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| 14 | pmbaty | 1 | //===- FunctionInfo.h -------------------------------------------*- C++ -*-===// |
| 2 | // |
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| 3 | // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. |
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| 4 | // See https://llvm.org/LICENSE.txt for license information. |
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| 5 | // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception |
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| 6 | // |
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| 7 | //===----------------------------------------------------------------------===// |
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| 8 | |||
| 9 | #ifndef LLVM_DEBUGINFO_GSYM_FUNCTIONINFO_H |
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| 10 | #define LLVM_DEBUGINFO_GSYM_FUNCTIONINFO_H |
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| 11 | |||
| 12 | #include "llvm/DebugInfo/GSYM/ExtractRanges.h" |
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| 13 | #include "llvm/DebugInfo/GSYM/InlineInfo.h" |
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| 14 | #include "llvm/DebugInfo/GSYM/LineTable.h" |
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| 15 | #include "llvm/DebugInfo/GSYM/LookupResult.h" |
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| 16 | #include "llvm/DebugInfo/GSYM/StringTable.h" |
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| 17 | #include <cstdint> |
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| 18 | #include <tuple> |
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| 19 | |||
| 20 | namespace llvm { |
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| 21 | class raw_ostream; |
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| 22 | |||
| 23 | namespace gsym { |
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| 24 | |||
| 25 | class GsymReader; |
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| 26 | /// Function information in GSYM files encodes information for one contiguous |
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| 27 | /// address range. If a function has discontiguous address ranges, they will |
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| 28 | /// need to be encoded using multiple FunctionInfo objects. |
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| 29 | /// |
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| 30 | /// ENCODING |
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| 31 | /// |
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| 32 | /// The function information gets the function start address as an argument |
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| 33 | /// to the FunctionInfo::decode(...) function. This information is calculated |
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| 34 | /// from the GSYM header and an address offset from the GSYM address offsets |
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| 35 | /// table. The encoded FunctionInfo information must be aligned to a 4 byte |
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| 36 | /// boundary. |
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| 37 | /// |
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| 38 | /// The encoded data for a FunctionInfo starts with fixed data that all |
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| 39 | /// function info objects have: |
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| 40 | /// |
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| 41 | /// ENCODING NAME DESCRIPTION |
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| 42 | /// ========= =========== ==================================================== |
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| 43 | /// uint32_t Size The size in bytes of this function. |
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| 44 | /// uint32_t Name The string table offset of the function name. |
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| 45 | /// |
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| 46 | /// The optional data in a FunctionInfo object follows this fixed information |
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| 47 | /// and consists of a stream of tuples that consist of: |
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| 48 | /// |
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| 49 | /// ENCODING NAME DESCRIPTION |
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| 50 | /// ========= =========== ==================================================== |
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| 51 | /// uint32_t InfoType An "InfoType" enumeration that describes the type |
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| 52 | /// of optional data that is encoded. |
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| 53 | /// uint32_t InfoLength The size in bytes of the encoded data that |
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| 54 | /// immediately follows this length if this value is |
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| 55 | /// greater than zero. |
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| 56 | /// uint8_t[] InfoData Encoded bytes that represent the data for the |
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| 57 | /// "InfoType". These bytes are only present if |
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| 58 | /// "InfoLength" is greater than zero. |
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| 59 | /// |
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| 60 | /// The "InfoType" is an enumeration: |
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| 61 | /// |
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| 62 | /// enum InfoType { |
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| 63 | /// EndOfList = 0u, |
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| 64 | /// LineTableInfo = 1u, |
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| 65 | /// InlineInfo = 2u |
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| 66 | /// }; |
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| 67 | /// |
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| 68 | /// This stream of tuples is terminated by a "InfoType" whose value is |
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| 69 | /// InfoType::EndOfList and a zero for "InfoLength". This signifies the end of |
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| 70 | /// the optional information list. This format allows us to add new optional |
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| 71 | /// information data to a FunctionInfo object over time and allows older |
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| 72 | /// clients to still parse the format and skip over any data that they don't |
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| 73 | /// understand or want to parse. |
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| 74 | /// |
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| 75 | /// So the function information encoding essientially looks like: |
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| 76 | /// |
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| 77 | /// struct { |
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| 78 | /// uint32_t Size; |
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| 79 | /// uint32_t Name; |
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| 80 | /// struct { |
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| 81 | /// uint32_t InfoType; |
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| 82 | /// uint32_t InfoLength; |
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| 83 | /// uint8_t InfoData[InfoLength]; |
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| 84 | /// }[N]; |
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| 85 | /// } |
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| 86 | /// |
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| 87 | /// Where "N" is the number of tuples. |
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| 88 | struct FunctionInfo { |
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| 89 | AddressRange Range; |
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| 90 | uint32_t Name; ///< String table offset in the string table. |
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| 91 | std::optional<LineTable> OptLineTable; |
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| 92 | std::optional<InlineInfo> Inline; |
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| 93 | |||
| 94 | FunctionInfo(uint64_t Addr = 0, uint64_t Size = 0, uint32_t N = 0) |
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| 95 | : Range(Addr, Addr + Size), Name(N) {} |
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| 96 | |||
| 97 | /// Query if a FunctionInfo has rich debug info. |
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| 98 | /// |
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| 99 | /// \returns A bool that indicates if this object has something else than |
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| 100 | /// range and name. When converting information from a symbol table and from |
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| 101 | /// debug info, we might end up with multiple FunctionInfo objects for the |
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| 102 | /// same range and we need to be able to tell which one is the better object |
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| 103 | /// to use. |
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| 104 | bool hasRichInfo() const { return OptLineTable || Inline; } |
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| 105 | |||
| 106 | /// Query if a FunctionInfo object is valid. |
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| 107 | /// |
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| 108 | /// Address and size can be zero and there can be no line entries for a |
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| 109 | /// symbol so the only indication this entry is valid is if the name is |
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| 110 | /// not zero. This can happen when extracting information from symbol |
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| 111 | /// tables that do not encode symbol sizes. In that case only the |
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| 112 | /// address and name will be filled in. |
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| 113 | /// |
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| 114 | /// \returns A boolean indicating if this FunctionInfo is valid. |
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| 115 | bool isValid() const { |
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| 116 | return Name != 0; |
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| 117 | } |
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| 118 | |||
| 119 | /// Decode an object from a binary data stream. |
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| 120 | /// |
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| 121 | /// \param Data The binary stream to read the data from. This object must |
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| 122 | /// have the data for the object starting at offset zero. The data |
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| 123 | /// can contain more data than needed. |
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| 124 | /// |
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| 125 | /// \param BaseAddr The FunctionInfo's start address and will be used as the |
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| 126 | /// base address when decoding any contained information like the line table |
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| 127 | /// and the inline info. |
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| 128 | /// |
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| 129 | /// \returns An FunctionInfo or an error describing the issue that was |
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| 130 | /// encountered during decoding. |
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| 131 | static llvm::Expected<FunctionInfo> decode(DataExtractor &Data, |
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| 132 | uint64_t BaseAddr); |
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| 133 | |||
| 134 | /// Encode this object into FileWriter stream. |
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| 135 | /// |
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| 136 | /// \param O The binary stream to write the data to at the current file |
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| 137 | /// position. |
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| 138 | /// |
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| 139 | /// \returns An error object that indicates failure or the offset of the |
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| 140 | /// function info that was successfully written into the stream. |
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| 141 | llvm::Expected<uint64_t> encode(FileWriter &O) const; |
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| 142 | |||
| 143 | |||
| 144 | /// Lookup an address within a FunctionInfo object's data stream. |
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| 145 | /// |
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| 146 | /// Instead of decoding an entire FunctionInfo object when doing lookups, |
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| 147 | /// we can decode only the information we need from the FunctionInfo's data |
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| 148 | /// for the specific address. The lookup result information is returned as |
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| 149 | /// a LookupResult. |
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| 150 | /// |
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| 151 | /// \param Data The binary stream to read the data from. This object must |
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| 152 | /// have the data for the object starting at offset zero. The data |
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| 153 | /// can contain more data than needed. |
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| 154 | /// |
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| 155 | /// \param GR The GSYM reader that contains the string and file table that |
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| 156 | /// will be used to fill in information in the returned result. |
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| 157 | /// |
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| 158 | /// \param FuncAddr The function start address decoded from the GsymReader. |
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| 159 | /// |
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| 160 | /// \param Addr The address to lookup. |
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| 161 | /// |
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| 162 | /// \returns An LookupResult or an error describing the issue that was |
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| 163 | /// encountered during decoding. An error should only be returned if the |
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| 164 | /// address is not contained in the FunctionInfo or if the data is corrupted. |
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| 165 | static llvm::Expected<LookupResult> lookup(DataExtractor &Data, |
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| 166 | const GsymReader &GR, |
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| 167 | uint64_t FuncAddr, |
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| 168 | uint64_t Addr); |
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| 169 | |||
| 170 | uint64_t startAddress() const { return Range.start(); } |
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| 171 | uint64_t endAddress() const { return Range.end(); } |
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| 172 | uint64_t size() const { return Range.size(); } |
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| 173 | |||
| 174 | void clear() { |
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| 175 | Range = {0, 0}; |
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| 176 | Name = 0; |
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| 177 | OptLineTable = std::nullopt; |
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| 178 | Inline = std::nullopt; |
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| 179 | } |
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| 180 | }; |
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| 181 | |||
| 182 | inline bool operator==(const FunctionInfo &LHS, const FunctionInfo &RHS) { |
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| 183 | return LHS.Range == RHS.Range && LHS.Name == RHS.Name && |
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| 184 | LHS.OptLineTable == RHS.OptLineTable && LHS.Inline == RHS.Inline; |
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| 185 | } |
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| 186 | inline bool operator!=(const FunctionInfo &LHS, const FunctionInfo &RHS) { |
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| 187 | return !(LHS == RHS); |
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| 188 | } |
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| 189 | /// This sorting will order things consistently by address range first, but then |
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| 190 | /// followed by inlining being valid and line tables. We might end up with a |
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| 191 | /// FunctionInfo from debug info that will have the same range as one from the |
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| 192 | /// symbol table, but we want to quickly be able to sort and use the best version |
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| 193 | /// when creating the final GSYM file. |
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| 194 | inline bool operator<(const FunctionInfo &LHS, const FunctionInfo &RHS) { |
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| 195 | // First sort by address range |
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| 196 | if (LHS.Range != RHS.Range) |
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| 197 | return LHS.Range < RHS.Range; |
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| 198 | |||
| 199 | // Then sort by inline |
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| 200 | if (LHS.Inline.has_value() != RHS.Inline.has_value()) |
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| 201 | return RHS.Inline.has_value(); |
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| 202 | |||
| 203 | return LHS.OptLineTable < RHS.OptLineTable; |
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| 204 | } |
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| 205 | |||
| 206 | raw_ostream &operator<<(raw_ostream &OS, const FunctionInfo &R); |
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| 207 | |||
| 208 | } // namespace gsym |
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| 209 | } // namespace llvm |
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| 210 | |||
| 211 | #endif // LLVM_DEBUGINFO_GSYM_FUNCTIONINFO_H |