421 lines
16 KiB
C++
421 lines
16 KiB
C++
/*
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* Copyright (C) 2011 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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*/
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#ifndef ART_RUNTIME_UTILS_H_
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#define ART_RUNTIME_UTILS_H_
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#include <pthread.h>
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#include <stdlib.h>
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#include <limits>
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#include <memory>
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#include <random>
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#include <string>
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#include <type_traits>
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#include <vector>
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#include "arch/instruction_set.h"
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#include "base/casts.h"
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#include "base/logging.h"
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#include "base/mutex.h"
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#include "base/stringpiece.h"
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#include "globals.h"
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#include "primitive.h"
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class BacktraceMap;
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namespace art {
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class ArtField;
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class ArtMethod;
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class DexFile;
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namespace mirror {
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class Class;
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class Object;
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class String;
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} // namespace mirror
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template <typename T>
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bool ParseUint(const char *in, T* out) {
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char* end;
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unsigned long long int result = strtoull(in, &end, 0); // NOLINT(runtime/int)
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if (in == end || *end != '\0') {
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return false;
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}
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if (std::numeric_limits<T>::max() < result) {
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return false;
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}
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*out = static_cast<T>(result);
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return true;
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}
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template <typename T>
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bool ParseInt(const char* in, T* out) {
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char* end;
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long long int result = strtoll(in, &end, 0); // NOLINT(runtime/int)
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if (in == end || *end != '\0') {
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return false;
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}
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if (result < std::numeric_limits<T>::min() || std::numeric_limits<T>::max() < result) {
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return false;
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}
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*out = static_cast<T>(result);
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return true;
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}
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// Return whether x / divisor == x * (1.0f / divisor), for every float x.
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static constexpr bool CanDivideByReciprocalMultiplyFloat(int32_t divisor) {
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// True, if the most significant bits of divisor are 0.
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return ((divisor & 0x7fffff) == 0);
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}
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// Return whether x / divisor == x * (1.0 / divisor), for every double x.
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static constexpr bool CanDivideByReciprocalMultiplyDouble(int64_t divisor) {
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// True, if the most significant bits of divisor are 0.
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return ((divisor & ((UINT64_C(1) << 52) - 1)) == 0);
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}
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static inline uint32_t PointerToLowMemUInt32(const void* p) {
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uintptr_t intp = reinterpret_cast<uintptr_t>(p);
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DCHECK_LE(intp, 0xFFFFFFFFU);
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return intp & 0xFFFFFFFFU;
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}
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static inline bool NeedsEscaping(uint16_t ch) {
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return (ch < ' ' || ch > '~');
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}
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template <typename T> T SafeAbs(T value) {
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// std::abs has undefined behavior on min limits.
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DCHECK_NE(value, std::numeric_limits<T>::min());
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return std::abs(value);
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}
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template <typename T> T AbsOrMin(T value) {
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return (value == std::numeric_limits<T>::min())
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? value
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: std::abs(value);
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}
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template <typename T>
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inline typename std::make_unsigned<T>::type MakeUnsigned(T x) {
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return static_cast<typename std::make_unsigned<T>::type>(x);
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}
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std::string PrintableChar(uint16_t ch);
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// Returns an ASCII string corresponding to the given UTF-8 string.
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// Java escapes are used for non-ASCII characters.
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std::string PrintableString(const char* utf8);
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// Tests whether 's' starts with 'prefix'.
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bool StartsWith(const std::string& s, const char* prefix);
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// Tests whether 's' ends with 'suffix'.
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bool EndsWith(const std::string& s, const char* suffix);
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// Used to implement PrettyClass, PrettyField, PrettyMethod, and PrettyTypeOf,
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// one of which is probably more useful to you.
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// Returns a human-readable equivalent of 'descriptor'. So "I" would be "int",
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// "[[I" would be "int[][]", "[Ljava/lang/String;" would be
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// "java.lang.String[]", and so forth.
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std::string PrettyDescriptor(mirror::String* descriptor)
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SHARED_REQUIRES(Locks::mutator_lock_);
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std::string PrettyDescriptor(const char* descriptor);
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std::string PrettyDescriptor(mirror::Class* klass)
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SHARED_REQUIRES(Locks::mutator_lock_);
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std::string PrettyDescriptor(Primitive::Type type);
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// Returns a human-readable signature for 'f'. Something like "a.b.C.f" or
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// "int a.b.C.f" (depending on the value of 'with_type').
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std::string PrettyField(ArtField* f, bool with_type = true)
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SHARED_REQUIRES(Locks::mutator_lock_);
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std::string PrettyField(uint32_t field_idx, const DexFile& dex_file, bool with_type = true);
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// Returns a human-readable signature for 'm'. Something like "a.b.C.m" or
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// "a.b.C.m(II)V" (depending on the value of 'with_signature').
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std::string PrettyMethod(ArtMethod* m, bool with_signature = true)
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SHARED_REQUIRES(Locks::mutator_lock_);
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std::string PrettyMethod(uint32_t method_idx, const DexFile& dex_file, bool with_signature = true);
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// Returns a human-readable form of the name of the *class* of the given object.
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// So given an instance of java.lang.String, the output would
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// be "java.lang.String". Given an array of int, the output would be "int[]".
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// Given String.class, the output would be "java.lang.Class<java.lang.String>".
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std::string PrettyTypeOf(mirror::Object* obj)
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SHARED_REQUIRES(Locks::mutator_lock_);
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// Returns a human-readable form of the type at an index in the specified dex file.
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// Example outputs: char[], java.lang.String.
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std::string PrettyType(uint32_t type_idx, const DexFile& dex_file);
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// Returns a human-readable form of the name of the given class.
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// Given String.class, the output would be "java.lang.Class<java.lang.String>".
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std::string PrettyClass(mirror::Class* c)
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SHARED_REQUIRES(Locks::mutator_lock_);
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// Returns a human-readable form of the name of the given class with its class loader.
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std::string PrettyClassAndClassLoader(mirror::Class* c)
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SHARED_REQUIRES(Locks::mutator_lock_);
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// Returns a human-readable version of the Java part of the access flags, e.g., "private static "
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// (note the trailing whitespace).
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std::string PrettyJavaAccessFlags(uint32_t access_flags);
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// Returns a human-readable size string such as "1MB".
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std::string PrettySize(int64_t size_in_bytes);
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// Performs JNI name mangling as described in section 11.3 "Linking Native Methods"
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// of the JNI spec.
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std::string MangleForJni(const std::string& s);
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// Turn "java.lang.String" into "Ljava/lang/String;".
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std::string DotToDescriptor(const char* class_name);
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// Turn "Ljava/lang/String;" into "java.lang.String" using the conventions of
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// java.lang.Class.getName().
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std::string DescriptorToDot(const char* descriptor);
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// Turn "Ljava/lang/String;" into "java/lang/String" using the opposite conventions of
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// java.lang.Class.getName().
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std::string DescriptorToName(const char* descriptor);
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// Tests for whether 's' is a valid class name in the three common forms:
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bool IsValidBinaryClassName(const char* s); // "java.lang.String"
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bool IsValidJniClassName(const char* s); // "java/lang/String"
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bool IsValidDescriptor(const char* s); // "Ljava/lang/String;"
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// Returns whether the given string is a valid field or method name,
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// additionally allowing names that begin with '<' and end with '>'.
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bool IsValidMemberName(const char* s);
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// Returns the JNI native function name for the non-overloaded method 'm'.
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std::string JniShortName(ArtMethod* m)
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SHARED_REQUIRES(Locks::mutator_lock_);
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// Returns the JNI native function name for the overloaded method 'm'.
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std::string JniLongName(ArtMethod* m)
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SHARED_REQUIRES(Locks::mutator_lock_);
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bool ReadFileToString(const std::string& file_name, std::string* result);
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bool PrintFileToLog(const std::string& file_name, LogSeverity level);
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// Splits a string using the given separator character into a vector of
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// strings. Empty strings will be omitted.
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void Split(const std::string& s, char separator, std::vector<std::string>* result);
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// Trims whitespace off both ends of the given string.
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std::string Trim(const std::string& s);
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// Joins a vector of strings into a single string, using the given separator.
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template <typename StringT> std::string Join(const std::vector<StringT>& strings, char separator);
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// Returns the calling thread's tid. (The C libraries don't expose this.)
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pid_t GetTid();
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// Returns the given thread's name.
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std::string GetThreadName(pid_t tid);
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// Returns details of the given thread's stack.
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void GetThreadStack(pthread_t thread, void** stack_base, size_t* stack_size, size_t* guard_size);
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// Reads data from "/proc/self/task/${tid}/stat".
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void GetTaskStats(pid_t tid, char* state, int* utime, int* stime, int* task_cpu);
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// Returns the name of the scheduler group for the given thread the current process, or the empty string.
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std::string GetSchedulerGroupName(pid_t tid);
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// Sets the name of the current thread. The name may be truncated to an
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// implementation-defined limit.
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void SetThreadName(const char* thread_name);
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// Dumps the native stack for thread 'tid' to 'os'.
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void DumpNativeStack(std::ostream& os,
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pid_t tid,
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BacktraceMap* map = nullptr,
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const char* prefix = "",
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ArtMethod* current_method = nullptr,
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void* ucontext = nullptr)
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NO_THREAD_SAFETY_ANALYSIS;
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// Dumps the kernel stack for thread 'tid' to 'os'. Note that this is only available on linux-x86.
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void DumpKernelStack(std::ostream& os,
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pid_t tid,
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const char* prefix = "",
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bool include_count = true);
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// Find $ANDROID_ROOT, /system, or abort.
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const char* GetAndroidRoot();
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// Find $ANDROID_DATA, /data, or abort.
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const char* GetAndroidData();
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// Find $ANDROID_DATA, /data, or return null.
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const char* GetAndroidDataSafe(std::string* error_msg);
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// Returns the dalvik-cache location, with subdir appended. Returns the empty string if the cache
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// could not be found (or created).
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std::string GetDalvikCache(const char* subdir, bool create_if_absent = true);
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// Returns the dalvik-cache location, or dies trying. subdir will be
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// appended to the cache location.
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std::string GetDalvikCacheOrDie(const char* subdir, bool create_if_absent = true);
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// Return true if we found the dalvik cache and stored it in the dalvik_cache argument.
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// have_android_data will be set to true if we have an ANDROID_DATA that exists,
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// dalvik_cache_exists will be true if there is a dalvik-cache directory that is present.
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// The flag is_global_cache tells whether this cache is /data/dalvik-cache.
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void GetDalvikCache(const char* subdir, bool create_if_absent, std::string* dalvik_cache,
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bool* have_android_data, bool* dalvik_cache_exists, bool* is_global_cache);
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// Returns the absolute dalvik-cache path for a DexFile or OatFile. The path returned will be
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// rooted at cache_location.
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bool GetDalvikCacheFilename(const char* file_location, const char* cache_location,
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std::string* filename, std::string* error_msg);
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// Returns the absolute dalvik-cache path for a DexFile or OatFile, or
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// dies trying. The path returned will be rooted at cache_location.
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std::string GetDalvikCacheFilenameOrDie(const char* file_location,
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const char* cache_location);
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// Returns the system location for an image
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std::string GetSystemImageFilename(const char* location, InstructionSet isa);
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// Wrapper on fork/execv to run a command in a subprocess.
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// Both of these spawn child processes using the environment as it was set when the single instance
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// of the runtime (Runtime::Current()) was started. If no instance of the runtime was started, it
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// will use the current environment settings.
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bool Exec(std::vector<std::string>& arg_vector, std::string* error_msg);
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int ExecAndReturnCode(std::vector<std::string>& arg_vector, std::string* error_msg);
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// Returns true if the file exists.
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bool FileExists(const std::string& filename);
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bool FileExistsAndNotEmpty(const std::string& filename);
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class VoidFunctor {
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public:
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template <typename A>
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inline void operator() (A a ATTRIBUTE_UNUSED) const {
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}
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template <typename A, typename B>
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inline void operator() (A a ATTRIBUTE_UNUSED, B b ATTRIBUTE_UNUSED) const {
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}
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template <typename A, typename B, typename C>
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inline void operator() (A a ATTRIBUTE_UNUSED, B b ATTRIBUTE_UNUSED, C c ATTRIBUTE_UNUSED) const {
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}
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};
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template <typename Vector>
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void Push32(Vector* buf, int32_t data) {
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static_assert(std::is_same<typename Vector::value_type, uint8_t>::value, "Invalid value type");
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buf->push_back(data & 0xff);
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buf->push_back((data >> 8) & 0xff);
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buf->push_back((data >> 16) & 0xff);
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buf->push_back((data >> 24) & 0xff);
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}
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inline bool TestBitmap(size_t idx, const uint8_t* bitmap) {
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return ((bitmap[idx / kBitsPerByte] >> (idx % kBitsPerByte)) & 0x01) != 0;
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}
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static inline constexpr bool ValidPointerSize(size_t pointer_size) {
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return pointer_size == 4 || pointer_size == 8;
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}
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void DumpMethodCFG(ArtMethod* method, std::ostream& os) SHARED_REQUIRES(Locks::mutator_lock_);
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void DumpMethodCFG(const DexFile* dex_file, uint32_t dex_method_idx, std::ostream& os);
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static inline const void* EntryPointToCodePointer(const void* entry_point) {
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uintptr_t code = reinterpret_cast<uintptr_t>(entry_point);
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// TODO: Make this Thumb2 specific. It is benign on other architectures as code is always at
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// least 2 byte aligned.
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code &= ~0x1;
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return reinterpret_cast<const void*>(code);
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}
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using UsageFn = void (*)(const char*, ...);
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template <typename T>
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static void ParseUintOption(const StringPiece& option,
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const std::string& option_name,
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T* out,
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UsageFn Usage,
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bool is_long_option = true) {
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std::string option_prefix = option_name + (is_long_option ? "=" : "");
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DCHECK(option.starts_with(option_prefix)) << option << " " << option_prefix;
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const char* value_string = option.substr(option_prefix.size()).data();
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int64_t parsed_integer_value = 0;
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if (!ParseInt(value_string, &parsed_integer_value)) {
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Usage("Failed to parse %s '%s' as an integer", option_name.c_str(), value_string);
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}
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if (parsed_integer_value < 0) {
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Usage("%s passed a negative value %d", option_name.c_str(), parsed_integer_value);
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}
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*out = dchecked_integral_cast<T>(parsed_integer_value);
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}
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void ParseDouble(const std::string& option,
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char after_char,
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double min,
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double max,
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double* parsed_value,
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UsageFn Usage);
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#if defined(__BIONIC__)
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struct Arc4RandomGenerator {
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typedef uint32_t result_type;
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static constexpr uint32_t min() { return std::numeric_limits<uint32_t>::min(); }
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static constexpr uint32_t max() { return std::numeric_limits<uint32_t>::max(); }
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uint32_t operator() () { return arc4random(); }
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};
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using RNG = Arc4RandomGenerator;
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#else
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using RNG = std::random_device;
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#endif
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template <typename T>
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T GetRandomNumber(T min, T max) {
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CHECK_LT(min, max);
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std::uniform_int_distribution<T> dist(min, max);
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RNG rng;
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return dist(rng);
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}
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// Return the file size in bytes or -1 if the file does not exists.
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int64_t GetFileSizeBytes(const std::string& filename);
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// Sleep forever and never come back.
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NO_RETURN void SleepForever();
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inline void FlushInstructionCache(char* begin, char* end) {
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// Only use __builtin___clear_cache with Clang or with GCC >= 4.3.0
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// (__builtin___clear_cache was introduced in GCC 4.3.0).
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#if defined(__clang__) || GCC_VERSION >= 40300
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__builtin___clear_cache(begin, end);
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#else
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// Only warn on non-Intel platforms, as x86 and x86-64 do not need
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// cache flush instructions, as long as the "code uses the same
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// linear address for modifying and fetching the instruction". See
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// "Intel(R) 64 and IA-32 Architectures Software Developer's Manual
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// Volume 3A: System Programming Guide, Part 1", section 11.6
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// "Self-Modifying Code".
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#if !defined(__i386__) && !defined(__x86_64__)
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UNIMPLEMENTED(WARNING) << "cache flush";
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#endif
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#endif
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}
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} // namespace art
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#endif // ART_RUNTIME_UTILS_H_
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