forked from OSchip/llvm-project
498 lines
16 KiB
C++
498 lines
16 KiB
C++
//===-- ClangUserExpression.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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// C Includes
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#include <stdio.h>
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#if HAVE_SYS_TYPES_H
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# include <sys/types.h>
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#endif
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// C++ Includes
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#include <cstdlib>
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#include <string>
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#include <map>
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#include "lldb/Core/ConstString.h"
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#include "lldb/Core/Log.h"
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#include "lldb/Core/StreamString.h"
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#include "lldb/Core/ValueObjectConstResult.h"
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#include "lldb/Expression/ClangExpressionDeclMap.h"
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#include "lldb/Expression/ClangExpressionParser.h"
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#include "lldb/Expression/ClangFunction.h"
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#include "lldb/Expression/ASTResultSynthesizer.h"
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#include "lldb/Expression/ClangUserExpression.h"
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#include "lldb/Host/Host.h"
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#include "lldb/Symbol/VariableList.h"
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#include "lldb/Target/ExecutionContext.h"
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#include "lldb/Target/Process.h"
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#include "lldb/Target/StackFrame.h"
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#include "lldb/Target/Target.h"
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using namespace lldb_private;
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ClangUserExpression::ClangUserExpression (const char *expr,
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const char *expr_prefix) :
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m_expr_text(expr),
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m_expr_prefix(expr_prefix ? expr_prefix : ""),
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m_transformed_text(),
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m_jit_addr(LLDB_INVALID_ADDRESS),
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m_cplusplus(false),
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m_objectivec(false),
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m_needs_object_ptr(false)
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{
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}
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ClangUserExpression::~ClangUserExpression ()
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{
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}
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clang::ASTConsumer *
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ClangUserExpression::ASTTransformer (clang::ASTConsumer *passthrough)
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{
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return new ASTResultSynthesizer(passthrough);
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}
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void
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ClangUserExpression::ScanContext(ExecutionContext &exe_ctx)
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{
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if (!exe_ctx.frame)
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return;
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VariableList *vars = exe_ctx.frame->GetVariableList(false);
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if (!vars)
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return;
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if (vars->FindVariable(ConstString("this")).get())
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m_cplusplus = true;
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else if (vars->FindVariable(ConstString("self")).get())
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m_objectivec = true;
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}
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// This is a really nasty hack, meant to fix Objective-C expressions of the form
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// (int)[myArray count]. Right now, because the type information for count is
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// not available, [myArray count] returns id, which can't be directly cast to
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// int without causing a clang error.
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static void
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ApplyObjcCastHack(std::string &expr)
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{
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#define OBJC_CAST_HACK_FROM "(int)["
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#define OBJC_CAST_HACK_TO "(int)(long long)["
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size_t from_offset;
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while ((from_offset = expr.find(OBJC_CAST_HACK_FROM)) != expr.npos)
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expr.replace(from_offset, sizeof(OBJC_CAST_HACK_FROM) - 1, OBJC_CAST_HACK_TO);
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#undef OBJC_CAST_HACK_TO
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#undef OBJC_CAST_HACK_FROM
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}
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// Another hack, meant to allow use of unichar despite it not being available in
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// the type information. Although we could special-case it in type lookup,
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// hopefully we'll figure out a way to #include the same environment as is
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// present in the original source file rather than try to hack specific type
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// definitions in as needed.
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static void
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ApplyUnicharHack(std::string &expr)
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{
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#define UNICHAR_HACK_FROM "unichar"
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#define UNICHAR_HACK_TO "unsigned short"
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size_t from_offset;
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while ((from_offset = expr.find(UNICHAR_HACK_FROM)) != expr.npos)
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expr.replace(from_offset, sizeof(UNICHAR_HACK_FROM) - 1, UNICHAR_HACK_TO);
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#undef UNICHAR_HACK_TO
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#undef UNICHAR_HACK_FROM
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}
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bool
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ClangUserExpression::Parse (Stream &error_stream, ExecutionContext &exe_ctx)
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{
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lldb::LogSP log(lldb_private::GetLogIfAllCategoriesSet (LIBLLDB_LOG_EXPRESSIONS));
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ScanContext(exe_ctx);
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StreamString m_transformed_stream;
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////////////////////////////////////
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// Generate the expression
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//
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ApplyObjcCastHack(m_expr_text);
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//ApplyUnicharHack(m_expr_text);
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if (m_cplusplus)
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{
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m_transformed_stream.Printf("%s \n"
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"typedef unsigned short unichar; \n"
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"void \n"
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"$__lldb_class::%s(void *$__lldb_arg) \n"
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"{ \n"
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" %s; \n"
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"} \n",
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m_expr_prefix.c_str(),
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FunctionName(),
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m_expr_text.c_str());
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m_needs_object_ptr = true;
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}
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else
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{
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m_transformed_stream.Printf("%s \n"
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"typedef unsigned short unichar;\n"
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"void \n"
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"%s(void *$__lldb_arg) \n"
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"{ \n"
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" %s; \n"
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"} \n",
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m_expr_prefix.c_str(),
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FunctionName(),
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m_expr_text.c_str());
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}
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m_transformed_text = m_transformed_stream.GetData();
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if (log)
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log->Printf("Parsing the following code:\n%s", m_transformed_text.c_str());
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////////////////////////////////////
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// Set up the target and compiler
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//
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Target *target = exe_ctx.target;
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if (!target)
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{
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error_stream.PutCString ("error: invalid target\n");
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return false;
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}
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ConstString target_triple;
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target->GetTargetTriple (target_triple);
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if (!target_triple)
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target_triple = Host::GetTargetTriple ();
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if (!target_triple)
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{
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error_stream.PutCString ("error: invalid target triple\n");
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return false;
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}
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//////////////////////////
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// Parse the expression
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//
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m_expr_decl_map.reset(new ClangExpressionDeclMap(&exe_ctx));
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ClangExpressionParser parser(target_triple.GetCString(), *this);
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unsigned num_errors = parser.Parse (error_stream);
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if (num_errors)
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{
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error_stream.Printf ("error: %d errors parsing expression\n", num_errors);
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return false;
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}
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///////////////////////////////////////////////
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// Convert the output of the parser to DWARF
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//
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m_dwarf_opcodes.reset(new StreamString);
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m_dwarf_opcodes->SetByteOrder (lldb::eByteOrderHost);
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m_dwarf_opcodes->GetFlags ().Set (Stream::eBinary);
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m_local_variables.reset(new ClangExpressionVariableStore());
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Error dwarf_error = parser.MakeDWARF ();
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if (dwarf_error.Success())
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{
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if (log)
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log->Printf("Code can be interpreted.");
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return true;
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}
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//////////////////////////////////
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// JIT the output of the parser
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//
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m_dwarf_opcodes.reset();
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lldb::addr_t jit_end;
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Error jit_error = parser.MakeJIT (m_jit_addr, jit_end, exe_ctx);
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if (jit_error.Success())
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{
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return true;
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}
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else
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{
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error_stream.Printf ("error: expression can't be interpreted or run\n", num_errors);
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return false;
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}
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}
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bool
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ClangUserExpression::PrepareToExecuteJITExpression (Stream &error_stream,
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ExecutionContext &exe_ctx,
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lldb::addr_t &struct_address,
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lldb::addr_t &object_ptr)
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{
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lldb::LogSP log(lldb_private::GetLogIfAllCategoriesSet (LIBLLDB_LOG_EXPRESSIONS));
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if (m_jit_addr != LLDB_INVALID_ADDRESS)
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{
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Error materialize_error;
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if (m_needs_object_ptr && !(m_expr_decl_map->GetObjectPointer(object_ptr, &exe_ctx, materialize_error)))
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{
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error_stream.Printf("Couldn't get required object pointer: %s\n", materialize_error.AsCString());
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return false;
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}
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if (!m_expr_decl_map->Materialize(&exe_ctx, struct_address, materialize_error))
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{
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error_stream.Printf("Couldn't materialize struct: %s\n", materialize_error.AsCString());
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return false;
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}
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if (log)
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{
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log->Printf("Function address : 0x%llx", (uint64_t)m_jit_addr);
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if (m_needs_object_ptr)
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log->Printf("Object pointer : 0x%llx", (uint64_t)object_ptr);
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log->Printf("Structure address : 0x%llx", (uint64_t)struct_address);
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StreamString args;
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Error dump_error;
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if (struct_address)
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{
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if (!m_expr_decl_map->DumpMaterializedStruct(&exe_ctx, args, dump_error))
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{
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log->Printf("Couldn't extract variable values : %s", dump_error.AsCString("unknown error"));
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}
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else
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{
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log->Printf("Structure contents:\n%s", args.GetData());
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}
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}
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}
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}
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return true;
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}
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ThreadPlan *
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ClangUserExpression::GetThreadPlanToExecuteJITExpression (Stream &error_stream,
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ExecutionContext &exe_ctx)
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{
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lldb::addr_t struct_address;
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lldb::addr_t object_ptr = NULL;
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PrepareToExecuteJITExpression (error_stream, exe_ctx, struct_address, object_ptr);
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return ClangFunction::GetThreadPlanToCallFunction (exe_ctx,
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m_jit_addr,
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struct_address,
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error_stream,
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true,
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true,
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(m_needs_object_ptr ? &object_ptr : NULL));
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}
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bool
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ClangUserExpression::FinalizeJITExecution (Stream &error_stream,
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ExecutionContext &exe_ctx,
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ClangExpressionVariable *&result)
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{
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Error expr_error;
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if (!m_expr_decl_map->Dematerialize(&exe_ctx, result, expr_error))
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{
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error_stream.Printf ("Couldn't dematerialize struct : %s\n", expr_error.AsCString("unknown error"));
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return false;
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}
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return true;
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}
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bool
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ClangUserExpression::Execute (Stream &error_stream,
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ExecutionContext &exe_ctx,
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bool discard_on_error,
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ClangExpressionVariable *&result)
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{
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if (m_dwarf_opcodes.get())
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{
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// TODO execute the JITted opcodes
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error_stream.Printf("We don't currently support executing DWARF expressions");
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return false;
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}
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else if (m_jit_addr != LLDB_INVALID_ADDRESS)
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{
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lldb::addr_t struct_address;
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lldb::addr_t object_ptr = NULL;
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PrepareToExecuteJITExpression (error_stream, exe_ctx, struct_address, object_ptr);
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const bool stop_others = true;
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const bool try_all_threads = true;
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ClangFunction::ExecutionResults execution_result =
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ClangFunction::ExecuteFunction (exe_ctx,
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m_jit_addr,
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struct_address,
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stop_others,
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try_all_threads,
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discard_on_error,
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10000000,
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error_stream,
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(m_needs_object_ptr ? &object_ptr : NULL));
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if (execution_result != ClangFunction::eExecutionCompleted)
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{
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const char *result_name;
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switch (execution_result)
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{
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case ClangFunction::eExecutionCompleted:
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result_name = "eExecutionCompleted";
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break;
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case ClangFunction::eExecutionDiscarded:
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result_name = "eExecutionDiscarded";
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break;
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case ClangFunction::eExecutionInterrupted:
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result_name = "eExecutionInterrupted";
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break;
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case ClangFunction::eExecutionSetupError:
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result_name = "eExecutionSetupError";
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break;
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case ClangFunction::eExecutionTimedOut:
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result_name = "eExecutionTimedOut";
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break;
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}
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error_stream.Printf ("Couldn't execute function; result was %s\n", result_name);
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return false;
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}
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return FinalizeJITExecution (error_stream, exe_ctx, result);
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}
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else
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{
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error_stream.Printf("Expression can't be run; neither DWARF nor a JIT compiled function is present");
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return false;
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}
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}
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StreamString &
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ClangUserExpression::DwarfOpcodeStream ()
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{
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if (!m_dwarf_opcodes.get())
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m_dwarf_opcodes.reset(new StreamString());
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return *m_dwarf_opcodes.get();
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}
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lldb::ValueObjectSP
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ClangUserExpression::Evaluate (ExecutionContext &exe_ctx,
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bool discard_on_error,
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const char *expr_cstr,
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const char *expr_prefix)
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{
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Error error;
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lldb::ValueObjectSP result_valobj_sp;
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if (exe_ctx.process == NULL)
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return result_valobj_sp;
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if (!exe_ctx.process->GetDynamicCheckers())
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{
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DynamicCheckerFunctions *dynamic_checkers = new DynamicCheckerFunctions();
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StreamString install_errors;
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if (!dynamic_checkers->Install(install_errors, exe_ctx))
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{
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if (install_errors.GetString().empty())
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error.SetErrorString ("couldn't install checkers, unknown error");
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else
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error.SetErrorString (install_errors.GetString().c_str());
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result_valobj_sp.reset (new ValueObjectConstResult (error));
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return result_valobj_sp;
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}
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exe_ctx.process->SetDynamicCheckers(dynamic_checkers);
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}
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ClangUserExpression user_expression (expr_cstr, expr_prefix);
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StreamString error_stream;
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if (!user_expression.Parse (error_stream, exe_ctx))
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{
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if (error_stream.GetString().empty())
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error.SetErrorString ("expression failed to parse, unknown error");
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else
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error.SetErrorString (error_stream.GetString().c_str());
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}
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else
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{
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ClangExpressionVariable *expr_result = NULL;
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error_stream.GetString().clear();
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if (!user_expression.Execute (error_stream, exe_ctx, discard_on_error, expr_result))
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{
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if (error_stream.GetString().empty())
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error.SetErrorString ("expression failed to execute, unknown error");
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else
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error.SetErrorString (error_stream.GetString().c_str());
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}
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else
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{
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// TODO: seems weird to get a pointer to a result object back from
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// a function. Do we own it? Feels like we do, but from looking at the
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// code we don't. Might be best to make this a reference and state
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// explicitly that we don't own it when we get a reference back from
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// the execute?
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if (expr_result)
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{
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result_valobj_sp = expr_result->GetExpressionResult (&exe_ctx);
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}
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else
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{
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error.SetErrorString ("Expression did not return a result");
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}
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}
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}
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if (result_valobj_sp.get() == NULL)
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result_valobj_sp.reset (new ValueObjectConstResult (error));
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return result_valobj_sp;
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}
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