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721 lines
22 KiB
721 lines
22 KiB
#!/usr/bin/python |
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# |
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# Copyright (C) 2013 The Android Open Source Project |
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# |
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# Licensed under the Apache License, Version 2.0 (the "License"); |
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# you may not use this file except in compliance with the License. |
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# You may obtain a copy of the License at |
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# |
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# http://www.apache.org/licenses/LICENSE-2.0 |
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# |
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# Unless required by applicable law or agreed to in writing, software |
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# distributed under the License is distributed on an "AS IS" BASIS, |
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
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# See the License for the specific language governing permissions and |
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# limitations under the License. |
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"""Module for looking up symbolic debugging information. |
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The information can include symbol names, offsets, and source locations. |
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""" |
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import atexit |
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import glob |
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import os |
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import platform |
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import re |
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import signal |
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import subprocess |
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import unittest |
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ANDROID_BUILD_TOP = os.environ["ANDROID_BUILD_TOP"] |
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if not ANDROID_BUILD_TOP: |
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ANDROID_BUILD_TOP = "." |
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def FindSymbolsDir(): |
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saveddir = os.getcwd() |
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os.chdir(ANDROID_BUILD_TOP) |
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try: |
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cmd = ("CALLED_FROM_SETUP=true BUILD_SYSTEM=build/core " |
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"SRC_TARGET_DIR=build/target make -f build/core/config.mk " |
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"dumpvar-abs-TARGET_OUT_UNSTRIPPED") |
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stream = subprocess.Popen(cmd, stdout=subprocess.PIPE, shell=True).stdout |
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return os.path.join(ANDROID_BUILD_TOP, stream.read().strip()) |
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finally: |
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os.chdir(saveddir) |
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SYMBOLS_DIR = FindSymbolsDir() |
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ARCH = None |
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# These are private. Do not access them from other modules. |
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_CACHED_TOOLCHAIN = None |
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_CACHED_TOOLCHAIN_ARCH = None |
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# Caches for symbolized information. |
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_SYMBOL_INFORMATION_ADDR2LINE_CACHE = {} |
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_SYMBOL_INFORMATION_OBJDUMP_CACHE = {} |
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_SYMBOL_DEMANGLING_CACHE = {} |
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# Caches for pipes to subprocesses. |
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class ProcessCache: |
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_cmd2pipe = {} |
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_lru = [] |
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# Max number of open pipes. |
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_PIPE_MAX_OPEN = 10 |
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def GetProcess(self, cmd): |
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cmd_tuple = tuple(cmd) # Need to use a tuple as lists can't be dict keys. |
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# Pipe already available? |
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if cmd_tuple in self._cmd2pipe: |
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pipe = self._cmd2pipe[cmd_tuple] |
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# Update LRU. |
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self._lru = [(cmd_tuple, pipe)] + [i for i in self._lru if i[0] != cmd_tuple] |
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return pipe |
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# Not cached, yet. Open a new one. |
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# Check if too many are open, close the old ones. |
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while len(self._lru) >= self._PIPE_MAX_OPEN: |
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open_cmd, open_pipe = self._lru.pop() |
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del self._cmd2pipe[open_cmd] |
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self.TerminateProcess(open_pipe) |
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# Create and put into cache. |
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pipe = self.SpawnProcess(cmd) |
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self._cmd2pipe[cmd_tuple] = pipe |
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self._lru = [(cmd_tuple, pipe)] + self._lru |
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return pipe |
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def SpawnProcess(self, cmd): |
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return subprocess.Popen(cmd, stdin=subprocess.PIPE, stdout=subprocess.PIPE) |
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def TerminateProcess(self, pipe): |
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pipe.stdin.close() |
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pipe.stdout.close() |
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pipe.terminate() |
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pipe.wait() |
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def KillAllProcesses(self): |
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for _, open_pipe in self._lru: |
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self.TerminateProcess(open_pipe) |
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_cmd2pipe = {} |
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_lru = [] |
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_PIPE_ADDR2LINE_CACHE = ProcessCache() |
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_PIPE_CPPFILT_CACHE = ProcessCache() |
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# Process cache cleanup on shutdown. |
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def CloseAllPipes(): |
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_PIPE_ADDR2LINE_CACHE.KillAllProcesses() |
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_PIPE_CPPFILT_CACHE.KillAllProcesses() |
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atexit.register(CloseAllPipes) |
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def PipeTermHandler(signum, frame): |
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CloseAllPipes() |
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os._exit(0) |
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for sig in (signal.SIGABRT, signal.SIGINT, signal.SIGTERM): |
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signal.signal(sig, PipeTermHandler) |
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def ToolPath(tool, toolchain=None): |
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"""Return a fully-qualified path to the specified tool""" |
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if not toolchain: |
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toolchain = FindToolchain() |
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return glob.glob(os.path.join(toolchain, "*-" + tool))[0] |
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def FindToolchain(): |
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"""Returns the toolchain matching ARCH.""" |
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global _CACHED_TOOLCHAIN, _CACHED_TOOLCHAIN_ARCH |
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if _CACHED_TOOLCHAIN is not None and _CACHED_TOOLCHAIN_ARCH == ARCH: |
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return _CACHED_TOOLCHAIN |
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# We use slightly different names from GCC, and there's only one toolchain |
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# for x86/x86_64. Note that these are the names of the top-level directory |
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# rather than the _different_ names used lower down the directory hierarchy! |
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gcc_dir = ARCH |
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if gcc_dir == "arm64": |
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gcc_dir = "aarch64" |
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elif gcc_dir == "mips64": |
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gcc_dir = "mips" |
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elif gcc_dir == "x86_64": |
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gcc_dir = "x86" |
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os_name = platform.system().lower(); |
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available_toolchains = glob.glob("%s/prebuilts/gcc/%s-x86/%s/*-linux-*/bin/" % (ANDROID_BUILD_TOP, os_name, gcc_dir)) |
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if len(available_toolchains) == 0: |
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raise Exception("Could not find tool chain for %s" % (ARCH)) |
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toolchain = sorted(available_toolchains)[-1] |
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if not os.path.exists(ToolPath("addr2line", toolchain)): |
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raise Exception("No addr2line for %s" % (toolchain)) |
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_CACHED_TOOLCHAIN = toolchain |
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_CACHED_TOOLCHAIN_ARCH = ARCH |
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print "Using %s toolchain from: %s" % (_CACHED_TOOLCHAIN_ARCH, _CACHED_TOOLCHAIN) |
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return _CACHED_TOOLCHAIN |
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def SymbolInformation(lib, addr): |
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"""Look up symbol information about an address. |
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Args: |
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lib: library (or executable) pathname containing symbols |
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addr: string hexidecimal address |
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Returns: |
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A list of the form [(source_symbol, source_location, |
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object_symbol_with_offset)]. |
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If the function has been inlined then the list may contain |
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more than one element with the symbols for the most deeply |
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nested inlined location appearing first. The list is |
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always non-empty, even if no information is available. |
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Usually you want to display the source_location and |
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object_symbol_with_offset from the last element in the list. |
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""" |
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info = SymbolInformationForSet(lib, set([addr])) |
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return (info and info.get(addr)) or [(None, None, None)] |
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def SymbolInformationForSet(lib, unique_addrs): |
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"""Look up symbol information for a set of addresses from the given library. |
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Args: |
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lib: library (or executable) pathname containing symbols |
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unique_addrs: set of hexidecimal addresses |
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Returns: |
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A dictionary of the form {addr: [(source_symbol, source_location, |
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object_symbol_with_offset)]} where each address has a list of |
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associated symbols and locations. The list is always non-empty. |
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If the function has been inlined then the list may contain |
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more than one element with the symbols for the most deeply |
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nested inlined location appearing first. The list is |
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always non-empty, even if no information is available. |
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|
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Usually you want to display the source_location and |
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object_symbol_with_offset from the last element in the list. |
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""" |
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if not lib: |
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return None |
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addr_to_line = CallAddr2LineForSet(lib, unique_addrs) |
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if not addr_to_line: |
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return None |
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addr_to_objdump = CallObjdumpForSet(lib, unique_addrs) |
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if not addr_to_objdump: |
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return None |
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result = {} |
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for addr in unique_addrs: |
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source_info = addr_to_line.get(addr) |
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if not source_info: |
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source_info = [(None, None)] |
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if addr in addr_to_objdump: |
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(object_symbol, object_offset) = addr_to_objdump.get(addr) |
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object_symbol_with_offset = FormatSymbolWithOffset(object_symbol, |
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object_offset) |
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else: |
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object_symbol_with_offset = None |
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result[addr] = [(source_symbol, source_location, object_symbol_with_offset) |
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for (source_symbol, source_location) in source_info] |
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return result |
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def CallAddr2LineForSet(lib, unique_addrs): |
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"""Look up line and symbol information for a set of addresses. |
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Args: |
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lib: library (or executable) pathname containing symbols |
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unique_addrs: set of string hexidecimal addresses look up. |
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Returns: |
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A dictionary of the form {addr: [(symbol, file:line)]} where |
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each address has a list of associated symbols and locations |
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or an empty list if no symbol information was found. |
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If the function has been inlined then the list may contain |
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more than one element with the symbols for the most deeply |
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nested inlined location appearing first. |
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""" |
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if not lib: |
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return None |
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result = {} |
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addrs = sorted(unique_addrs) |
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if lib in _SYMBOL_INFORMATION_ADDR2LINE_CACHE: |
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addr_cache = _SYMBOL_INFORMATION_ADDR2LINE_CACHE[lib] |
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# Go through and handle all known addresses. |
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for x in range(len(addrs)): |
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next_addr = addrs.pop(0) |
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if next_addr in addr_cache: |
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result[next_addr] = addr_cache[next_addr] |
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else: |
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# Re-add, needs to be symbolized. |
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addrs.append(next_addr) |
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if not addrs: |
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# Everything was cached, we're done. |
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return result |
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else: |
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addr_cache = {} |
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_SYMBOL_INFORMATION_ADDR2LINE_CACHE[lib] = addr_cache |
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symbols = SYMBOLS_DIR + lib |
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if not os.path.exists(symbols): |
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symbols = lib |
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if not os.path.exists(symbols): |
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return None |
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# Make sure the symbols path is not a directory. |
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if os.path.isdir(symbols): |
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return None |
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cmd = [ToolPath("addr2line"), "--functions", "--inlines", |
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"--demangle", "--exe=" + symbols] |
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child = _PIPE_ADDR2LINE_CACHE.GetProcess(cmd) |
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for addr in addrs: |
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child.stdin.write("0x%s\n" % addr) |
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child.stdin.flush() |
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records = [] |
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first = True |
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while True: |
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symbol = child.stdout.readline().strip() |
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if symbol == "??": |
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symbol = None |
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location = child.stdout.readline().strip() |
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if location == "??:0" or location == "??:?": |
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location = None |
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if symbol is None and location is None: |
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break |
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records.append((symbol, location)) |
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if first: |
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# Write a blank line as a sentinel so we know when to stop |
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# reading inlines from the output. |
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# The blank line will cause addr2line to emit "??\n??:0\n". |
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child.stdin.write("\n") |
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first = False |
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result[addr] = records |
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addr_cache[addr] = records |
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return result |
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def StripPC(addr): |
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"""Strips the Thumb bit a program counter address when appropriate. |
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Args: |
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addr: the program counter address |
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Returns: |
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The stripped program counter address. |
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""" |
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global ARCH |
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if ARCH == "arm": |
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return addr & ~1 |
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return addr |
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def CallObjdumpForSet(lib, unique_addrs): |
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"""Use objdump to find out the names of the containing functions. |
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Args: |
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lib: library (or executable) pathname containing symbols |
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unique_addrs: set of string hexidecimal addresses to find the functions for. |
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Returns: |
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A dictionary of the form {addr: (string symbol, offset)}. |
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""" |
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if not lib: |
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return None |
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result = {} |
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addrs = sorted(unique_addrs) |
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addr_cache = None |
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if lib in _SYMBOL_INFORMATION_OBJDUMP_CACHE: |
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addr_cache = _SYMBOL_INFORMATION_OBJDUMP_CACHE[lib] |
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# Go through and handle all known addresses. |
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for x in range(len(addrs)): |
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next_addr = addrs.pop(0) |
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if next_addr in addr_cache: |
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result[next_addr] = addr_cache[next_addr] |
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else: |
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# Re-add, needs to be symbolized. |
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addrs.append(next_addr) |
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if not addrs: |
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# Everything was cached, we're done. |
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return result |
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else: |
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addr_cache = {} |
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_SYMBOL_INFORMATION_OBJDUMP_CACHE[lib] = addr_cache |
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symbols = SYMBOLS_DIR + lib |
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if not os.path.exists(symbols): |
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symbols = lib |
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if not os.path.exists(symbols): |
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return None |
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start_addr_dec = str(StripPC(int(addrs[0], 16))) |
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stop_addr_dec = str(StripPC(int(addrs[-1], 16)) + 8) |
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cmd = [ToolPath("objdump"), |
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"--section=.text", |
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"--demangle", |
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"--disassemble", |
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"--start-address=" + start_addr_dec, |
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"--stop-address=" + stop_addr_dec, |
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symbols] |
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# Function lines look like: |
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# 000177b0 <android::IBinder::~IBinder()+0x2c>: |
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# We pull out the address and function first. Then we check for an optional |
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# offset. This is tricky due to functions that look like "operator+(..)+0x2c" |
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func_regexp = re.compile("(^[a-f0-9]*) \<(.*)\>:$") |
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offset_regexp = re.compile("(.*)\+0x([a-f0-9]*)") |
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# A disassembly line looks like: |
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# 177b2: b510 push {r4, lr} |
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asm_regexp = re.compile("(^[ a-f0-9]*):[ a-f0-0]*.*$") |
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current_symbol = None # The current function symbol in the disassembly. |
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current_symbol_addr = 0 # The address of the current function. |
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addr_index = 0 # The address that we are currently looking for. |
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stream = subprocess.Popen(cmd, stdout=subprocess.PIPE).stdout |
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for line in stream: |
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# Is it a function line like: |
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# 000177b0 <android::IBinder::~IBinder()>: |
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components = func_regexp.match(line) |
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if components: |
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# This is a new function, so record the current function and its address. |
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current_symbol_addr = int(components.group(1), 16) |
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current_symbol = components.group(2) |
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# Does it have an optional offset like: "foo(..)+0x2c"? |
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components = offset_regexp.match(current_symbol) |
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if components: |
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current_symbol = components.group(1) |
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offset = components.group(2) |
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if offset: |
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current_symbol_addr -= int(offset, 16) |
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# Is it an disassembly line like: |
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# 177b2: b510 push {r4, lr} |
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components = asm_regexp.match(line) |
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if components: |
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addr = components.group(1) |
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target_addr = addrs[addr_index] |
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i_addr = int(addr, 16) |
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i_target = StripPC(int(target_addr, 16)) |
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if i_addr == i_target: |
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result[target_addr] = (current_symbol, i_target - current_symbol_addr) |
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addr_cache[target_addr] = result[target_addr] |
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addr_index += 1 |
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if addr_index >= len(addrs): |
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break |
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stream.close() |
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return result |
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def CallCppFilt(mangled_symbol): |
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if mangled_symbol in _SYMBOL_DEMANGLING_CACHE: |
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return _SYMBOL_DEMANGLING_CACHE[mangled_symbol] |
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cmd = [ToolPath("c++filt")] |
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process = _PIPE_CPPFILT_CACHE.GetProcess(cmd) |
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process.stdin.write(mangled_symbol) |
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process.stdin.write("\n") |
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process.stdin.flush() |
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demangled_symbol = process.stdout.readline().strip() |
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_SYMBOL_DEMANGLING_CACHE[mangled_symbol] = demangled_symbol |
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return demangled_symbol |
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def FormatSymbolWithOffset(symbol, offset): |
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if offset == 0: |
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return symbol |
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return "%s+%d" % (symbol, offset) |
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def GetAbiFromToolchain(toolchain_var, bits): |
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toolchain = os.environ.get(toolchain_var) |
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if not toolchain: |
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return None |
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|
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toolchain_match = re.search("\/(aarch64|arm|mips|x86)\/", toolchain) |
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if toolchain_match: |
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abi = toolchain_match.group(1) |
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if abi == "aarch64": |
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return "arm64" |
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elif bits == 64: |
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if abi == "x86": |
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return "x86_64" |
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elif abi == "mips": |
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return "mips64" |
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return abi |
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return None |
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|
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def Get32BitArch(): |
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# Check for ANDROID_TOOLCHAIN_2ND_ARCH first, if set, use that. |
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# If not try ANDROID_TOOLCHAIN to find the arch. |
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# If this is not set, then default to arm. |
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arch = GetAbiFromToolchain("ANDROID_TOOLCHAIN_2ND_ARCH", 32) |
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if not arch: |
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arch = GetAbiFromToolchain("ANDROID_TOOLCHAIN", 32) |
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if not arch: |
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return "arm" |
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return arch |
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|
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def Get64BitArch(): |
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# Check for ANDROID_TOOLCHAIN, if it is set, we can figure out the |
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# arch this way. If this is not set, then default to arm64. |
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arch = GetAbiFromToolchain("ANDROID_TOOLCHAIN", 64) |
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if not arch: |
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return "arm64" |
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return arch |
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|
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def SetAbi(lines): |
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global ARCH |
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|
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abi_line = re.compile("ABI: \'(.*)\'") |
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trace_line = re.compile("\#[0-9]+[ \t]+..[ \t]+([0-9a-f]{8}|[0-9a-f]{16})([ \t]+|$)") |
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asan_trace_line = re.compile("\#[0-9]+[ \t]+0x([0-9a-f]+)[ \t]+") |
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|
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ARCH = None |
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for line in lines: |
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abi_match = abi_line.search(line) |
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if abi_match: |
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ARCH = abi_match.group(1) |
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break |
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trace_match = trace_line.search(line) |
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if trace_match: |
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# Try to guess the arch, we know the bitness. |
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if len(trace_match.group(1)) == 16: |
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ARCH = Get64BitArch() |
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else: |
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ARCH = Get32BitArch() |
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break |
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asan_trace_match = asan_trace_line.search(line) |
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if asan_trace_match: |
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# We might be able to guess the bitness by the length of the address. |
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if len(asan_trace_match.group(1)) > 8: |
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ARCH = Get64BitArch() |
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# We know for a fact this is 64 bit, so we are done. |
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break |
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else: |
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ARCH = Get32BitArch() |
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# This might be 32 bit, or just a small address. Keep going in this |
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# case, but if we couldn't figure anything else out, go with 32 bit. |
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if not ARCH: |
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raise Exception("Could not determine arch from input, use --arch=XXX to specify it") |
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|
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class FindToolchainTests(unittest.TestCase): |
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def assert_toolchain_found(self, abi): |
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global ARCH |
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ARCH = abi |
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FindToolchain() # Will throw on failure. |
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|
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def test_toolchains_found(self): |
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self.assert_toolchain_found("arm") |
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self.assert_toolchain_found("arm64") |
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self.assert_toolchain_found("mips") |
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self.assert_toolchain_found("x86") |
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self.assert_toolchain_found("x86_64") |
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|
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class SetArchTests(unittest.TestCase): |
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def test_abi_check(self): |
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global ARCH |
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|
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SetAbi(["ABI: 'arm'"]) |
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self.assertEqual(ARCH, "arm") |
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SetAbi(["ABI: 'arm64'"]) |
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self.assertEqual(ARCH, "arm64") |
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|
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SetAbi(["ABI: 'mips'"]) |
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self.assertEqual(ARCH, "mips") |
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SetAbi(["ABI: 'mips64'"]) |
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self.assertEqual(ARCH, "mips64") |
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|
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SetAbi(["ABI: 'x86'"]) |
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self.assertEqual(ARCH, "x86") |
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SetAbi(["ABI: 'x86_64'"]) |
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self.assertEqual(ARCH, "x86_64") |
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|
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def test_32bit_trace_line_toolchain(self): |
|
global ARCH |
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|
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os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/arm/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 000374e0"]) |
|
self.assertEqual(ARCH, "arm") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/mips/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 000374e0"]) |
|
self.assertEqual(ARCH, "mips") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/x86/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 000374e0"]) |
|
self.assertEqual(ARCH, "x86") |
|
|
|
def test_32bit_trace_line_toolchain_2nd(self): |
|
global ARCH |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN_2ND_ARCH"] = "linux-x86/arm/arm-linux-androideabi-4.9/bin" |
|
os.environ["ANDROID_TOOLCHAIN_ARCH"] = "linux-x86/aarch64/aarch64-linux-android-4.9/bin" |
|
SetAbi(["#00 pc 000374e0"]) |
|
self.assertEqual(ARCH, "arm") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN_2ND_ARCH"] = "linux-x86/mips/mips-linux-androideabi-4.9/bin" |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/unknown/unknown-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 000374e0"]) |
|
self.assertEqual(ARCH, "mips") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN_2ND_ARCH"] = "linux-x86/x86/x86-linux-androideabi-4.9/bin" |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/unknown/unknown-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 000374e0"]) |
|
self.assertEqual(ARCH, "x86") |
|
|
|
def test_64bit_trace_line_toolchain(self): |
|
global ARCH |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/aarch/aarch-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 00000000000374e0"]) |
|
self.assertEqual(ARCH, "arm64") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/mips/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 00000000000374e0"]) |
|
self.assertEqual(ARCH, "mips64") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/x86/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#00 pc 00000000000374e0"]) |
|
self.assertEqual(ARCH, "x86_64") |
|
|
|
def test_trace_default_abis(self): |
|
global ARCH |
|
|
|
os.environ.clear() |
|
SetAbi(["#00 pc 000374e0"]) |
|
self.assertEqual(ARCH, "arm") |
|
SetAbi(["#00 pc 00000000000374e0"]) |
|
self.assertEqual(ARCH, "arm64") |
|
|
|
def test_32bit_asan_trace_line_toolchain(self): |
|
global ARCH |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/arm/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#10 0xb5eeba5d (/system/vendor/lib/egl/libGLESv1_CM_adreno.so+0xfa5d)"]) |
|
self.assertEqual(ARCH, "arm") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/mips/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#10 0xb5eeba5d (/system/vendor/lib/egl/libGLESv1_CM_adreno.so+0xfa5d)"]) |
|
self.assertEqual(ARCH, "mips") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/x86/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#10 0xb5eeba5d (/system/vendor/lib/egl/libGLESv1_CM_adreno.so+0xfa5d)"]) |
|
self.assertEqual(ARCH, "x86") |
|
|
|
def test_32bit_asan_trace_line_toolchain_2nd(self): |
|
global ARCH |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN_2ND_ARCH"] = "linux-x86/arm/arm-linux-androideabi-4.9/bin" |
|
os.environ["ANDROID_TOOLCHAIN_ARCH"] = "linux-x86/aarch64/aarch64-linux-android-4.9/bin" |
|
SetAbi(["#3 0xae1725b5 (/system/vendor/lib/libllvm-glnext.so+0x6435b5)"]) |
|
self.assertEqual(ARCH, "arm") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN_2ND_ARCH"] = "linux-x86/mips/mips-linux-androideabi-4.9/bin" |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/unknown/unknown-linux-androideabi-4.9/bin" |
|
SetAbi(["#3 0xae1725b5 (/system/vendor/lib/libllvm-glnext.so+0x6435b5)"]) |
|
self.assertEqual(ARCH, "mips") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN_2ND_ARCH"] = "linux-x86/x86/x86-linux-androideabi-4.9/bin" |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/unknown/unknown-linux-androideabi-4.9/bin" |
|
SetAbi(["#3 0xae1725b5 (/system/vendor/lib/libllvm-glnext.so+0x6435b5)"]) |
|
self.assertEqual(ARCH, "x86") |
|
|
|
def test_64bit_asan_trace_line_toolchain(self): |
|
global ARCH |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/aarch/aarch-linux-androideabi-4.9/bin" |
|
SetAbi(["#0 0x11b35d33bf (/system/lib/libclang_rt.asan-arm-android.so+0x823bf)"]) |
|
self.assertEqual(ARCH, "arm64") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/mips/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#1 0x11b35d33bf (/system/lib/libclang_rt.asan-arm-android.so+0x823bf)"]) |
|
self.assertEqual(ARCH, "mips64") |
|
|
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/x86/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#12 0x11b35d33bf (/system/lib/libclang_rt.asan-arm-android.so+0x823bf)"]) |
|
self.assertEqual(ARCH, "x86_64") |
|
|
|
# Verify that if an address that might be 32 bit comes first, that |
|
# encountering a 64 bit address returns a 64 bit abi. |
|
ARCH = None |
|
os.environ.clear() |
|
os.environ["ANDROID_TOOLCHAIN"] = "linux-x86/x86/arm-linux-androideabi-4.9/bin" |
|
SetAbi(["#12 0x5d33bf (/system/lib/libclang_rt.asan-arm-android.so+0x823bf)", |
|
"#12 0x11b35d33bf (/system/lib/libclang_rt.asan-arm-android.so+0x823bf)"]) |
|
self.assertEqual(ARCH, "x86_64") |
|
|
|
def test_asan_trace_default_abis(self): |
|
global ARCH |
|
|
|
os.environ.clear() |
|
SetAbi(["#4 0x1234349ab (/system/vendor/lib/libllvm-glnext.so+0x64fc4f)"]) |
|
self.assertEqual(ARCH, "arm64") |
|
SetAbi(["#1 0xae17ec4f (/system/vendor/lib/libllvm-glnext.so+0x64fc4f)"]) |
|
self.assertEqual(ARCH, "arm") |
|
|
|
def test_no_abi(self): |
|
global ARCH |
|
|
|
self.assertRaisesRegexp(Exception, "Could not determine arch from input, use --arch=XXX to specify it", SetAbi, []) |
|
|
|
if __name__ == '__main__': |
|
unittest.main()
|
|
|