1 //===-- RegisterContext.h ---------------------------------------*- C++ -*-===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #ifndef LLDB_TARGET_REGISTERCONTEXT_H 10 #define LLDB_TARGET_REGISTERCONTEXT_H 11 12 #include "lldb/Target/ExecutionContextScope.h" 13 #include "lldb/lldb-private.h" 14 15 namespace lldb_private { 16 17 class RegisterContext : public std::enable_shared_from_this<RegisterContext>, 18 public ExecutionContextScope { 19 public: 20 // Constructors and Destructors 21 RegisterContext(Thread &thread, uint32_t concrete_frame_idx); 22 23 ~RegisterContext() override; 24 25 void InvalidateIfNeeded(bool force); 26 27 // Subclasses must override these functions 28 virtual void InvalidateAllRegisters() = 0; 29 30 virtual size_t GetRegisterCount() = 0; 31 32 virtual const RegisterInfo *GetRegisterInfoAtIndex(size_t reg) = 0; 33 34 virtual size_t GetRegisterSetCount() = 0; 35 36 virtual const RegisterSet *GetRegisterSet(size_t reg_set) = 0; 37 38 virtual lldb::ByteOrder GetByteOrder(); 39 40 virtual bool ReadRegister(const RegisterInfo *reg_info, 41 RegisterValue ®_value) = 0; 42 43 virtual bool WriteRegister(const RegisterInfo *reg_info, 44 const RegisterValue ®_value) = 0; 45 ReadAllRegisterValues(lldb::WritableDataBufferSP & data_sp)46 virtual bool ReadAllRegisterValues(lldb::WritableDataBufferSP &data_sp) { 47 return false; 48 } 49 WriteAllRegisterValues(const lldb::DataBufferSP & data_sp)50 virtual bool WriteAllRegisterValues(const lldb::DataBufferSP &data_sp) { 51 return false; 52 } 53 54 // These two functions are used to implement "push" and "pop" of register 55 // states. They are used primarily for expression evaluation, where we need 56 // to push a new state (storing the old one in data_sp) and then restoring 57 // the original state by passing the data_sp we got from ReadAllRegisters to 58 // WriteAllRegisterValues. ReadAllRegisters will do what is necessary to 59 // return a coherent set of register values for this thread, which may mean 60 // e.g. interrupting a thread that is sitting in a kernel trap. That is a 61 // somewhat disruptive operation, so these API's should only be used when 62 // this behavior is needed. 63 64 virtual bool 65 ReadAllRegisterValues(lldb_private::RegisterCheckpoint ®_checkpoint); 66 67 virtual bool WriteAllRegisterValues( 68 const lldb_private::RegisterCheckpoint ®_checkpoint); 69 70 bool CopyFromRegisterContext(lldb::RegisterContextSP context); 71 72 /// Convert from a given register numbering scheme to the lldb register 73 /// numbering scheme 74 /// 75 /// There may be multiple ways to enumerate the registers for a given 76 /// architecture. ABI references will specify one to be used with 77 /// DWARF, the register numberings from process plugin, there may 78 /// be a variation used for eh_frame unwind instructions (e.g. on Darwin), 79 /// and so on. Register 5 by itself is meaningless - RegisterKind 80 /// enumeration tells you what context that number should be translated as. 81 /// 82 /// Inside lldb, register numbers are in the eRegisterKindLLDB scheme; 83 /// arguments which take a register number should take one in that 84 /// scheme. 85 /// 86 /// eRegisterKindGeneric is a special numbering scheme which gives us 87 /// constant values for the pc, frame register, stack register, etc., for 88 /// use within lldb. They may not be defined for all architectures but 89 /// it allows generic code to translate these common registers into the 90 /// lldb numbering scheme. 91 /// 92 /// This method translates a given register kind + register number into 93 /// the eRegisterKindLLDB register numbering. 94 /// 95 /// \param [in] kind 96 /// The register numbering scheme (RegisterKind) that the following 97 /// register number is in. 98 /// 99 /// \param [in] num 100 /// A register number in the 'kind' register numbering scheme. 101 /// 102 /// \return 103 /// The equivalent register number in the eRegisterKindLLDB 104 /// numbering scheme, if possible, else LLDB_INVALID_REGNUM. 105 virtual uint32_t ConvertRegisterKindToRegisterNumber(lldb::RegisterKind kind, 106 uint32_t num); 107 108 // Subclasses can override these functions if desired 109 virtual uint32_t NumSupportedHardwareBreakpoints(); 110 111 virtual uint32_t SetHardwareBreakpoint(lldb::addr_t addr, size_t size); 112 113 virtual bool ClearHardwareBreakpoint(uint32_t hw_idx); 114 115 virtual uint32_t NumSupportedHardwareWatchpoints(); 116 117 virtual uint32_t SetHardwareWatchpoint(lldb::addr_t addr, size_t size, 118 bool read, bool write); 119 120 virtual bool ClearHardwareWatchpoint(uint32_t hw_index); 121 122 virtual bool HardwareSingleStep(bool enable); 123 124 virtual Status 125 ReadRegisterValueFromMemory(const lldb_private::RegisterInfo *reg_info, 126 lldb::addr_t src_addr, uint32_t src_len, 127 RegisterValue ®_value); 128 129 virtual Status 130 WriteRegisterValueToMemory(const lldb_private::RegisterInfo *reg_info, 131 lldb::addr_t dst_addr, uint32_t dst_len, 132 const RegisterValue ®_value); 133 134 // Subclasses should not override these 135 virtual lldb::tid_t GetThreadID() const; 136 GetThread()137 virtual Thread &GetThread() { return m_thread; } 138 139 const RegisterInfo *GetRegisterInfoByName(llvm::StringRef reg_name, 140 uint32_t start_idx = 0); 141 142 const RegisterInfo *GetRegisterInfo(lldb::RegisterKind reg_kind, 143 uint32_t reg_num); 144 145 uint64_t GetPC(uint64_t fail_value = LLDB_INVALID_ADDRESS); 146 147 /// Get an address suitable for symbolication. 148 /// When symbolicating -- computing line, block, function -- 149 /// for a function in the middle of the stack, using the return 150 /// address can lead to unexpected results for the user. 151 /// A function that ends in a tail-call may have another function 152 /// as the "return" address, but it will never actually return. 153 /// Or a noreturn call in the middle of a function is the end of 154 /// a block of instructions, and a DWARF location list entry for 155 /// the return address may be a very different code path with 156 /// incorrect results when printing variables for this frame. 157 /// 158 /// At a source line view, the user expects the current-line indictation 159 /// to point to the function call they're under, not the next source line. 160 /// 161 /// The return address (GetPC()) should always be shown to the user, 162 /// but when computing context, keeping within the bounds of the 163 /// call instruction is what the user expects to see. 164 /// 165 /// \param [out] address 166 /// An Address object that will be filled in, if a PC can be retrieved. 167 /// 168 /// \return 169 /// Returns true if the Address param was filled in. 170 bool GetPCForSymbolication(Address &address); 171 172 bool SetPC(uint64_t pc); 173 174 bool SetPC(Address addr); 175 176 uint64_t GetSP(uint64_t fail_value = LLDB_INVALID_ADDRESS); 177 178 bool SetSP(uint64_t sp); 179 180 uint64_t GetFP(uint64_t fail_value = LLDB_INVALID_ADDRESS); 181 182 bool SetFP(uint64_t fp); 183 184 const char *GetRegisterName(uint32_t reg); 185 186 uint64_t GetReturnAddress(uint64_t fail_value = LLDB_INVALID_ADDRESS); 187 188 uint64_t GetFlags(uint64_t fail_value = 0); 189 190 uint64_t ReadRegisterAsUnsigned(uint32_t reg, uint64_t fail_value); 191 192 uint64_t ReadRegisterAsUnsigned(const RegisterInfo *reg_info, 193 uint64_t fail_value); 194 195 bool WriteRegisterFromUnsigned(uint32_t reg, uint64_t uval); 196 197 bool WriteRegisterFromUnsigned(const RegisterInfo *reg_info, uint64_t uval); 198 199 bool ConvertBetweenRegisterKinds(lldb::RegisterKind source_rk, 200 uint32_t source_regnum, 201 lldb::RegisterKind target_rk, 202 uint32_t &target_regnum); 203 204 // lldb::ExecutionContextScope pure virtual functions 205 lldb::TargetSP CalculateTarget() override; 206 207 lldb::ProcessSP CalculateProcess() override; 208 209 lldb::ThreadSP CalculateThread() override; 210 211 lldb::StackFrameSP CalculateStackFrame() override; 212 213 void CalculateExecutionContext(ExecutionContext &exe_ctx) override; 214 GetStopID()215 uint32_t GetStopID() const { return m_stop_id; } 216 SetStopID(uint32_t stop_id)217 void SetStopID(uint32_t stop_id) { m_stop_id = stop_id; } 218 219 protected: 220 /// Indicates that this frame is currently executing code, 221 /// that the PC value is not a return-pc but an actual executing 222 /// instruction. Some places in lldb will treat a return-pc 223 /// value differently than the currently-executing-pc value, 224 /// and this method can indicate if that should be done. 225 /// The base class implementation only uses the frame index, 226 /// but subclasses may have additional information that they 227 /// can use to detect frames in this state, for instance a 228 /// frame above a trap handler (sigtramp etc).. BehavesLikeZerothFrame()229 virtual bool BehavesLikeZerothFrame() const { 230 return m_concrete_frame_idx == 0; 231 } 232 233 // Classes that inherit from RegisterContext can see and modify these 234 Thread &m_thread; // The thread that this register context belongs to. 235 uint32_t m_concrete_frame_idx; // The concrete frame index for this register 236 // context 237 uint32_t m_stop_id; // The stop ID that any data in this context is valid for 238 private: 239 // For RegisterContext only 240 RegisterContext(const RegisterContext &) = delete; 241 const RegisterContext &operator=(const RegisterContext &) = delete; 242 }; 243 244 } // namespace lldb_private 245 246 #endif // LLDB_TARGET_REGISTERCONTEXT_H 247