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Chris Lattner24943d22010-06-08 16:52:24 +00001//===-- ClangFunction.cpp ---------------------------------------*- C++ -*-===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9
10
11// C Includes
12// C++ Includes
13// Other libraries and framework includes
Chris Lattner24943d22010-06-08 16:52:24 +000014#include "clang/AST/ASTContext.h"
15#include "clang/AST/RecordLayout.h"
Greg Claytonc4f51102010-07-02 18:39:06 +000016#include "clang/CodeGen/CodeGenAction.h"
17#include "clang/CodeGen/ModuleBuilder.h"
18#include "clang/Frontend/CompilerInstance.h"
19#include "llvm/ADT/StringRef.h"
20#include "llvm/ExecutionEngine/ExecutionEngine.h"
Chris Lattner24943d22010-06-08 16:52:24 +000021#include "llvm/ExecutionEngine/JIT.h"
22#include "llvm/Module.h"
Chris Lattner24943d22010-06-08 16:52:24 +000023
24// Project includes
25#include "lldb/Expression/ClangFunction.h"
26#include "lldb/Symbol/Type.h"
27#include "lldb/Core/DataExtractor.h"
28#include "lldb/Core/ValueObject.h"
29#include "lldb/Core/ValueObjectList.h"
30#include "lldb/Interpreter/CommandReturnObject.h"
31#include "lldb/Symbol/ClangASTContext.h"
32#include "lldb/Symbol/Function.h"
33#include "lldb/Target/ExecutionContext.h"
34#include "lldb/Target/Process.h"
35#include "lldb/Target/Thread.h"
36#include "lldb/Target/ThreadPlan.h"
37#include "lldb/Target/ThreadPlanCallFunction.h"
38#include "lldb/Core/Log.h"
39
40using namespace lldb_private;
41//----------------------------------------------------------------------
42// ClangFunction constructor
43//----------------------------------------------------------------------
44ClangFunction::ClangFunction(const char *target_triple, ClangASTContext *ast_context, void *return_qualtype, const Address& functionAddress, const ValueList &arg_value_list) :
45 ClangExpression (target_triple, NULL),
46 m_function_addr (functionAddress),
47 m_function_ptr (NULL),
48 m_arg_values (arg_value_list),
49 m_clang_ast_context (ast_context),
50 m_function_return_qual_type(return_qualtype),
51 m_wrapper_function_name ("__lldb_caller_function"),
52 m_wrapper_struct_name ("__lldb_caller_struct"),
53 m_return_offset(0),
54 m_compiled (false),
55 m_JITted (false)
56{
57}
58
59ClangFunction::ClangFunction(const char *target_triple, Function &function, ClangASTContext *ast_context, const ValueList &arg_value_list) :
60 ClangExpression (target_triple, NULL),
61 m_function_ptr (&function),
62 m_arg_values (arg_value_list),
63 m_clang_ast_context (ast_context),
64 m_function_return_qual_type (NULL),
65 m_wrapper_function_name ("__lldb_function_caller"),
66 m_wrapper_struct_name ("__lldb_caller_struct"),
67 m_return_offset(0),
68 m_compiled (false),
69 m_JITted (false)
70{
71 m_function_addr = m_function_ptr->GetAddressRange().GetBaseAddress();
72 m_function_return_qual_type = m_function_ptr->GetReturnType().GetOpaqueClangQualType();
73}
74
75//----------------------------------------------------------------------
76// Destructor
77//----------------------------------------------------------------------
78ClangFunction::~ClangFunction()
79{
80}
81
82unsigned
83ClangFunction::CompileFunction (Stream &errors)
84{
85 // FIXME: How does clang tell us there's no return value? We need to handle that case.
86 unsigned num_errors = 0;
87
88 if (!m_compiled)
89 {
90 std::string return_type_str = ClangASTContext::GetTypeName(m_function_return_qual_type);
91
92 // Cons up the function we're going to wrap our call in, then compile it...
93 // We declare the function "extern "C"" because the compiler might be in C++
94 // mode which would mangle the name and then we couldn't find it again...
95 std::string expression;
96 expression.append ("extern \"C\" void ");
97 expression.append (m_wrapper_function_name);
98 expression.append (" (void *input)\n{\n struct ");
99 expression.append (m_wrapper_struct_name);
100 expression.append (" \n {\n");
101 expression.append (" ");
102 expression.append (return_type_str);
103 expression.append (" (*fn_ptr) (");
104
105 // Get the number of arguments. If we have a function type and it is prototyped,
106 // trust that, otherwise use the values we were given.
107
108 // FIXME: This will need to be extended to handle Variadic functions. We'll need
109 // to pull the defined arguments out of the function, then add the types from the
110 // arguments list for the variable arguments.
111
112 size_t num_args = -1;
113 bool trust_function = false;
114 // GetArgumentCount returns -1 for an unprototyped function.
115 if (m_function_ptr)
116 {
117 num_args = m_function_ptr->GetArgumentCount();
118 if (num_args != -1)
119 trust_function = true;
120 }
121
122 if (num_args == -1)
123 num_args = m_arg_values.GetSize();
124
125 std::string args_buffer; // This one stores the definition of all the args in "struct caller".
126 std::string args_list_buffer; // This one stores the argument list called from the structure.
127 for (int i = 0; i < num_args; i++)
128 {
129 const char *type_string;
130 std::string type_stdstr;
131
132 if (trust_function)
133 {
134 type_string = m_function_ptr->GetArgumentTypeAtIndex(i).GetName().AsCString();
135 }
136 else
137 {
138 Value *arg_value = m_arg_values.GetValueAtIndex(i);
139 void *clang_qual_type = arg_value->GetOpaqueClangQualType ();
140 if (clang_qual_type != NULL)
141 {
142 type_stdstr = ClangASTContext::GetTypeName(clang_qual_type);
143 type_string = type_stdstr.c_str();
144 }
145 else
146 {
147 errors.Printf("Could not determine type of input value %d.", i);
148 return 1;
149 }
150 }
151
152
153 expression.append (type_string);
154 if (i < num_args - 1)
155 expression.append (", ");
156
157 char arg_buf[32];
158 args_buffer.append (" ");
159 args_buffer.append (type_string);
160 snprintf(arg_buf, 31, "arg_%d", i);
161 args_buffer.push_back (' ');
162 args_buffer.append (arg_buf);
163 args_buffer.append (";\n");
164
165 args_list_buffer.append ("__lldb_fn_data->");
166 args_list_buffer.append (arg_buf);
167 if (i < num_args - 1)
168 args_list_buffer.append (", ");
169
170 }
171 expression.append (");\n"); // Close off the function calling prototype.
172
173 expression.append (args_buffer);
174
175 expression.append (" ");
176 expression.append (return_type_str);
177 expression.append (" return_value;");
178 expression.append ("\n };\n struct ");
179 expression.append (m_wrapper_struct_name);
180 expression.append ("* __lldb_fn_data = (struct ");
181 expression.append (m_wrapper_struct_name);
182 expression.append (" *) input;\n");
183
184 expression.append (" __lldb_fn_data->return_value = __lldb_fn_data->fn_ptr (");
185 expression.append (args_list_buffer);
186 expression.append (");\n}\n");
187
188 Log *log = lldb_private::GetLogIfAllCategoriesSet (LIBLLDB_LOG_STEP);
189 if (log)
190 log->Printf ("Expression: \n\n%s\n\n", expression.c_str());
191
192 // Okay, now compile this expression:
193 num_errors = ParseBareExpression (expression.c_str(), errors);
194 m_compiled = (num_errors == 0);
195
196 if (m_compiled)
197 {
198 using namespace clang;
199 CompilerInstance *compiler_instance = GetCompilerInstance();
200 ASTContext &ast_context = compiler_instance->getASTContext();
201
202 DeclarationName wrapper_func_name(&ast_context.Idents.get(m_wrapper_function_name.c_str()));
203 FunctionDecl::lookup_result func_lookup = ast_context.getTranslationUnitDecl()->lookup(wrapper_func_name);
204 if (func_lookup.first == func_lookup.second)
205 return false;
206
207 FunctionDecl *wrapper_func = dyn_cast<FunctionDecl> (*(func_lookup.first));
208 if (!wrapper_func)
209 return false;
210
211 DeclarationName wrapper_struct_name(&ast_context.Idents.get(m_wrapper_struct_name.c_str()));
212 RecordDecl::lookup_result struct_lookup = wrapper_func->lookup(wrapper_struct_name);
213 if (struct_lookup.first == struct_lookup.second)
214 return false;
215
216 RecordDecl *wrapper_struct = dyn_cast<RecordDecl>(*(struct_lookup.first));
217
218 if (!wrapper_struct)
219 return false;
220
221 m_struct_layout = &ast_context.getASTRecordLayout (wrapper_struct);
222 if (!m_struct_layout)
223 {
224 m_compiled = false;
225 return 1;
226 }
227 m_return_offset = m_struct_layout->getFieldOffset(m_struct_layout->getFieldCount() - 1);
228 m_return_size = (m_struct_layout->getDataSize() - m_return_offset)/8;
229 }
230 }
231
232 return num_errors;
233}
234
235bool
236ClangFunction::WriteFunctionWrapper (ExecutionContext &exc_context, Stream &errors)
237{
238 Process *process = exc_context.process;
239
240 if (process == NULL)
241 return false;
242
243 if (!m_JITted)
244 {
245 // Next we should JIT it and insert the result into the target program.
246 if (!JITFunction (exc_context, m_wrapper_function_name.c_str()))
247 return false;
248
249 if (!WriteJITCode (exc_context))
250 return false;
251
252 m_JITted = true;
253 }
254
255 // Next get the call address for the function:
256 m_wrapper_fun_addr = GetFunctionAddress (m_wrapper_function_name.c_str());
257 if (m_wrapper_fun_addr == LLDB_INVALID_ADDRESS)
258 return false;
259
260 return true;
261}
262
263bool
264ClangFunction::WriteFunctionArguments (ExecutionContext &exc_context, lldb::addr_t &args_addr_ref, Stream &errors)
265{
266 return WriteFunctionArguments(exc_context, args_addr_ref, m_function_addr, m_arg_values, errors);
267}
268
269// FIXME: Assure that the ValueList we were passed in is consistent with the one that defined this function.
270
271bool
272ClangFunction::WriteFunctionArguments (ExecutionContext &exc_context, lldb::addr_t &args_addr_ref, Address function_address, ValueList &arg_values, Stream &errors)
273{
274 // Otherwise, allocate space for the argument passing struct, and write it.
275 // We use the information in the expression parser AST to
276 // figure out how to do this...
277 // We should probably transcode this in this object so we can ditch the compiler instance
278 // and all its associated data, and just keep the JITTed bytes.
279
280 Error error;
281 using namespace clang;
282 ExecutionResults return_value = eExecutionSetupError;
283
284 Process *process = exc_context.process;
285
286 if (process == NULL)
287 return return_value;
288
289 uint64_t struct_size = m_struct_layout->getSize()/8; // Clang returns sizes in bytes.
290
291 if (args_addr_ref == LLDB_INVALID_ADDRESS)
292 {
293 args_addr_ref = process->AllocateMemory(struct_size, lldb::ePermissionsReadable|lldb::ePermissionsWritable, error);
294 if (args_addr_ref == LLDB_INVALID_ADDRESS)
295 return false;
296 m_wrapper_args_addrs.push_back (args_addr_ref);
297 }
298 else
299 {
300 // Make sure this is an address that we've already handed out.
301 if (find (m_wrapper_args_addrs.begin(), m_wrapper_args_addrs.end(), args_addr_ref) == m_wrapper_args_addrs.end())
302 {
303 return false;
304 }
305 }
306
307 // FIXME: This is fake, and just assumes that it matches that architecture.
308 // Make a data extractor and put the address into the right byte order & size.
309
310 uint64_t fun_addr = function_address.GetLoadAddress(exc_context.process);
311 int first_offset = m_struct_layout->getFieldOffset(0)/8;
312 process->WriteMemory(args_addr_ref + first_offset, &fun_addr, 8, error);
313
314 // FIXME: We will need to extend this for Variadic functions.
315
316 Error value_error;
317
318 size_t num_args = arg_values.GetSize();
319 if (num_args != m_arg_values.GetSize())
320 {
321 errors.Printf ("Wrong number of arguments - was: %d should be: %d", num_args, m_arg_values.GetSize());
322 return false;
323 }
324
325 for (int i = 0; i < num_args; i++)
326 {
327 // FIXME: We should sanity check sizes.
328
329 int offset = m_struct_layout->getFieldOffset(i+1)/8; // Clang sizes are in bytes.
330 Value *arg_value = arg_values.GetValueAtIndex(i);
331
332 // FIXME: For now just do scalars:
333
334 // Special case: if it's a pointer, don't do anything (the ABI supports passing cstrings)
335
336 if (arg_value->GetValueType() == Value::eValueTypeHostAddress &&
337 arg_value->GetContextType() == Value::eContextTypeOpaqueClangQualType &&
338 ClangASTContext::IsPointerType(arg_value->GetValueOpaqueClangQualType()))
339 continue;
340
341 const Scalar &arg_scalar = arg_value->ResolveValue(&exc_context, m_clang_ast_context->getASTContext());
342
343 int byte_size = arg_scalar.GetByteSize();
344 std::vector<uint8_t> buffer;
345 buffer.resize(byte_size);
346 DataExtractor value_data;
347 arg_scalar.GetData (value_data);
348 value_data.ExtractBytes(0, byte_size, process->GetByteOrder(), buffer.data());
349 process->WriteMemory(args_addr_ref + offset, buffer.data(), byte_size, error);
350 }
351
352 return true;
353}
354
355bool
356ClangFunction::InsertFunction (ExecutionContext &exc_context, lldb::addr_t &args_addr_ref, Stream &errors)
357{
358 using namespace clang;
359
360 if (CompileFunction(errors) != 0)
361 return false;
362 if (!WriteFunctionWrapper(exc_context, errors))
363 return false;
364 if (!WriteFunctionArguments(exc_context, args_addr_ref, errors))
365 return false;
366
367 Log *log = lldb_private::GetLogIfAllCategoriesSet (LIBLLDB_LOG_STEP);
368 if (log)
369 log->Printf ("Call Address: 0x%llx Struct Address: 0x%llx.\n", m_wrapper_fun_addr, args_addr_ref);
370
371 return true;
372}
373
374ThreadPlan *
375ClangFunction::GetThreadPlanToCallFunction (ExecutionContext &exc_context, lldb::addr_t &args_addr, Stream &errors, bool stop_others, bool discard_on_error)
376{
377 // FIXME: Use the errors Stream for better error reporting.
378
379 Process *process = exc_context.process;
380
381 if (process == NULL)
382 {
383 errors.Printf("Can't call a function without a process.");
384 return NULL;
385 }
386
387 // Okay, now run the function:
388
389 Address wrapper_address (NULL, m_wrapper_fun_addr);
390 ThreadPlan *new_plan = new ThreadPlanCallFunction (*exc_context.thread,
391 wrapper_address,
392 args_addr,
393 stop_others, discard_on_error);
394 return new_plan;
395}
396
397bool
398ClangFunction::FetchFunctionResults (ExecutionContext &exc_context, lldb::addr_t args_addr, Value &ret_value)
399{
400 // Read the return value - it is the last field in the struct:
401 // FIXME: How does clang tell us there's no return value? We need to handle that case.
402
403 std::vector<uint8_t> data_buffer;
404 data_buffer.resize(m_return_size);
405 Process *process = exc_context.process;
406 Error error;
407 size_t bytes_read = process->ReadMemory(args_addr + m_return_offset/8, data_buffer.data(), m_return_size, error);
408
409 if (bytes_read == 0)
410 {
411 return false;
412 }
413
414 if (bytes_read < m_return_size)
415 return false;
416
417 DataExtractor data(data_buffer.data(), m_return_size, process->GetByteOrder(), process->GetAddressByteSize());
418 // FIXME: Assuming an integer scalar for now:
419
420 uint32_t offset = 0;
421 uint64_t return_integer = data.GetMaxU64(&offset, m_return_size);
422
423 ret_value.SetContext (Value::eContextTypeOpaqueClangQualType, m_function_return_qual_type);
424 ret_value.SetValueType(Value::eValueTypeScalar);
425 ret_value.GetScalar() = return_integer;
426 return true;
427}
428
429void
430ClangFunction::DeallocateFunctionResults (ExecutionContext &exc_context, lldb::addr_t args_addr)
431{
432 std::list<lldb::addr_t>::iterator pos;
433 pos = std::find(m_wrapper_args_addrs.begin(), m_wrapper_args_addrs.end(), args_addr);
434 if (pos != m_wrapper_args_addrs.end())
435 m_wrapper_args_addrs.erase(pos);
436
437 exc_context.process->DeallocateMemory(args_addr);
438}
439
440ClangFunction::ExecutionResults
441ClangFunction::ExecuteFunction(ExecutionContext &exc_context, Stream &errors, Value &results)
442{
443 return ExecuteFunction (exc_context, errors, 1000, true, results);
444}
445
446ClangFunction::ExecutionResults
447ClangFunction::ExecuteFunction(ExecutionContext &exc_context, Stream &errors, bool stop_others, Value &results)
448{
449 return ExecuteFunction (exc_context, NULL, errors, stop_others, NULL, false, results);
450}
451
452ClangFunction::ExecutionResults
453ClangFunction::ExecuteFunction(
454 ExecutionContext &exc_context,
455 Stream &errors,
456 uint32_t single_thread_timeout_usec,
457 bool try_all_threads,
458 Value &results)
459{
460 return ExecuteFunction (exc_context, NULL, errors, true, single_thread_timeout_usec, try_all_threads, results);
461}
462
463ClangFunction::ExecutionResults
464ClangFunction::ExecuteFunction(
465 ExecutionContext &exc_context,
466 lldb::addr_t *args_addr_ptr,
467 Stream &errors,
468 bool stop_others,
469 uint32_t single_thread_timeout_usec,
470 bool try_all_threads,
471 Value &results)
472{
473 using namespace clang;
474 ExecutionResults return_value = eExecutionSetupError;
475 Process *process = exc_context.process;
476
477 lldb::addr_t args_addr;
478
479 if (args_addr_ptr != NULL)
480 args_addr = *args_addr_ptr;
481 else
482 args_addr = LLDB_INVALID_ADDRESS;
483
484 if (CompileFunction(errors) != 0)
485 return eExecutionSetupError;
486
487 if (args_addr == LLDB_INVALID_ADDRESS)
488 {
489 if (!InsertFunction(exc_context, args_addr, errors))
490 return eExecutionSetupError;
491 }
492
493
494 lldb::ThreadPlanSP call_plan_sp(GetThreadPlanToCallFunction(exc_context, args_addr, errors, stop_others, false));
495
496 ThreadPlanCallFunction *call_plan_ptr = static_cast<ThreadPlanCallFunction *> (call_plan_sp.get());
497
498 if (args_addr_ptr != NULL)
499 *args_addr_ptr = args_addr;
500
501 if (call_plan_sp == NULL)
502 return return_value;
503
504 call_plan_sp->SetPrivate(true);
505 exc_context.thread->QueueThreadPlan(call_plan_sp, true);
506
507 // We need to call the function synchronously, so spin waiting for it to return.
508 // If we get interrupted while executing, we're going to lose our context, and
509 // won't be able to gather the result at this point.
510
511 TimeValue* timeout_ptr = NULL;
512 TimeValue real_timeout;
513 if (single_thread_timeout_usec != 0)
514 {
515 real_timeout = TimeValue::Now();
516 real_timeout.OffsetWithMicroSeconds(single_thread_timeout_usec);
517 timeout_ptr = &real_timeout;
518 }
519 process->Resume ();
520
521
522 while (1)
523 {
524 lldb::EventSP event_sp;
525
526 // Now wait for the process to stop again:
527 // FIXME: Probably want a time out.
528 lldb::StateType stop_state = process->WaitForStateChangedEvents (timeout_ptr, event_sp);
529 if (stop_state == lldb::eStateInvalid && timeout_ptr != NULL)
530 {
531 // Right now this is the only way to tell we've timed out...
532 // We should interrupt the process here...
533 // Not really sure what to do if Halt fails here...
534 Log *log = lldb_private::GetLogIfAllCategoriesSet (LIBLLDB_LOG_STEP);
535 if (log)
536 log->Printf ("Running function with timeout: %d timed out, trying with all threads enabled.", single_thread_timeout_usec);
537
538 if (process->Halt().Success())
539 {
540 timeout_ptr = NULL;
541
542 lldb::StateType stop_state = process->WaitForStateChangedEvents (timeout_ptr, event_sp);
543 if (stop_state == lldb::eStateInvalid)
544 {
545 errors.Printf ("Got an invalid stop state after halt.");
546 }
547 else if (stop_state != lldb::eStateStopped)
548 {
549 StreamString s;
550 event_sp->Dump (&s);
551
552 errors.Printf("Didn't get a stopped event after Halting the target, got: \"%s\"", s.GetData());
553 }
554
555 if (try_all_threads)
556 {
557 // Between the time that we got the timeout and the time we halted, but target
558 // might have actually completed the plan. If so, we're done.
559 if (exc_context.thread->IsThreadPlanDone (call_plan_sp.get()))
560 {
561 return_value = eExecutionCompleted;
562 break;
563 }
564
565
566 call_plan_ptr->SetStopOthers (false);
567 process->Resume();
568 continue;
569 }
570 else
571 return eExecutionInterrupted;
572 }
573 }
574 if (stop_state == lldb::eStateRunning || stop_state == lldb::eStateStepping)
575 continue;
576
577 if (exc_context.thread->IsThreadPlanDone (call_plan_sp.get()))
578 {
579 return_value = eExecutionCompleted;
580 break;
581 }
582 else if (exc_context.thread->WasThreadPlanDiscarded (call_plan_sp.get()))
583 {
584 return_value = eExecutionDiscarded;
585 break;
586 }
587 else
588 {
589 return_value = eExecutionInterrupted;
590 break;
591 }
592
593 }
594
595 if (return_value != eExecutionCompleted)
596 return return_value;
597
598 FetchFunctionResults(exc_context, args_addr, results);
599
600 if (args_addr_ptr == NULL)
601 DeallocateFunctionResults(exc_context, args_addr);
602
603 return eExecutionCompleted;
604}
605
606ClangFunction::ExecutionResults
607ClangFunction::ExecuteFunctionWithABI(ExecutionContext &exc_context, Stream &errors, Value &results)
608{
609 // FIXME: Use the errors Stream for better error reporting.
610 using namespace clang;
611 ExecutionResults return_value = eExecutionSetupError;
612
613 Process *process = exc_context.process;
614
615 if (process == NULL)
616 {
617 errors.Printf("Can't call a function without a process.");
618 return return_value;
619 }
620
621 //unsigned int num_args = m_arg_values.GetSize();
622 //unsigned int arg_index;
623
624 //for (arg_index = 0; arg_index < num_args; ++arg_index)
625 // m_arg_values.GetValueAtIndex(arg_index)->ResolveValue(&exc_context, GetASTContext());
626
627 ThreadPlan *call_plan = exc_context.thread->QueueThreadPlanForCallFunction (false,
628 m_function_addr,
629 m_arg_values,
630 true);
631 if (call_plan == NULL)
632 return return_value;
633
634 call_plan->SetPrivate(true);
635
636 // We need to call the function synchronously, so spin waiting for it to return.
637 // If we get interrupted while executing, we're going to lose our context, and
638 // won't be able to gather the result at this point.
639
640 process->Resume ();
641
642 while (1)
643 {
644 lldb::EventSP event_sp;
645
646 // Now wait for the process to stop again:
647 // FIXME: Probably want a time out.
648 lldb::StateType stop_state = process->WaitForStateChangedEvents (NULL, event_sp);
649 if (stop_state == lldb::eStateRunning || stop_state == lldb::eStateStepping)
650 continue;
651
652 if (exc_context.thread->IsThreadPlanDone (call_plan))
653 {
654 return_value = eExecutionCompleted;
655 break;
656 }
657 else if (exc_context.thread->WasThreadPlanDiscarded (call_plan))
658 {
659 return_value = eExecutionDiscarded;
660 break;
661 }
662 else
663 {
664 return_value = eExecutionInterrupted;
665 break;
666 }
667
668 }
669
670 return eExecutionCompleted;
671}