This moves the following classes from Core -> Utility. ConstString Error RegularExpression Stream StreamString The goal here is to get lldbUtility into a state where it has no dependendencies except on itself and LLVM, so it can be the starting point at which to start untangling LLDB's dependencies. These are all low level and very widely used classes, and previously lldbUtility had dependencies up to lldbCore in order to use these classes. So moving then down to lldbUtility makes sense from both the short term and long term perspective in solving this problem. Differential Revision: https://reviews.llvm.org/D29427 llvm-svn: 293941
193 lines
6.3 KiB
C++
193 lines
6.3 KiB
C++
//===-- AddressResolverName.cpp ---------------------------------*- C++ -*-===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#include "lldb/Core/AddressResolverName.h"
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// C Includes
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// C++ Includes
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// Other libraries and framework includes
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// Project includes
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#include "lldb/Core/Log.h"
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#include "lldb/Core/Module.h"
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#include "lldb/Symbol/Function.h"
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#include "lldb/Symbol/Symbol.h"
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#include "lldb/Symbol/SymbolContext.h"
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#include "lldb/Utility/StreamString.h"
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using namespace lldb;
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using namespace lldb_private;
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AddressResolverName::AddressResolverName(const char *func_name,
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AddressResolver::MatchType type)
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: AddressResolver(), m_func_name(func_name), m_class_name(nullptr),
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m_regex(), m_match_type(type) {
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if (m_match_type == AddressResolver::Regexp) {
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if (!m_regex.Compile(m_func_name.GetStringRef())) {
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Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_BREAKPOINTS));
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if (log)
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log->Warning("function name regexp: \"%s\" did not compile.",
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m_func_name.AsCString());
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}
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}
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}
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AddressResolverName::AddressResolverName(RegularExpression &func_regex)
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: AddressResolver(), m_func_name(nullptr), m_class_name(nullptr),
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m_regex(func_regex), m_match_type(AddressResolver::Regexp) {}
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AddressResolverName::AddressResolverName(const char *class_name,
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const char *method,
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AddressResolver::MatchType type)
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: AddressResolver(), m_func_name(method), m_class_name(class_name),
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m_regex(), m_match_type(type) {}
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AddressResolverName::~AddressResolverName() = default;
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// FIXME: Right now we look at the module level, and call the module's
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// "FindFunctions".
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// Greg says he will add function tables, maybe at the CompileUnit level to
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// accelerate function
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// lookup. At that point, we should switch the depth to CompileUnit, and look
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// in these tables.
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Searcher::CallbackReturn
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AddressResolverName::SearchCallback(SearchFilter &filter,
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SymbolContext &context, Address *addr,
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bool containing) {
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SymbolContextList func_list;
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SymbolContextList sym_list;
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bool skip_prologue = true;
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uint32_t i;
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SymbolContext sc;
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Address func_addr;
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Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_BREAKPOINTS));
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if (m_class_name) {
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if (log)
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log->Warning("Class/method function specification not supported yet.\n");
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return Searcher::eCallbackReturnStop;
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}
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const bool include_symbols = false;
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const bool include_inlines = true;
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const bool append = false;
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switch (m_match_type) {
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case AddressResolver::Exact:
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if (context.module_sp) {
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context.module_sp->FindSymbolsWithNameAndType(m_func_name,
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eSymbolTypeCode, sym_list);
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context.module_sp->FindFunctions(m_func_name, nullptr,
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eFunctionNameTypeAuto, include_symbols,
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include_inlines, append, func_list);
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}
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break;
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case AddressResolver::Regexp:
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if (context.module_sp) {
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context.module_sp->FindSymbolsMatchingRegExAndType(
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m_regex, eSymbolTypeCode, sym_list);
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context.module_sp->FindFunctions(m_regex, include_symbols,
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include_inlines, append, func_list);
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}
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break;
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case AddressResolver::Glob:
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if (log)
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log->Warning("glob is not supported yet.");
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break;
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}
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// Remove any duplicates between the function list and the symbol list
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if (func_list.GetSize()) {
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for (i = 0; i < func_list.GetSize(); i++) {
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if (!func_list.GetContextAtIndex(i, sc))
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continue;
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if (sc.function == nullptr)
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continue;
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uint32_t j = 0;
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while (j < sym_list.GetSize()) {
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SymbolContext symbol_sc;
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if (sym_list.GetContextAtIndex(j, symbol_sc)) {
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if (symbol_sc.symbol && symbol_sc.symbol->ValueIsAddress()) {
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if (sc.function->GetAddressRange().GetBaseAddress() ==
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symbol_sc.symbol->GetAddressRef()) {
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sym_list.RemoveContextAtIndex(j);
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continue; // Don't increment j
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}
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}
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}
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j++;
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}
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}
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for (i = 0; i < func_list.GetSize(); i++) {
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if (func_list.GetContextAtIndex(i, sc)) {
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if (sc.function) {
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func_addr = sc.function->GetAddressRange().GetBaseAddress();
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addr_t byte_size = sc.function->GetAddressRange().GetByteSize();
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if (skip_prologue) {
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const uint32_t prologue_byte_size =
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sc.function->GetPrologueByteSize();
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if (prologue_byte_size) {
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func_addr.SetOffset(func_addr.GetOffset() + prologue_byte_size);
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byte_size -= prologue_byte_size;
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}
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}
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if (filter.AddressPasses(func_addr)) {
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AddressRange new_range(func_addr, byte_size);
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m_address_ranges.push_back(new_range);
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}
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}
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}
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}
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}
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for (i = 0; i < sym_list.GetSize(); i++) {
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if (sym_list.GetContextAtIndex(i, sc)) {
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if (sc.symbol && sc.symbol->ValueIsAddress()) {
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func_addr = sc.symbol->GetAddressRef();
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addr_t byte_size = sc.symbol->GetByteSize();
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if (skip_prologue) {
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const uint32_t prologue_byte_size = sc.symbol->GetPrologueByteSize();
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if (prologue_byte_size) {
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func_addr.SetOffset(func_addr.GetOffset() + prologue_byte_size);
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byte_size -= prologue_byte_size;
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}
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}
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if (filter.AddressPasses(func_addr)) {
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AddressRange new_range(func_addr, byte_size);
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m_address_ranges.push_back(new_range);
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}
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}
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}
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}
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return Searcher::eCallbackReturnContinue;
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}
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Searcher::Depth AddressResolverName::GetDepth() {
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return Searcher::eDepthModule;
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}
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void AddressResolverName::GetDescription(Stream *s) {
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s->PutCString("Address by function name: ");
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if (m_match_type == AddressResolver::Regexp)
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s->Printf("'%s' (regular expression)", m_regex.GetText().str().c_str());
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else
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s->Printf("'%s'", m_func_name.AsCString());
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}
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