dwarf2.h"
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#include "gdbtypes.h"
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#include "symtab.h"
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#include "hashtab.h"
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#include "dwarf2/index-common.h"
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#include "gdbsupport/gdb_string_view.h"
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#include "quick-symbol.h"
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#include "gdbsupport/gdb_obstack.h"
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#include "addrmap.h"
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#include "gdbsupport/iterator-range.h"
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#include "gdbsupport/thread-pool.h"
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#include "dwarf2/mapped-index.h"
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#include "dwarf2/tag.h"
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struct dwarf2_per_cu_data;
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/* Flags that describe an entry in the index. */
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enum cooked_index_flag_enum : unsigned char
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{
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/* True if this entry is the program's "main". */
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IS_MAIN = 1,
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/* True if this entry represents a "static" object. */
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IS_STATIC = 2,
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/* True if this entry is an "enum class". */
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IS_ENUM_CLASS = 4,
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/* True if this entry uses the linkage name. */
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IS_LINKAGE = 8,
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};
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DEF_ENUM_FLAGS_TYPE (enum cooked_index_flag_enum, cooked_index_flag);
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/* A cooked_index_entry represents a single item in the index. Note
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that two entries can be created for the same DIE -- one using the
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name, and another one using the linkage name, if any.
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This is an "open" class and the members are all directly
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accessible. It is read-only after the index has been fully read
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and processed. */
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struct cooked_index_entry : public allocate_on_obstack
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{
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cooked_index_entry (sect_offset die_offset_, enum dwarf_tag tag_,
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cooked_index_flag flags_, const char *name_,
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const cooked_index_entry *parent_entry_,
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dwarf2_per_cu_data *per_cu_)
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: name (name_),
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tag (tag_),
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flags (flags_),
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die_offset (die_offset_),
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parent_entry (parent_entry_),
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per_cu (per_cu_)
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{
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}
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/* Return true if this entry matches SEARCH_FLAGS. */
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bool matches (block_search_flags search_flags) const
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{
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if ((search_flags & SEARCH_STATIC_BLOCK) != 0
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&& (flags & IS_STATIC) != 0)
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return true;
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if ((search_flags & SEARCH_GLOBAL_BLOCK) != 0
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&& (flags & IS_STATIC) == 0)
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return true;
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return false;
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}
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/* Return true if this entry matches DOMAIN. */
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bool matches (domain_enum domain) const
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{
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switch (domain)
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{
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case LABEL_DOMAIN:
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return false;
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case MODULE_DOMAIN:
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return tag == DW_TAG_module;
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case COMMON_BLOCK_DOMAIN:
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return tag == DW_TAG_common_block;
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}
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return true;
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}
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/* Return true if this entry matches KIND. */
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bool matches (enum search_domain kind) const
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{
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switch (kind)
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{
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case VARIABLES_DOMAIN:
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return (tag == DW_TAG_variable
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|| tag == DW_TAG_constant
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|| tag == DW_TAG_enumerator);
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case FUNCTIONS_DOMAIN:
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return tag == DW_TAG_subprogram;
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case TYPES_DOMAIN:
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return tag_is_type (tag);
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case MODULES_DOMAIN:
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return tag == DW_TAG_module;
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}
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return true;
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}
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/* Construct the fully-qualified name of this entry and return a
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pointer to it. If allocation is needed, it will be done on
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STORAGE. */
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const char *full_name (struct obstack *storage) const;
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/* Entries must be sorted case-insensitively; this compares two
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entries. */
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bool operator< (const cooked_index_entry &other) const
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{
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return strcasecmp (canonical, other.canonical) < 0;
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}
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/* The name as it appears in DWARF. This always points into one of
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the mapped DWARF sections. Note that this may be the name or the
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linkage name -- two entries are created for DIEs which have both
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attributes. */
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const char *name;
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/* The canonical name. For C++ names, this may differ from NAME.
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In all other cases, this is equal to NAME. */
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const char *canonical = nullptr;
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/* The DWARF tag. */
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enum dwarf_tag tag;
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/* Any flags attached to this entry. */
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cooked_index_flag flags;
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/* The offset of this DIE. */
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sect_offset die_offset;
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/* The parent entry. This is NULL for top-level entries.
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Otherwise, it points to the parent entry, such as a namespace or
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class. */
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const cooked_index_entry *parent_entry;
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/* The CU from which this entry originates. */
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dwarf2_per_cu_data *per_cu;
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private:
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void write_scope (struct obstack *storage, const char *sep) const;
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};
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class cooked_index_vector;
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/* An index of interesting DIEs. This is "cooked", in contrast to a
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mapped .debug_names or .gdb_index, which are "raw". An entry in
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the index is of type cooked_index_entry.
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Operations on the index are described below. They are chosen to
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make it relatively simple to implement the symtab "quick"
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methods. */
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class cooked_index
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{
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public:
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cooked_index () = default;
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DISABLE_COPY_AND_ASSIGN (cooked_index);
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/* Create a new cooked_index_entry and register it with this object.
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Entries are owned by this object. The new item is returned. */
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const cooked_index_entry *add (sect_offset die_offset, enum dwarf_tag tag,
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cooked_index_flag flags,
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const char *name,
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const cooked_index_entry *parent_entry,
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dwarf2_per_cu_data *per_cu);
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/* Install a new fixed addrmap from the given mutable addrmap. */
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void install_addrmap (addrmap *map)
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{
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gdb_assert (m_addrmap == nullptr);
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m_addrmap = addrmap_create_fixed (map, &m_storage);
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}
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friend class cooked_index_vector;
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private:
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/* Return the entry that is believed to represent the program's
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"main". This will return NULL if no such entry is available. */
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const cooked_index_entry *get_main () const
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{
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return m_main;
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}
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/* Look up ADDR in the address map, and return either the
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corresponding CU, or nullptr if the address could not be
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found. */
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dwarf2_per_cu_data *lookup (CORE_ADDR addr)
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{
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return (dwarf2_per_cu_data *) addrmap_find (m_addrmap, addr);
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}
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/* Create a new cooked_index_entry and register it with this object.
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Entries are owned by this object. The new item is returned. */
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cooked_index_entry *create (sect_offset die_offset,
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enum dwarf_tag tag,
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cooked_index_flag flags,
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const char *name,
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const cooked_index_entry *parent_entry,
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dwarf2_per_cu_data *per_cu)
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{
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return new (&m_storage) cooked_index_entry (die_offset, tag, flags,
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name, parent_entry,
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per_cu);
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}
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/* Storage for the entries. */
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auto_obstack m_storage;
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/* List of all entries. */
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std::vector<cooked_index_entry *> m_entries;
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/* If we found "main" or an entry with 'is_main' set, store it
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here. */
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cooked_index_entry *m_main = nullptr;
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/* When constructing the index, entries are stored on a linked list.
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This member points to the head of that list. Later, they are
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entered into the hash table, at which point this is no longer
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used. */
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cooked_index_entry *m_start = nullptr;
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/* The addrmap. This maps address ranges to dwarf2_per_cu_data
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objects. */
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addrmap *m_addrmap = nullptr;
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};
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/* The main index of DIEs. The parallel DIE indexers create
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cooked_index objects. Then, these are all handled to a
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cooked_index_vector for storage and final indexing. The index is
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made by iterating over the entries previously created. */
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class cooked_index_vector : public dwarf_scanner_base
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{
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public:
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/* A convenience typedef for the vector that is contained in this
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object. */
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typedef std::vector<std::unique_ptr<cooked_index>> vec_type;
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explicit cooked_index_vector (vec_type &&vec);
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DISABLE_COPY_AND_ASSIGN (cooked_index_vector);
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~cooked_index_vector ()
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{
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/* The 'finalize' method may be run in a different thread. If
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this object is destroyed before this completes, then the method
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will end up writing to freed memory. Waiting for this to
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complete avoids this problem; and the cost seems ignorable
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because creating and immediately destroying the debug info is a
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relatively rare thing to do. */
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m_future.wait ();
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}
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/* A simple range over part of m_entries. */
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typedef iterator_range<std::vector<cooked_index_entry *>::iterator> range;
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/* Look up an entry by name. Returns a range of all matching
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results. If COMPLETING is true, then a larger range, suitable
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for completion, will be returned. */
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range find (gdb::string_view name, bool completing);
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/* Return a range of all the entries. */
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range all_entries ()
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{
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m_future.wait ();
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return { m_entries.begin (), m_entries.end () };
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}
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/* Look up ADDR in the address map, and return either the
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corresponding CU, or nullptr if the address could not be
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found. */
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dwarf2_per_cu_data *lookup (CORE_ADDR addr);
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/* Return a new vector of all the addrmaps used by all the indexes
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held by this object. */
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std::vector<addrmap *> get_addrmaps ();
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/* Return the entry that is believed to represent the program's
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"main". This will return NULL if no such entry is available. */
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const cooked_index_entry *get_main () const;
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cooked_index_vector *index_for_writing () override
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{
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return this;
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}
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quick_symbol_functions_up make_quick_functions () const override;
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private:
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/* GNAT only emits mangled ("encoded") names in the DWARF, and does
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not emit the module structure. However, we need this structure
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to do lookups. This function recreates that structure for an
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existing entry. It returns the base name (last element) of the
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full decoded name. */
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gdb::unique_xmalloc_ptr<char> handle_gnat_encoded_entry
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(cooked_index_entry *entry, htab_t gnat_entries);
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/* Finalize the index. This should be called a single time, when
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the index has been fully populated. It enters all the entries
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into the internal hash table. */
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void finalize ();
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/* The vector of cooked_index objects. This is stored because the
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entries are stored on the obstacks in those objects. */
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vec_type m_vector;
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/* List of all entries. This is sorted during finalization. */
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std::vector<cooked_index_entry *> m_entries;
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/* Storage for canonical names. */
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std::vector<gdb::unique_xmalloc_ptr<char>> m_names;
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/* A future that tracks when the 'finalize' method is done. Note
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that the 'get' method is never called on this future, only
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'wait'. */
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gdb::future<void> m_future;
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};
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#endif /* GDB_DWARF2_COOKED_INDEX_H */
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