Mercurial > hg
annotate rust/hg-core/src/revlog/index.rs @ 51425:7c6d0b9dde37
rust-index: improve phase computation speed
While less memory efficient, using an array is *much* faster than using a
HashMap, especially with the default hasher. It even makes the code simpler,
so I'm not really sure what I was thinking in the first place, maybe it's more
obvious now.
This fix a significant performance regression when using the rust version of the
code. (however, the C code still outperform rust on this operation)
hg perf::phases on mozilla-try-2023-03-22
- 6.6.3: 0.451239 seconds
- before: 0.982495 seconds
- after: 0.265347 seconds
- C code: 0.183241 second
author | Raphaël Gomès <rgomes@octobus.net> |
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date | Thu, 22 Feb 2024 15:06:16 +0100 |
parents | b01e7d97e167 |
children | d2858d97af6c |
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1 use std::collections::{HashMap, HashSet}; |
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2 use std::fmt::Debug; |
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3 use std::ops::Deref; |
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4 use std::sync::{RwLock, RwLockReadGuard, RwLockWriteGuard}; |
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5 |
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6 use bitvec::prelude::*; |
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7 use byteorder::{BigEndian, ByteOrder}; |
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8 use bytes_cast::{unaligned, BytesCast}; |
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9 |
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10 use super::REVIDX_KNOWN_FLAGS; |
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11 use crate::errors::HgError; |
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12 use crate::node::{NODE_BYTES_LENGTH, NULL_NODE, STORED_NODE_ID_BYTES}; |
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13 use crate::revlog::node::Node; |
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14 use crate::revlog::{Revision, NULL_REVISION}; |
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15 use crate::{ |
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16 dagops, BaseRevision, FastHashMap, Graph, GraphError, RevlogError, |
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17 RevlogIndex, UncheckedRevision, |
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18 }; |
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19 |
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20 pub const INDEX_ENTRY_SIZE: usize = 64; |
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21 pub const COMPRESSION_MODE_INLINE: u8 = 2; |
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22 |
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23 #[derive(Debug)] |
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24 pub struct IndexHeader { |
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25 pub(super) header_bytes: [u8; 4], |
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26 } |
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27 |
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28 #[derive(Copy, Clone)] |
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29 pub struct IndexHeaderFlags { |
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30 flags: u16, |
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31 } |
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32 |
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33 /// Corresponds to the high bits of `_format_flags` in python |
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34 impl IndexHeaderFlags { |
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35 /// Corresponds to FLAG_INLINE_DATA in python |
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36 pub fn is_inline(self) -> bool { |
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37 self.flags & 1 != 0 |
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38 } |
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39 /// Corresponds to FLAG_GENERALDELTA in python |
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40 pub fn uses_generaldelta(self) -> bool { |
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41 self.flags & 2 != 0 |
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42 } |
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43 } |
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44 |
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45 /// Corresponds to the INDEX_HEADER structure, |
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46 /// which is parsed as a `header` variable in `_loadindex` in `revlog.py` |
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47 impl IndexHeader { |
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48 fn format_flags(&self) -> IndexHeaderFlags { |
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49 // No "unknown flags" check here, unlike in python. Maybe there should |
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50 // be. |
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51 IndexHeaderFlags { |
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52 flags: BigEndian::read_u16(&self.header_bytes[0..2]), |
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53 } |
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54 } |
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55 |
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56 /// The only revlog version currently supported by rhg. |
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57 const REVLOGV1: u16 = 1; |
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58 |
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59 /// Corresponds to `_format_version` in Python. |
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60 fn format_version(&self) -> u16 { |
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61 BigEndian::read_u16(&self.header_bytes[2..4]) |
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62 } |
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63 |
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64 pub fn parse(index_bytes: &[u8]) -> Result<Option<IndexHeader>, HgError> { |
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65 if index_bytes.is_empty() { |
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66 return Ok(None); |
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67 } |
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68 if index_bytes.len() < 4 { |
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69 return Err(HgError::corrupted( |
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70 "corrupted revlog: can't read the index format header", |
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71 )); |
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72 } |
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73 Ok(Some(IndexHeader { |
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74 header_bytes: { |
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75 let bytes: [u8; 4] = |
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76 index_bytes[0..4].try_into().expect("impossible"); |
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77 bytes |
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78 }, |
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79 })) |
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80 } |
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81 } |
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82 |
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83 /// Abstracts the access to the index bytes since they can be spread between |
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84 /// the immutable (bytes) part and the mutable (added) part if any appends |
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85 /// happened. This makes it transparent for the callers. |
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86 struct IndexData { |
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87 /// Immutable bytes, most likely taken from disk |
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88 bytes: Box<dyn Deref<Target = [u8]> + Send + Sync>, |
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89 /// Used when stripping index contents, keeps track of the start of the |
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90 /// first stripped revision, which is used to give a slice of the |
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91 /// `bytes` field. |
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92 truncation: Option<usize>, |
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93 /// Bytes that were added after reading the index |
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94 added: Vec<u8>, |
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95 } |
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96 |
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97 impl IndexData { |
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98 pub fn new(bytes: Box<dyn Deref<Target = [u8]> + Send + Sync>) -> Self { |
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99 Self { |
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100 bytes, |
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101 truncation: None, |
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102 added: vec![], |
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103 } |
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104 } |
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105 |
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106 pub fn len(&self) -> usize { |
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107 match self.truncation { |
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108 Some(truncation) => truncation + self.added.len(), |
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109 None => self.bytes.len() + self.added.len(), |
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110 } |
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111 } |
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112 |
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113 fn remove( |
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114 &mut self, |
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115 rev: Revision, |
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116 offsets: Option<&[usize]>, |
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117 ) -> Result<(), RevlogError> { |
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118 let rev = rev.0 as usize; |
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119 let truncation = if let Some(offsets) = offsets { |
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120 offsets[rev] |
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121 } else { |
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122 rev * INDEX_ENTRY_SIZE |
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123 }; |
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124 if truncation < self.bytes.len() { |
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125 self.truncation = Some(truncation); |
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126 self.added.clear(); |
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127 } else { |
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128 self.added.truncate(truncation - self.bytes.len()); |
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129 } |
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130 Ok(()) |
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131 } |
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132 |
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133 fn is_new(&self) -> bool { |
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134 self.bytes.is_empty() |
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135 } |
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136 } |
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137 |
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138 impl std::ops::Index<std::ops::Range<usize>> for IndexData { |
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139 type Output = [u8]; |
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140 |
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141 fn index(&self, index: std::ops::Range<usize>) -> &Self::Output { |
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142 let start = index.start; |
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143 let end = index.end; |
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144 let immutable_len = match self.truncation { |
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145 Some(truncation) => truncation, |
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146 None => self.bytes.len(), |
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147 }; |
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148 if start < immutable_len { |
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149 if end > immutable_len { |
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150 panic!("index data cannot span existing and added ranges"); |
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151 } |
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152 &self.bytes[index] |
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153 } else { |
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154 &self.added[start - immutable_len..end - immutable_len] |
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155 } |
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156 } |
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157 } |
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158 |
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159 #[derive(Debug, PartialEq, Eq)] |
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160 pub struct RevisionDataParams { |
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161 pub flags: u16, |
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162 pub data_offset: u64, |
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163 pub data_compressed_length: i32, |
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164 pub data_uncompressed_length: i32, |
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165 pub data_delta_base: i32, |
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166 pub link_rev: i32, |
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167 pub parent_rev_1: i32, |
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168 pub parent_rev_2: i32, |
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169 pub node_id: [u8; NODE_BYTES_LENGTH], |
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170 pub _sidedata_offset: u64, |
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171 pub _sidedata_compressed_length: i32, |
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172 pub data_compression_mode: u8, |
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173 pub _sidedata_compression_mode: u8, |
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174 pub _rank: i32, |
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175 } |
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176 |
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177 impl Default for RevisionDataParams { |
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178 fn default() -> Self { |
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179 Self { |
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180 flags: 0, |
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181 data_offset: 0, |
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182 data_compressed_length: 0, |
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183 data_uncompressed_length: 0, |
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184 data_delta_base: -1, |
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185 link_rev: -1, |
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186 parent_rev_1: -1, |
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187 parent_rev_2: -1, |
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188 node_id: [0; NODE_BYTES_LENGTH], |
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189 _sidedata_offset: 0, |
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190 _sidedata_compressed_length: 0, |
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191 data_compression_mode: COMPRESSION_MODE_INLINE, |
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192 _sidedata_compression_mode: COMPRESSION_MODE_INLINE, |
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193 _rank: -1, |
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194 } |
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195 } |
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196 } |
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197 |
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198 #[derive(BytesCast)] |
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199 #[repr(C)] |
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200 pub struct RevisionDataV1 { |
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201 data_offset_or_flags: unaligned::U64Be, |
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202 data_compressed_length: unaligned::I32Be, |
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203 data_uncompressed_length: unaligned::I32Be, |
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204 data_delta_base: unaligned::I32Be, |
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205 link_rev: unaligned::I32Be, |
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206 parent_rev_1: unaligned::I32Be, |
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207 parent_rev_2: unaligned::I32Be, |
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208 node_id: [u8; STORED_NODE_ID_BYTES], |
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209 } |
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210 |
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211 fn _static_assert_size_of_revision_data_v1() { |
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212 let _ = std::mem::transmute::<RevisionDataV1, [u8; 64]>; |
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213 } |
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214 |
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215 impl RevisionDataParams { |
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216 pub fn validate(&self) -> Result<(), RevlogError> { |
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217 if self.flags & !REVIDX_KNOWN_FLAGS != 0 { |
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218 return Err(RevlogError::corrupted(format!( |
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219 "unknown revlog index flags: {}", |
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220 self.flags |
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221 ))); |
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222 } |
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223 if self.data_compression_mode != COMPRESSION_MODE_INLINE { |
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224 return Err(RevlogError::corrupted(format!( |
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225 "invalid data compression mode: {}", |
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226 self.data_compression_mode |
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227 ))); |
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228 } |
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229 // FIXME isn't this only for v2 or changelog v2? |
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230 if self._sidedata_compression_mode != COMPRESSION_MODE_INLINE { |
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231 return Err(RevlogError::corrupted(format!( |
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232 "invalid sidedata compression mode: {}", |
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233 self._sidedata_compression_mode |
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234 ))); |
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235 } |
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236 Ok(()) |
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237 } |
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238 |
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239 pub fn into_v1(self) -> RevisionDataV1 { |
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240 let data_offset_or_flags = self.data_offset << 16 | self.flags as u64; |
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241 let mut node_id = [0; STORED_NODE_ID_BYTES]; |
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242 node_id[..NODE_BYTES_LENGTH].copy_from_slice(&self.node_id); |
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243 RevisionDataV1 { |
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244 data_offset_or_flags: data_offset_or_flags.into(), |
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245 data_compressed_length: self.data_compressed_length.into(), |
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246 data_uncompressed_length: self.data_uncompressed_length.into(), |
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247 data_delta_base: self.data_delta_base.into(), |
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248 link_rev: self.link_rev.into(), |
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249 parent_rev_1: self.parent_rev_1.into(), |
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250 parent_rev_2: self.parent_rev_2.into(), |
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251 node_id, |
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252 } |
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253 } |
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254 } |
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255 |
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256 /// A Revlog index |
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257 pub struct Index { |
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258 bytes: IndexData, |
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259 /// Offsets of starts of index blocks. |
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260 /// Only needed when the index is interleaved with data. |
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261 offsets: RwLock<Option<Vec<usize>>>, |
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262 uses_generaldelta: bool, |
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263 is_inline: bool, |
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264 /// Cache of (head_revisions, filtered_revisions) |
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265 /// |
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266 /// The head revisions in this index, kept in sync. Should |
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267 /// be accessed via the [`Self::head_revs`] method. |
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268 /// The last filtered revisions in this index, used to make sure |
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269 /// we haven't changed filters when returning the cached `head_revs`. |
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270 head_revs: RwLock<(Vec<Revision>, HashSet<Revision>)>, |
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271 } |
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272 |
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273 impl Debug for Index { |
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274 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result { |
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275 f.debug_struct("Index") |
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276 .field("offsets", &self.offsets) |
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277 .field("uses_generaldelta", &self.uses_generaldelta) |
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278 .finish() |
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279 } |
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280 } |
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281 |
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282 impl Graph for Index { |
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283 #[inline(always)] |
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284 fn parents(&self, rev: Revision) -> Result<[Revision; 2], GraphError> { |
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285 let err = || GraphError::ParentOutOfRange(rev); |
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286 match self.get_entry(rev) { |
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287 Some(entry) => { |
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288 // The C implementation checks that the parents are valid |
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289 // before returning |
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290 Ok([ |
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291 self.check_revision(entry.p1()).ok_or_else(err)?, |
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292 self.check_revision(entry.p2()).ok_or_else(err)?, |
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293 ]) |
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294 } |
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295 None => Ok([NULL_REVISION, NULL_REVISION]), |
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296 } |
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297 } |
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298 } |
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299 |
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300 /// A cache suitable for find_snapshots |
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301 /// |
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302 /// Logically equivalent to a mapping whose keys are [`BaseRevision`] and |
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303 /// values sets of [`BaseRevision`] |
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304 /// |
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305 /// TODO the dubious part is insisting that errors must be RevlogError |
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306 /// we would probably need to sprinkle some magic here, such as an associated |
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307 /// type that would be Into<RevlogError> but even that would not be |
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308 /// satisfactory, as errors potentially have nothing to do with the revlog. |
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309 pub trait SnapshotsCache { |
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310 fn insert_for( |
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311 &mut self, |
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312 rev: BaseRevision, |
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313 value: BaseRevision, |
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314 ) -> Result<(), RevlogError>; |
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315 } |
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316 |
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317 impl SnapshotsCache for FastHashMap<BaseRevision, HashSet<BaseRevision>> { |
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318 fn insert_for( |
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319 &mut self, |
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320 rev: BaseRevision, |
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321 value: BaseRevision, |
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322 ) -> Result<(), RevlogError> { |
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323 let all_values = self.entry(rev).or_default(); |
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324 all_values.insert(value); |
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325 Ok(()) |
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326 } |
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327 } |
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328 |
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329 impl Index { |
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330 /// Create an index from bytes. |
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331 /// Calculate the start of each entry when is_inline is true. |
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332 pub fn new( |
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333 bytes: Box<dyn Deref<Target = [u8]> + Send + Sync>, |
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334 default_header: IndexHeader, |
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335 ) -> Result<Self, HgError> { |
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336 let header = |
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337 IndexHeader::parse(bytes.as_ref())?.unwrap_or(default_header); |
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338 |
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339 if header.format_version() != IndexHeader::REVLOGV1 { |
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340 // A proper new version should have had a repo/store |
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341 // requirement. |
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342 return Err(HgError::corrupted("unsupported revlog version")); |
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343 } |
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344 |
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345 // This is only correct because we know version is REVLOGV1. |
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346 // In v2 we always use generaldelta, while in v0 we never use |
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347 // generaldelta. Similar for [is_inline] (it's only used in v1). |
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348 let uses_generaldelta = header.format_flags().uses_generaldelta(); |
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349 |
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350 if header.format_flags().is_inline() { |
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351 let mut offset: usize = 0; |
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352 let mut offsets = Vec::new(); |
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353 |
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354 while offset + INDEX_ENTRY_SIZE <= bytes.len() { |
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355 offsets.push(offset); |
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356 let end = offset + INDEX_ENTRY_SIZE; |
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357 let entry = IndexEntry { |
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358 bytes: &bytes[offset..end], |
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359 offset_override: None, |
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360 }; |
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361 |
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362 offset += INDEX_ENTRY_SIZE + entry.compressed_len() as usize; |
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363 } |
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364 |
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365 if offset == bytes.len() { |
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366 Ok(Self { |
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367 bytes: IndexData::new(bytes), |
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368 offsets: RwLock::new(Some(offsets)), |
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369 uses_generaldelta, |
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370 is_inline: true, |
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371 head_revs: RwLock::new((vec![], HashSet::new())), |
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372 }) |
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373 } else { |
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374 Err(HgError::corrupted("unexpected inline revlog length")) |
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375 } |
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376 } else { |
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377 Ok(Self { |
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378 bytes: IndexData::new(bytes), |
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379 offsets: RwLock::new(None), |
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380 uses_generaldelta, |
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381 is_inline: false, |
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382 head_revs: RwLock::new((vec![], HashSet::new())), |
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383 }) |
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384 } |
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385 } |
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386 |
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387 pub fn uses_generaldelta(&self) -> bool { |
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388 self.uses_generaldelta |
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389 } |
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390 |
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391 /// Value of the inline flag. |
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392 pub fn is_inline(&self) -> bool { |
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393 self.is_inline |
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394 } |
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395 |
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396 /// Return a slice of bytes if `revlog` is inline. Panic if not. |
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397 pub fn data(&self, start: usize, end: usize) -> &[u8] { |
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398 if !self.is_inline() { |
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399 panic!("tried to access data in the index of a revlog that is not inline"); |
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400 } |
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401 &self.bytes[start..end] |
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402 } |
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403 |
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404 /// Return number of entries of the revlog index. |
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405 pub fn len(&self) -> usize { |
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406 if self.is_inline() { |
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407 (*self.get_offsets()) |
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408 .as_ref() |
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409 .expect("inline should have offsets") |
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410 .len() |
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411 } else { |
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412 self.bytes.len() / INDEX_ENTRY_SIZE |
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413 } |
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414 } |
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415 |
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416 pub fn get_offsets(&self) -> RwLockReadGuard<Option<Vec<usize>>> { |
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417 assert!(self.is_inline()); |
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418 { |
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419 // Wrap in a block to drop the read guard |
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420 // TODO perf? |
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421 let mut offsets = self.offsets.write().unwrap(); |
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422 if offsets.is_none() { |
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423 offsets.replace(inline_scan(&self.bytes.bytes).1); |
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424 } |
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425 } |
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426 self.offsets.read().unwrap() |
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427 } |
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428 |
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429 pub fn get_offsets_mut(&mut self) -> RwLockWriteGuard<Option<Vec<usize>>> { |
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430 assert!(self.is_inline()); |
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431 let mut offsets = self.offsets.write().unwrap(); |
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432 if offsets.is_none() { |
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433 offsets.replace(inline_scan(&self.bytes.bytes).1); |
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434 } |
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435 offsets |
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436 } |
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437 |
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438 /// Returns `true` if the `Index` has zero `entries`. |
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439 pub fn is_empty(&self) -> bool { |
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440 self.len() == 0 |
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441 } |
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442 |
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443 /// Return the index entry corresponding to the given revision or `None` |
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444 /// for [`NULL_REVISION`] |
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445 /// |
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446 /// The specified revision being of the checked type, it always exists |
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447 /// if it was validated by this index. |
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448 pub fn get_entry(&self, rev: Revision) -> Option<IndexEntry> { |
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449 if rev == NULL_REVISION { |
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450 return None; |
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451 } |
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452 Some(if self.is_inline() { |
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453 self.get_entry_inline(rev) |
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454 } else { |
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455 self.get_entry_separated(rev) |
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456 }) |
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457 } |
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458 |
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459 /// Return the binary content of the index entry for the given revision |
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460 /// |
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461 /// See [get_entry()](`Self::get_entry()`) for cases when `None` is |
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462 /// returned. |
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463 pub fn entry_binary(&self, rev: Revision) -> Option<&[u8]> { |
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464 self.get_entry(rev).map(|e| { |
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465 let bytes = e.as_bytes(); |
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466 if rev.0 == 0 { |
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467 &bytes[4..] |
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468 } else { |
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469 bytes |
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470 } |
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471 }) |
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472 } |
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473 |
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474 pub fn entry_as_params( |
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475 &self, |
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476 rev: UncheckedRevision, |
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477 ) -> Option<RevisionDataParams> { |
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478 let rev = self.check_revision(rev)?; |
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479 self.get_entry(rev).map(|e| RevisionDataParams { |
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480 flags: e.flags(), |
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481 data_offset: if rev.0 == 0 && !self.bytes.is_new() { |
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482 e.flags() as u64 |
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483 } else { |
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484 e.raw_offset() |
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485 }, |
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486 data_compressed_length: e |
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487 .compressed_len() |
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488 .try_into() |
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489 .unwrap_or_else(|_| { |
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490 // Python's `unionrepo` sets the compressed length to be |
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491 // `-1` (or `u32::MAX` if transmuted to `u32`) because it |
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492 // cannot know the correct compressed length of a given |
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493 // revision. I'm not sure if this is true, but having this |
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494 // edge case won't hurt other use cases, let's handle it. |
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495 assert_eq!(e.compressed_len(), u32::MAX); |
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496 NULL_REVISION.0 |
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497 }), |
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498 data_uncompressed_length: e.uncompressed_len(), |
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499 data_delta_base: e.base_revision_or_base_of_delta_chain().0, |
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500 link_rev: e.link_revision().0, |
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501 parent_rev_1: e.p1().0, |
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502 parent_rev_2: e.p2().0, |
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503 node_id: e.hash().as_bytes().try_into().unwrap(), |
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504 ..Default::default() |
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505 }) |
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506 } |
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507 |
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508 fn get_entry_inline(&self, rev: Revision) -> IndexEntry { |
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509 let offsets = &self.get_offsets(); |
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510 let offsets = offsets.as_ref().expect("inline should have offsets"); |
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511 let start = offsets[rev.0 as usize]; |
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512 let end = start + INDEX_ENTRY_SIZE; |
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513 let bytes = &self.bytes[start..end]; |
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514 |
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515 // See IndexEntry for an explanation of this override. |
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516 let offset_override = Some(end); |
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517 |
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518 IndexEntry { |
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519 bytes, |
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520 offset_override, |
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521 } |
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522 } |
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523 |
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524 fn get_entry_separated(&self, rev: Revision) -> IndexEntry { |
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525 let start = rev.0 as usize * INDEX_ENTRY_SIZE; |
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526 let end = start + INDEX_ENTRY_SIZE; |
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527 let bytes = &self.bytes[start..end]; |
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528 |
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529 // Override the offset of the first revision as its bytes are used |
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530 // for the index's metadata (saving space because it is always 0) |
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531 let offset_override = if rev == Revision(0) { Some(0) } else { None }; |
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532 |
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533 IndexEntry { |
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534 bytes, |
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535 offset_override, |
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536 } |
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537 } |
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538 |
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539 fn null_entry(&self) -> IndexEntry { |
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540 IndexEntry { |
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541 bytes: &[0; INDEX_ENTRY_SIZE], |
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542 offset_override: Some(0), |
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543 } |
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544 } |
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545 |
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546 /// Return the head revisions of this index |
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547 pub fn head_revs(&self) -> Result<Vec<Revision>, GraphError> { |
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548 self.head_revs_filtered(&HashSet::new(), false) |
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549 .map(|h| h.unwrap()) |
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550 } |
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551 |
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552 /// Python-specific shortcut to save on PyList creation |
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553 pub fn head_revs_shortcut( |
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554 &self, |
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555 ) -> Result<Option<Vec<Revision>>, GraphError> { |
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556 self.head_revs_filtered(&HashSet::new(), true) |
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557 } |
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558 |
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559 /// Return the heads removed and added by advancing from `begin` to `end`. |
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560 /// In revset language, we compute: |
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561 /// - `heads(:begin)-heads(:end)` |
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562 /// - `heads(:end)-heads(:begin)` |
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563 pub fn head_revs_diff( |
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564 &self, |
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565 begin: Revision, |
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566 end: Revision, |
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567 ) -> Result<(Vec<Revision>, Vec<Revision>), GraphError> { |
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568 let mut heads_added = vec![]; |
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569 let mut heads_removed = vec![]; |
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570 |
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571 let mut acc = HashSet::new(); |
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572 let Revision(begin) = begin; |
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573 let Revision(end) = end; |
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574 let mut i = end; |
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575 |
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576 while i > begin { |
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577 // acc invariant: |
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578 // `j` is in the set iff `j <= i` and it has children |
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579 // among `i+1..end` (inclusive) |
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580 if !acc.remove(&i) { |
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581 heads_added.push(Revision(i)); |
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582 } |
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583 for Revision(parent) in self.parents(Revision(i))? { |
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584 acc.insert(parent); |
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585 } |
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586 i -= 1; |
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587 } |
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588 |
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589 // At this point `acc` contains old revisions that gained new children. |
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590 // We need to check if they had any children before. If not, those |
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591 // revisions are the removed heads. |
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592 while !acc.is_empty() { |
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593 // acc invariant: |
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594 // `j` is in the set iff `j <= i` and it has children |
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595 // among `begin+1..end`, but not among `i+1..begin` (inclusive) |
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596 |
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597 assert!(i >= -1); // yes, `-1` can also be a head if the repo is empty |
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598 if acc.remove(&i) { |
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599 heads_removed.push(Revision(i)); |
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600 } |
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601 for Revision(parent) in self.parents(Revision(i))? { |
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602 acc.remove(&parent); |
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603 } |
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604 i -= 1; |
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605 } |
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606 |
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607 Ok((heads_removed, heads_added)) |
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608 } |
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609 |
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610 /// Return the head revisions of this index |
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611 pub fn head_revs_filtered( |
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612 &self, |
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613 filtered_revs: &HashSet<Revision>, |
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614 py_shortcut: bool, |
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615 ) -> Result<Option<Vec<Revision>>, GraphError> { |
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616 { |
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617 let guard = self |
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618 .head_revs |
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619 .read() |
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620 .expect("RwLock on Index.head_revs should not be poisoned"); |
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621 let self_head_revs = &guard.0; |
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622 let self_filtered_revs = &guard.1; |
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623 if !self_head_revs.is_empty() |
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624 && filtered_revs == self_filtered_revs |
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625 { |
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626 if py_shortcut { |
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627 // Don't copy the revs since we've already cached them |
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628 // on the Python side. |
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629 return Ok(None); |
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630 } else { |
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631 return Ok(Some(self_head_revs.to_owned())); |
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632 } |
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633 } |
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634 } |
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635 |
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636 let as_vec = if self.is_empty() { |
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637 vec![NULL_REVISION] |
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638 } else { |
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639 let mut not_heads = bitvec![0; self.len()]; |
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640 dagops::retain_heads_fast( |
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641 self, |
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642 not_heads.as_mut_bitslice(), |
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643 filtered_revs, |
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644 )?; |
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645 not_heads |
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646 .into_iter() |
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647 .enumerate() |
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648 .filter_map(|(idx, is_not_head)| { |
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649 if is_not_head { |
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650 None |
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651 } else { |
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652 Some(Revision(idx as BaseRevision)) |
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653 } |
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654 }) |
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655 .collect() |
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656 }; |
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657 *self |
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658 .head_revs |
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659 .write() |
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660 .expect("RwLock on Index.head_revs should not be poisoned") = |
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661 (as_vec.to_owned(), filtered_revs.to_owned()); |
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662 Ok(Some(as_vec)) |
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663 } |
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664 |
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665 /// Obtain the delta chain for a revision. |
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666 /// |
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667 /// `stop_rev` specifies a revision to stop at. If not specified, we |
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668 /// stop at the base of the chain. |
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669 /// |
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670 /// Returns a 2-tuple of (chain, stopped) where `chain` is a vec of |
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671 /// revs in ascending order and `stopped` is a bool indicating whether |
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672 /// `stoprev` was hit. |
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673 pub fn delta_chain( |
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674 &self, |
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675 rev: Revision, |
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676 stop_rev: Option<Revision>, |
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677 using_general_delta: Option<bool>, |
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678 ) -> Result<(Vec<Revision>, bool), HgError> { |
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679 let mut current_rev = rev; |
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680 let mut entry = self.get_entry(rev).unwrap(); |
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681 let mut chain = vec![]; |
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682 let using_general_delta = |
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683 using_general_delta.unwrap_or_else(|| self.uses_generaldelta()); |
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684 while current_rev.0 != entry.base_revision_or_base_of_delta_chain().0 |
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685 && stop_rev.map(|r| r != current_rev).unwrap_or(true) |
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686 { |
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687 chain.push(current_rev); |
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688 let new_rev = if using_general_delta { |
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689 entry.base_revision_or_base_of_delta_chain() |
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690 } else { |
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691 UncheckedRevision(current_rev.0 - 1) |
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692 }; |
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693 current_rev = self.check_revision(new_rev).ok_or_else(|| { |
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694 HgError::corrupted(format!("Revision {new_rev} out of range")) |
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695 })?; |
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696 if current_rev.0 == NULL_REVISION.0 { |
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697 break; |
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698 } |
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699 entry = self.get_entry(current_rev).unwrap() |
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700 } |
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701 |
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702 let stopped = if stop_rev.map(|r| current_rev == r).unwrap_or(false) { |
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703 true |
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704 } else { |
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705 chain.push(current_rev); |
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706 false |
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707 }; |
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708 chain.reverse(); |
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709 Ok((chain, stopped)) |
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710 } |
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711 |
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712 pub fn find_snapshots( |
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713 &self, |
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714 start_rev: UncheckedRevision, |
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715 end_rev: UncheckedRevision, |
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716 cache: &mut impl SnapshotsCache, |
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717 ) -> Result<(), RevlogError> { |
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718 let mut start_rev = start_rev.0; |
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719 let mut end_rev = end_rev.0; |
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720 end_rev += 1; |
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721 let len = self.len().try_into().unwrap(); |
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722 if end_rev > len { |
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723 end_rev = len; |
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724 } |
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725 if start_rev < 0 { |
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726 start_rev = 0; |
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727 } |
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728 for rev in start_rev..end_rev { |
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729 if !self.is_snapshot_unchecked(Revision(rev))? { |
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730 continue; |
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731 } |
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732 let mut base = self |
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733 .get_entry(Revision(rev)) |
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734 .unwrap() |
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735 .base_revision_or_base_of_delta_chain(); |
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736 if base.0 == rev { |
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737 base = NULL_REVISION.into(); |
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738 } |
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739 cache.insert_for(base.0, rev)?; |
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740 } |
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741 Ok(()) |
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742 } |
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743 |
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744 fn clear_head_revs(&self) { |
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745 self.head_revs |
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746 .write() |
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747 .expect("RwLock on Index.head_revs should not be poisoined") |
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748 .0 |
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749 .clear() |
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750 } |
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751 |
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752 /// TODO move this to the trait probably, along with other things |
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753 pub fn append( |
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754 &mut self, |
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755 revision_data: RevisionDataParams, |
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756 ) -> Result<(), RevlogError> { |
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757 revision_data.validate()?; |
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758 if self.is_inline() { |
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759 let new_offset = self.bytes.len(); |
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760 if let Some(offsets) = &mut *self.get_offsets_mut() { |
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761 offsets.push(new_offset) |
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762 } |
51189
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763 } |
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764 self.bytes.added.extend(revision_data.into_v1().as_bytes()); |
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765 self.clear_head_revs(); |
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766 Ok(()) |
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767 } |
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768 |
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769 pub fn pack_header(&self, header: i32) -> [u8; 4] { |
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770 header.to_be_bytes() |
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771 } |
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772 |
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773 pub fn remove(&mut self, rev: Revision) -> Result<(), RevlogError> { |
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774 let offsets = if self.is_inline() { |
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775 self.get_offsets().clone() |
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776 } else { |
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777 None |
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778 }; |
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779 self.bytes.remove(rev, offsets.as_deref())?; |
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780 if self.is_inline() { |
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781 if let Some(offsets) = &mut *self.get_offsets_mut() { |
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782 offsets.truncate(rev.0 as usize) |
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783 } |
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784 } |
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785 self.clear_head_revs(); |
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786 Ok(()) |
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787 } |
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788 |
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789 pub fn clear_caches(&self) { |
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790 // We need to get the 'inline' value from Python at init and use this |
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791 // instead of offsets to determine whether we're inline since we might |
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792 // clear caches. This implies re-populating the offsets on-demand. |
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793 *self |
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794 .offsets |
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795 .write() |
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796 .expect("RwLock on Index.offsets should not be poisoed") = None; |
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797 self.clear_head_revs(); |
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798 } |
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799 |
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800 /// Unchecked version of `is_snapshot`. |
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801 /// Assumes the caller checked that `rev` is within a valid revision range. |
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802 pub fn is_snapshot_unchecked( |
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803 &self, |
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804 mut rev: Revision, |
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805 ) -> Result<bool, RevlogError> { |
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806 while rev.0 >= 0 { |
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807 let entry = self.get_entry(rev).unwrap(); |
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808 let mut base = entry.base_revision_or_base_of_delta_chain().0; |
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809 if base == rev.0 { |
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810 base = NULL_REVISION.0; |
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811 } |
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812 if base == NULL_REVISION.0 { |
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813 return Ok(true); |
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814 } |
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815 let [mut p1, mut p2] = self |
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816 .parents(rev) |
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817 .map_err(|_| RevlogError::InvalidRevision)?; |
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818 while let Some(p1_entry) = self.get_entry(p1) { |
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819 if p1_entry.compressed_len() != 0 || p1.0 == 0 { |
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820 break; |
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821 } |
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822 let parent_base = |
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823 p1_entry.base_revision_or_base_of_delta_chain(); |
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824 if parent_base.0 == p1.0 { |
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825 break; |
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826 } |
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827 p1 = self |
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828 .check_revision(parent_base) |
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829 .ok_or(RevlogError::InvalidRevision)?; |
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830 } |
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831 while let Some(p2_entry) = self.get_entry(p2) { |
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832 if p2_entry.compressed_len() != 0 || p2.0 == 0 { |
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833 break; |
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834 } |
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835 let parent_base = |
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836 p2_entry.base_revision_or_base_of_delta_chain(); |
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837 if parent_base.0 == p2.0 { |
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838 break; |
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839 } |
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840 p2 = self |
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841 .check_revision(parent_base) |
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842 .ok_or(RevlogError::InvalidRevision)?; |
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843 } |
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844 if base == p1.0 || base == p2.0 { |
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845 return Ok(false); |
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846 } |
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847 rev = self |
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848 .check_revision(base.into()) |
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849 .ok_or(RevlogError::InvalidRevision)?; |
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850 } |
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851 Ok(rev == NULL_REVISION) |
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852 } |
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853 |
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854 /// Return whether the given revision is a snapshot. Returns an error if |
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855 /// `rev` is not within a valid revision range. |
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856 pub fn is_snapshot( |
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857 &self, |
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858 rev: UncheckedRevision, |
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859 ) -> Result<bool, RevlogError> { |
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860 let rev = self |
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861 .check_revision(rev) |
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862 .ok_or_else(|| RevlogError::corrupted("test"))?; |
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863 self.is_snapshot_unchecked(rev) |
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864 } |
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865 |
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866 /// Slice revs to reduce the amount of unrelated data to be read from disk. |
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867 /// |
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868 /// The index is sliced into groups that should be read in one time. |
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869 /// |
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870 /// The initial chunk is sliced until the overall density |
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871 /// (payload/chunks-span ratio) is above `target_density`. |
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872 /// No gap smaller than `min_gap_size` is skipped. |
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873 pub fn slice_chunk_to_density( |
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874 &self, |
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875 revs: &[Revision], |
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876 target_density: f64, |
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877 min_gap_size: usize, |
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878 ) -> Vec<Vec<Revision>> { |
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879 if revs.is_empty() { |
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880 return vec![]; |
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881 } |
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882 if revs.len() == 1 { |
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883 return vec![revs.to_owned()]; |
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884 } |
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885 let delta_chain_span = self.segment_span(revs); |
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886 if delta_chain_span < min_gap_size { |
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887 return vec![revs.to_owned()]; |
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888 } |
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889 let entries: Vec<_> = revs |
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890 .iter() |
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891 .map(|r| { |
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892 (*r, self.get_entry(*r).unwrap_or_else(|| self.null_entry())) |
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893 }) |
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894 .collect(); |
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895 |
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896 let mut read_data = delta_chain_span; |
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897 let chain_payload: u32 = |
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898 entries.iter().map(|(_r, e)| e.compressed_len()).sum(); |
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899 let mut density = if delta_chain_span > 0 { |
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900 chain_payload as f64 / delta_chain_span as f64 |
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901 } else { |
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902 1.0 |
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903 }; |
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904 |
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905 if density >= target_density { |
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906 return vec![revs.to_owned()]; |
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907 } |
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908 |
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909 // Store the gaps in a heap to have them sorted by decreasing size |
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910 let mut gaps = Vec::new(); |
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911 let mut previous_end = None; |
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912 |
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913 for (i, (_rev, entry)) in entries.iter().enumerate() { |
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914 let start = entry.c_start() as usize; |
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915 let length = entry.compressed_len(); |
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916 |
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917 // Skip empty revisions to form larger holes |
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918 if length == 0 { |
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919 continue; |
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920 } |
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921 |
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922 if let Some(end) = previous_end { |
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923 let gap_size = start - end; |
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924 // Only consider holes that are large enough |
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925 if gap_size > min_gap_size { |
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926 gaps.push((gap_size, i)); |
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927 } |
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928 } |
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929 previous_end = Some(start + length as usize); |
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930 } |
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931 if gaps.is_empty() { |
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932 return vec![revs.to_owned()]; |
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933 } |
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934 // sort the gaps to pop them from largest to small |
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935 gaps.sort_unstable(); |
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936 |
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937 // Collect the indices of the largest holes until |
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938 // the density is acceptable |
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939 let mut selected = vec![]; |
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940 while let Some((gap_size, gap_id)) = gaps.pop() { |
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941 if density >= target_density { |
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942 break; |
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943 } |
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944 selected.push(gap_id); |
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945 |
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946 // The gap sizes are stored as negatives to be sorted decreasingly |
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947 // by the heap |
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948 read_data -= gap_size; |
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949 density = if read_data > 0 { |
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950 chain_payload as f64 / read_data as f64 |
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951 } else { |
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952 1.0 |
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953 }; |
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954 if density >= target_density { |
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955 break; |
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956 } |
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957 } |
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958 selected.sort_unstable(); |
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959 selected.push(revs.len()); |
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960 |
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961 // Cut the revs at collected indices |
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962 let mut previous_idx = 0; |
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963 let mut chunks = vec![]; |
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964 for idx in selected { |
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965 let chunk = self.trim_chunk(&entries, previous_idx, idx); |
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966 if !chunk.is_empty() { |
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967 chunks.push(chunk.iter().map(|(rev, _entry)| *rev).collect()); |
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968 } |
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969 previous_idx = idx; |
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970 } |
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971 let chunk = self.trim_chunk(&entries, previous_idx, entries.len()); |
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972 if !chunk.is_empty() { |
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973 chunks.push(chunk.iter().map(|(rev, _entry)| *rev).collect()); |
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974 } |
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975 |
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976 chunks |
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977 } |
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978 |
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979 /// Get the byte span of a segment of sorted revisions. |
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980 /// |
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981 /// Occurrences of [`NULL_REVISION`] are ignored at the beginning of |
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982 /// the `revs` segment. |
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983 /// |
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984 /// panics: |
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985 /// - if `revs` is empty or only made of `NULL_REVISION` |
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986 /// - if cannot retrieve entry for the last or first not null element of |
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987 /// `revs`. |
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988 fn segment_span(&self, revs: &[Revision]) -> usize { |
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989 if revs.is_empty() { |
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990 return 0; |
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991 } |
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992 let last_entry = &self.get_entry(revs[revs.len() - 1]).unwrap(); |
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993 let end = last_entry.c_start() + last_entry.compressed_len() as u64; |
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994 let first_rev = revs.iter().find(|r| r.0 != NULL_REVISION.0).unwrap(); |
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995 let start = if first_rev.0 == 0 { |
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996 0 |
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997 } else { |
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998 self.get_entry(*first_rev).unwrap().c_start() |
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999 }; |
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1000 (end - start) as usize |
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1001 } |
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1002 |
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1003 /// Returns `&revs[startidx..endidx]` without empty trailing revs |
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1004 fn trim_chunk<'a>( |
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1005 &'a self, |
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1006 revs: &'a [(Revision, IndexEntry)], |
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1007 start: usize, |
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1008 mut end: usize, |
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1009 ) -> &'a [(Revision, IndexEntry)] { |
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1010 // Trim empty revs at the end, except the very first rev of a chain |
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1011 let last_rev = revs[end - 1].0; |
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1012 if last_rev.0 < self.len() as BaseRevision { |
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1013 while end > 1 |
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1014 && end > start |
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1015 && revs[end - 1].1.compressed_len() == 0 |
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1016 { |
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1017 end -= 1 |
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1018 } |
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1019 } |
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1020 &revs[start..end] |
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1021 } |
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1022 |
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1023 /// Computes the set of revisions for each non-public phase from `roots`, |
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1024 /// which are the last known roots for each non-public phase. |
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1025 pub fn compute_phases_map_sets( |
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1026 &self, |
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1027 roots: HashMap<Phase, Vec<Revision>>, |
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1028 ) -> Result<(usize, RootsPerPhase), GraphError> { |
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1029 let mut phases = vec![Phase::Public; self.len()]; |
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1030 let mut min_phase_rev = NULL_REVISION; |
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1031 |
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1032 for phase in Phase::non_public_phases() { |
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1033 if let Some(phase_roots) = roots.get(phase) { |
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1034 let min_rev = |
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1035 self.add_roots_get_min(phase_roots, &mut phases, *phase); |
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1036 if min_rev != NULL_REVISION |
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1037 && (min_phase_rev == NULL_REVISION |
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1038 || min_rev < min_phase_rev) |
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1039 { |
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1040 min_phase_rev = min_rev; |
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1041 } |
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1042 } else { |
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1043 continue; |
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1044 }; |
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1045 } |
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1046 let mut phase_sets: RootsPerPhase = Default::default(); |
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1047 |
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1048 if min_phase_rev == NULL_REVISION { |
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1049 min_phase_rev = Revision(self.len() as BaseRevision); |
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1050 } |
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1051 |
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1052 for rev in min_phase_rev.0..self.len() as BaseRevision { |
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1053 let rev = Revision(rev); |
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1054 let [p1, p2] = self.parents(rev)?; |
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1055 |
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1056 if p1.0 >= 0 && phases[p1.0 as usize] > phases[rev.0 as usize] { |
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1057 phases[rev.0 as usize] = phases[p1.0 as usize]; |
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1058 } |
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1059 if p2.0 >= 0 && phases[p2.0 as usize] > phases[rev.0 as usize] { |
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1060 phases[rev.0 as usize] = phases[p2.0 as usize]; |
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1061 } |
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1062 let set = match phases[rev.0 as usize] { |
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1063 Phase::Public => continue, |
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1064 phase => &mut phase_sets[phase as usize - 1], |
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1065 }; |
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1066 set.push(rev); |
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1067 } |
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1068 |
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1069 Ok((self.len(), phase_sets)) |
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1070 } |
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1071 |
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1072 fn add_roots_get_min( |
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1073 &self, |
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1074 phase_roots: &[Revision], |
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1075 phases: &mut [Phase], |
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1076 phase: Phase, |
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1077 ) -> Revision { |
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1078 let mut min_rev = NULL_REVISION; |
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1079 |
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1080 for root in phase_roots { |
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1081 phases[root.0 as usize] = phase; |
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1082 if min_rev == NULL_REVISION || min_rev > *root { |
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1083 min_rev = *root; |
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1084 } |
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1085 } |
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1086 min_rev |
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1087 } |
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1088 |
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1089 /// Return `(heads(::(<roots> and <roots>::<heads>)))` |
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1090 /// If `include_path` is `true`, return `(<roots>::<heads>)`.""" |
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1091 /// |
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1092 /// `min_root` and `roots` are unchecked since they are just used as |
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1093 /// a bound or for comparison and don't need to represent a valid revision. |
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1094 /// In practice, the only invalid revision passed is the working directory |
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1095 /// revision ([`i32::MAX`]). |
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1096 pub fn reachable_roots( |
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1097 &self, |
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1098 min_root: UncheckedRevision, |
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1099 mut heads: Vec<Revision>, |
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1100 roots: HashSet<UncheckedRevision>, |
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1101 include_path: bool, |
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1102 ) -> Result<HashSet<Revision>, GraphError> { |
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1103 if roots.is_empty() { |
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1104 return Ok(HashSet::new()); |
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1105 } |
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1106 let mut reachable = HashSet::new(); |
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1107 let mut seen = HashMap::new(); |
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1108 |
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1109 while let Some(rev) = heads.pop() { |
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1110 if roots.contains(&rev.into()) { |
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1111 reachable.insert(rev); |
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1112 if !include_path { |
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1113 continue; |
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1114 } |
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1115 } |
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1116 let parents = self.parents(rev)?; |
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1117 seen.insert(rev, parents); |
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1118 for parent in parents { |
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1119 if parent.0 >= min_root.0 && !seen.contains_key(&parent) { |
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1120 heads.push(parent); |
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1121 } |
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1122 } |
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1123 } |
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1124 if !include_path { |
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1125 return Ok(reachable); |
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1126 } |
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1127 let mut revs: Vec<_> = seen.keys().collect(); |
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1128 revs.sort_unstable(); |
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1129 for rev in revs { |
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1130 for parent in seen[rev] { |
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1131 if reachable.contains(&parent) { |
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1132 reachable.insert(*rev); |
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1133 } |
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1134 } |
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1135 } |
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1136 Ok(reachable) |
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1137 } |
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1138 |
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1139 /// Given a (possibly overlapping) set of revs, return all the |
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1140 /// common ancestors heads: `heads(::args[0] and ::a[1] and ...)` |
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1141 pub fn common_ancestor_heads( |
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1142 &self, |
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1143 revisions: &[Revision], |
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1144 ) -> Result<Vec<Revision>, GraphError> { |
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1145 // given that revisions is expected to be small, we find this shortcut |
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1146 // potentially acceptable, especially given that `hg-cpython` could |
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1147 // very much bypass this, constructing a vector of unique values from |
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1148 // the onset. |
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1149 let as_set: HashSet<Revision> = revisions.iter().copied().collect(); |
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1150 // Besides deduplicating, the C version also implements the shortcut |
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1151 // for `NULL_REVISION`: |
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1152 if as_set.contains(&NULL_REVISION) { |
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1153 return Ok(vec![]); |
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1154 } |
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1155 |
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1156 let revisions: Vec<Revision> = as_set.into_iter().collect(); |
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1157 |
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1158 if revisions.len() < 8 { |
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1159 self.find_gca_candidates::<u8>(&revisions) |
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1160 } else if revisions.len() < 64 { |
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1161 self.find_gca_candidates::<u64>(&revisions) |
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1162 } else { |
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1163 self.find_gca_candidates::<NonStaticPoisonableBitSet>(&revisions) |
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1164 } |
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1165 } |
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1166 |
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1167 pub fn ancestors( |
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1168 &self, |
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1169 revisions: &[Revision], |
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1170 ) -> Result<Vec<Revision>, GraphError> { |
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1171 self.find_deepest_revs(&self.common_ancestor_heads(revisions)?) |
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1172 } |
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1173 |
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1174 /// Given a disjoint set of revs, return all candidates for the |
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1175 /// greatest common ancestor. In revset notation, this is the set |
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1176 /// `heads(::a and ::b and ...)` |
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1177 fn find_gca_candidates<BS: PoisonableBitSet + Clone>( |
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1178 &self, |
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1179 revs: &[Revision], |
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1180 ) -> Result<Vec<Revision>, GraphError> { |
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1181 if revs.is_empty() { |
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1182 return Ok(vec![]); |
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1183 } |
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1184 let revcount = revs.len(); |
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1185 let mut candidates = vec![]; |
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1186 let max_rev = revs.iter().max().unwrap(); |
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1187 |
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1188 let mut seen = BS::vec_of_empty(revs.len(), (max_rev.0 + 1) as usize); |
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1189 |
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1190 for (idx, rev) in revs.iter().enumerate() { |
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1191 seen[rev.0 as usize].add(idx); |
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1192 } |
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1193 let mut current_rev = *max_rev; |
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1194 // Number of revisions whose inspection in the main loop |
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1195 // will give a result or trigger inspection of other revisions |
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1196 let mut interesting = revcount; |
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1197 |
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1198 // The algorithm works on a vector of bit sets, indexed by revision |
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1199 // numbers and iterated on reverse order. |
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1200 // An entry in this vector is poisoned if and only if the corresponding |
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1201 // revision is a common, yet not maximal ancestor. |
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1202 |
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1203 // The principle of the algorithm is as follows: |
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1204 // For a revision `r`, when entering the loop, `seen[r]` is either |
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1205 // poisoned or the sub set of `revs` of which `r` is an ancestor. |
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1206 // In this sub set is full, then `r` is a solution and its parents |
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1207 // have to be poisoned. |
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1208 // |
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1209 // At each iteration, the bit sets of the parents are updated by |
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1210 // union with `seen[r]`. |
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1211 // As we walk the index from the end, we are sure we have encountered |
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1212 // all children of `r` before `r`, hence we know that `seen[r]` is |
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1213 // fully computed. |
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1214 // |
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1215 // On top of that there are several optimizations that make reading |
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1216 // less obvious than the comment above: |
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1217 // - The `interesting` counter allows to break early |
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1218 // - The loop starts from `max(revs)` |
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1219 // - Early return in case it is detected that one of the incoming revs |
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1220 // is a common ancestor of all of them. |
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1221 while current_rev.0 >= 0 && interesting > 0 { |
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1222 let current_seen = seen[current_rev.0 as usize].clone(); |
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1223 |
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1224 if current_seen.is_empty() { |
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1225 current_rev = Revision(current_rev.0 - 1); |
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1226 continue; |
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1227 } |
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1228 let mut poison = current_seen.is_poisoned(); |
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1229 if !poison { |
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1230 interesting -= 1; |
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1231 if current_seen.is_full_range(revcount) { |
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1232 candidates.push(current_rev); |
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1233 poison = true; |
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1234 |
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1235 // Being a common ancestor, if `current_rev` is among |
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1236 // the input revisions, it is *the* answer. |
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1237 for rev in revs { |
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1238 if *rev == current_rev { |
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1239 return Ok(candidates); |
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1240 } |
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1241 } |
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1242 } |
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1243 } |
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1244 for parent in self.parents(current_rev)? { |
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1245 if parent == NULL_REVISION { |
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1246 continue; |
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1247 } |
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1248 let parent_seen = &mut seen[parent.0 as usize]; |
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1249 if poison { |
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1250 // this block is logically equivalent to poisoning parent |
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1251 // and counting it as non interesting if it |
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1252 // has been seen before (hence counted then as interesting) |
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1253 if !parent_seen.is_empty() && !parent_seen.is_poisoned() { |
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1254 interesting -= 1; |
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1255 } |
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1256 parent_seen.poison(); |
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1257 } else { |
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1258 if parent_seen.is_empty() { |
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1259 interesting += 1; |
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1260 } |
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1261 parent_seen.union(¤t_seen); |
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1262 } |
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1263 } |
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1264 |
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1265 current_rev = Revision(current_rev.0 - 1); |
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1266 } |
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1267 |
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1268 Ok(candidates) |
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1269 } |
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1270 |
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1271 /// Given a disjoint set of revs, return the subset with the longest path |
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1272 /// to the root. |
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1273 fn find_deepest_revs( |
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1274 &self, |
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1275 revs: &[Revision], |
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1276 ) -> Result<Vec<Revision>, GraphError> { |
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1277 // TODO replace this all with just comparing rank? |
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1278 // Also, the original implementations in C/Python are cryptic, not |
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1279 // even sure we actually need this? |
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1280 if revs.len() <= 1 { |
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1281 return Ok(revs.to_owned()); |
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1282 } |
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1283 let max_rev = revs.iter().max().unwrap().0; |
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1284 let mut interesting = HashMap::new(); |
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1285 let mut seen = vec![0; max_rev as usize + 1]; |
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1286 let mut depth = vec![0; max_rev as usize + 1]; |
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1287 let mut mapping = vec![]; |
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1288 let mut revs = revs.to_owned(); |
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1289 revs.sort_unstable(); |
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1290 |
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1291 for (idx, rev) in revs.iter().enumerate() { |
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1292 depth[rev.0 as usize] = 1; |
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1293 let shift = 1 << idx; |
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1294 seen[rev.0 as usize] = shift; |
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1295 interesting.insert(shift, 1); |
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1296 mapping.push((shift, *rev)); |
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1297 } |
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1298 |
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1299 let mut current_rev = Revision(max_rev); |
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1300 while current_rev.0 >= 0 && interesting.len() > 1 { |
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1301 let current_depth = depth[current_rev.0 as usize]; |
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1302 if current_depth == 0 { |
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1303 current_rev = Revision(current_rev.0 - 1); |
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1304 continue; |
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1305 } |
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1306 |
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1307 let current_seen = seen[current_rev.0 as usize]; |
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1308 for parent in self.parents(current_rev)? { |
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1309 if parent == NULL_REVISION { |
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1310 continue; |
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1311 } |
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1312 let parent_seen = seen[parent.0 as usize]; |
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1313 let parent_depth = depth[parent.0 as usize]; |
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1314 if parent_depth <= current_depth { |
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1315 depth[parent.0 as usize] = current_depth + 1; |
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1316 if parent_seen != current_seen { |
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1317 *interesting.get_mut(¤t_seen).unwrap() += 1; |
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1318 seen[parent.0 as usize] = current_seen; |
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1319 if parent_seen != 0 { |
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1320 let parent_interesting = |
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1321 interesting.get_mut(&parent_seen).unwrap(); |
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1322 *parent_interesting -= 1; |
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1323 if *parent_interesting == 0 { |
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1324 interesting.remove(&parent_seen); |
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1325 } |
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1326 } |
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1327 } |
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1328 } else if current_depth == parent_depth - 1 { |
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1329 let either_seen = parent_seen | current_seen; |
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1330 if either_seen == parent_seen { |
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1331 continue; |
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1332 } |
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1333 seen[parent.0 as usize] = either_seen; |
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1334 interesting |
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1335 .entry(either_seen) |
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1336 .and_modify(|v| *v += 1) |
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1337 .or_insert(1); |
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1338 *interesting.get_mut(&parent_seen).unwrap() -= 1; |
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1339 if interesting[&parent_seen] == 0 { |
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1340 interesting.remove(&parent_seen); |
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1341 } |
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1342 } |
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1343 } |
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1344 *interesting.get_mut(¤t_seen).unwrap() -= 1; |
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1345 if interesting[¤t_seen] == 0 { |
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1346 interesting.remove(¤t_seen); |
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1347 } |
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1348 |
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1349 current_rev = Revision(current_rev.0 - 1); |
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1350 } |
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1351 |
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1352 if interesting.len() != 1 { |
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1353 return Ok(vec![]); |
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1354 } |
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1355 let mask = interesting.keys().next().unwrap(); |
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1356 |
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1357 Ok(mapping |
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1358 .into_iter() |
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1359 .filter_map(|(shift, rev)| { |
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1360 if (mask & shift) != 0 { |
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1361 return Some(rev); |
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1362 } |
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1363 None |
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1364 }) |
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1365 .collect()) |
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1366 } |
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1367 } |
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1368 |
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1369 /// The kind of functionality needed by find_gca_candidates |
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1370 /// |
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1371 /// This is a bit mask which can be declared to be "poisoned", which callers |
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1372 /// interpret to break out of some loops. |
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1373 /// |
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1374 /// The maximum capacity of the bit mask is up to the actual implementation |
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1375 trait PoisonableBitSet: Sized + PartialEq { |
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1376 /// Return a vector of exactly n elements, initialized to be empty. |
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1377 /// |
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1378 /// Optimization can vastly depend on implementation. Those being `Copy` |
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1379 /// and having constant capacity typically can have a very simple |
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1380 /// implementation. |
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1381 fn vec_of_empty(sets_size: usize, vec_len: usize) -> Vec<Self>; |
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1382 |
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1383 /// The size of the bit mask in memory |
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1384 fn size(&self) -> usize; |
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1385 |
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1386 /// The number of elements that can be represented in the set. |
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1387 /// |
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1388 /// Another way to put it is that it is the highest integer `C` such that |
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1389 /// the set is guaranteed to always be a subset of the integer range |
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1390 /// `[0, C)` |
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1391 fn capacity(&self) -> usize; |
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1392 |
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1393 /// Declare `n` to belong to the set |
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1394 fn add(&mut self, n: usize); |
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1395 |
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1396 /// Declare `n` not to belong to the set |
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1397 fn discard(&mut self, n: usize); |
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1398 |
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1399 /// Replace this bit set by its union with other |
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1400 fn union(&mut self, other: &Self); |
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1401 |
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1402 /// Poison the bit set |
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1403 /// |
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1404 /// Interpretation up to the caller |
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1405 fn poison(&mut self); |
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1406 |
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1407 /// Is the bit set poisoned? |
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1408 /// |
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1409 /// Interpretation is up to the caller |
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1410 fn is_poisoned(&self) -> bool; |
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1411 |
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1412 /// Is the bit set empty? |
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1413 fn is_empty(&self) -> bool; |
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1414 |
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1415 /// return `true` if and only if the bit is the full range `[0, n)` |
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1416 /// of integers |
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1417 fn is_full_range(&self, n: usize) -> bool; |
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1418 } |
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1419 |
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1420 const U64_POISON: u64 = 1 << 63; |
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1421 const U8_POISON: u8 = 1 << 7; |
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1422 |
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1423 impl PoisonableBitSet for u64 { |
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1424 fn vec_of_empty(_sets_size: usize, vec_len: usize) -> Vec<Self> { |
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1425 vec![0u64; vec_len] |
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1426 } |
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1427 |
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1428 fn size(&self) -> usize { |
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1429 8 |
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1430 } |
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1431 |
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1432 fn capacity(&self) -> usize { |
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1433 63 |
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1434 } |
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1435 |
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1436 fn add(&mut self, n: usize) { |
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1437 (*self) |= 1u64 << n; |
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1438 } |
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1439 |
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1440 fn discard(&mut self, n: usize) { |
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1441 (*self) &= u64::MAX - (1u64 << n); |
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1442 } |
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1443 |
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1444 fn union(&mut self, other: &Self) { |
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1445 if *self != *other { |
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1446 (*self) |= *other; |
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1447 } |
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1448 } |
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1449 |
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1450 fn is_full_range(&self, n: usize) -> bool { |
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1451 *self + 1 == (1u64 << n) |
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1452 } |
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1453 |
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1454 fn is_empty(&self) -> bool { |
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1455 *self == 0 |
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1456 } |
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1457 |
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1458 fn poison(&mut self) { |
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1459 *self = U64_POISON; |
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1460 } |
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1461 |
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1462 fn is_poisoned(&self) -> bool { |
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1463 // equality comparison would be tempting but would not resist |
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1464 // operations after poisoning (even if these should be bogus). |
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1465 *self >= U64_POISON |
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1466 } |
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1467 } |
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1468 |
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1469 impl PoisonableBitSet for u8 { |
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1470 fn vec_of_empty(_sets_size: usize, vec_len: usize) -> Vec<Self> { |
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1471 vec![0; vec_len] |
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1472 } |
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1473 |
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1474 fn size(&self) -> usize { |
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1475 1 |
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1476 } |
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1477 |
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1478 fn capacity(&self) -> usize { |
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1479 7 |
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1480 } |
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1481 |
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1482 fn add(&mut self, n: usize) { |
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1483 (*self) |= 1 << n; |
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1484 } |
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1485 |
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1486 fn discard(&mut self, n: usize) { |
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1487 (*self) &= u8::MAX - (1 << n); |
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1488 } |
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1489 |
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1490 fn union(&mut self, other: &Self) { |
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1491 if *self != *other { |
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1492 (*self) |= *other; |
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1493 } |
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1494 } |
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1495 |
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1496 fn is_full_range(&self, n: usize) -> bool { |
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1497 *self + 1 == (1 << n) |
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1498 } |
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1499 |
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1500 fn is_empty(&self) -> bool { |
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1501 *self == 0 |
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1502 } |
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1503 |
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1504 fn poison(&mut self) { |
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1505 *self = U8_POISON; |
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1506 } |
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1507 |
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1508 fn is_poisoned(&self) -> bool { |
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1509 // equality comparison would be tempting but would not resist |
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1510 // operations after poisoning (even if these should be bogus). |
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1511 *self >= U8_POISON |
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1512 } |
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1513 } |
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1514 |
51224
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1515 /// A poisonable bit set whose capacity is not known at compile time but |
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1516 /// is constant after initial construction |
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1517 /// |
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1518 /// This can be way further optimized if performance assessments (speed |
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1519 /// and/or RAM) require it. |
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1520 /// As far as RAM is concerned, for large vectors of these, the main problem |
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1521 /// would be the repetition of set_size in each item. We would need a trait |
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1522 /// to abstract over the idea of a vector of such bit sets to do better. |
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1523 #[derive(Clone, PartialEq)] |
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1524 struct NonStaticPoisonableBitSet { |
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1525 set_size: usize, |
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1526 bit_set: Vec<u64>, |
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1527 } |
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1528 |
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1529 /// Number of `u64` needed for a [`NonStaticPoisonableBitSet`] of given size |
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1530 fn non_static_poisonable_inner_len(set_size: usize) -> usize { |
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1531 1 + (set_size + 1) / 64 |
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1532 } |
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1533 |
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1534 impl NonStaticPoisonableBitSet { |
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1535 /// The index of the sub-bit set for the given n, and the index inside |
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1536 /// the latter |
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1537 fn index(&self, n: usize) -> (usize, usize) { |
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1538 (n / 64, n % 64) |
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1539 } |
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1540 } |
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1541 |
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1542 /// Mock implementation to ensure that the trait makes sense |
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1543 impl PoisonableBitSet for NonStaticPoisonableBitSet { |
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1544 fn vec_of_empty(set_size: usize, vec_len: usize) -> Vec<Self> { |
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1545 let tmpl = Self { |
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1546 set_size, |
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1547 bit_set: vec![0u64; non_static_poisonable_inner_len(set_size)], |
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1548 }; |
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1549 vec![tmpl; vec_len] |
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1550 } |
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1551 |
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1552 fn size(&self) -> usize { |
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1553 8 + self.bit_set.len() * 8 |
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1554 } |
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1555 |
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1556 fn capacity(&self) -> usize { |
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1557 self.set_size |
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1558 } |
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1559 |
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1560 fn add(&mut self, n: usize) { |
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1561 let (sub_bs, bit_pos) = self.index(n); |
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1562 self.bit_set[sub_bs] |= 1 << bit_pos |
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1563 } |
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1564 |
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1565 fn discard(&mut self, n: usize) { |
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1566 let (sub_bs, bit_pos) = self.index(n); |
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1567 self.bit_set[sub_bs] |= u64::MAX - (1 << bit_pos) |
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1568 } |
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1569 |
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1570 fn union(&mut self, other: &Self) { |
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1571 assert!( |
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1572 self.set_size == other.set_size, |
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1573 "Binary operations on bit sets can only be done on same size" |
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1574 ); |
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1575 for i in 0..self.bit_set.len() - 1 { |
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1576 self.bit_set[i] |= other.bit_set[i] |
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1577 } |
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1578 } |
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1579 |
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1580 fn is_full_range(&self, n: usize) -> bool { |
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1581 let (sub_bs, bit_pos) = self.index(n); |
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1582 self.bit_set[..sub_bs].iter().all(|bs| *bs == u64::MAX) |
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1583 && self.bit_set[sub_bs] == (1 << (bit_pos + 1)) - 1 |
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1584 } |
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1585 |
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1586 fn is_empty(&self) -> bool { |
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1587 self.bit_set.iter().all(|bs| *bs == 0u64) |
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1588 } |
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1589 |
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1590 fn poison(&mut self) { |
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1591 let (sub_bs, bit_pos) = self.index(self.set_size); |
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1592 self.bit_set[sub_bs] = 1 << bit_pos; |
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1593 } |
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1594 |
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1595 fn is_poisoned(&self) -> bool { |
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1596 let (sub_bs, bit_pos) = self.index(self.set_size); |
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1597 self.bit_set[sub_bs] >= 1 << bit_pos |
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1598 } |
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1599 } |
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1600 |
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1601 /// Set of roots of all non-public phases |
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1602 pub type RootsPerPhase = [Vec<Revision>; Phase::non_public_phases().len()]; |
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1603 |
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1604 #[derive(Debug, Copy, Clone, PartialEq, Eq, Ord, PartialOrd, Hash)] |
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1605 pub enum Phase { |
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1606 Public = 0, |
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1607 Draft = 1, |
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1608 Secret = 2, |
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1609 Archived = 3, |
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1610 Internal = 4, |
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1611 } |
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1612 |
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1613 impl TryFrom<usize> for Phase { |
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1614 type Error = RevlogError; |
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1615 |
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1616 fn try_from(value: usize) -> Result<Self, Self::Error> { |
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1617 Ok(match value { |
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1618 0 => Self::Public, |
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1619 1 => Self::Draft, |
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1620 2 => Self::Secret, |
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1621 32 => Self::Archived, |
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1622 96 => Self::Internal, |
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1623 v => { |
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1624 return Err(RevlogError::corrupted(format!( |
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1625 "invalid phase value {}", |
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1626 v |
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1627 ))) |
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1628 } |
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1629 }) |
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1630 } |
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1631 } |
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1632 |
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1633 impl Phase { |
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1634 pub const fn all_phases() -> &'static [Self] { |
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1635 &[ |
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1636 Self::Public, |
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1637 Self::Draft, |
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1638 Self::Secret, |
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1639 Self::Archived, |
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1640 Self::Internal, |
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1641 ] |
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1642 } |
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1643 pub const fn non_public_phases() -> &'static [Self] { |
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1644 &[Self::Draft, Self::Secret, Self::Archived, Self::Internal] |
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1645 } |
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1646 } |
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1647 |
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1648 fn inline_scan(bytes: &[u8]) -> (usize, Vec<usize>) { |
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1649 let mut offset: usize = 0; |
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1650 let mut offsets = Vec::new(); |
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1651 |
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1652 while offset + INDEX_ENTRY_SIZE <= bytes.len() { |
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1653 offsets.push(offset); |
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1654 let end = offset + INDEX_ENTRY_SIZE; |
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1655 let entry = IndexEntry { |
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1656 bytes: &bytes[offset..end], |
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1657 offset_override: None, |
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1658 }; |
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1659 |
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1660 offset += INDEX_ENTRY_SIZE + entry.compressed_len() as usize; |
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1661 } |
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1662 (offset, offsets) |
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1663 } |
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1664 |
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1665 impl super::RevlogIndex for Index { |
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1666 fn len(&self) -> usize { |
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1667 self.len() |
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1668 } |
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1669 |
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1670 fn node(&self, rev: Revision) -> Option<&Node> { |
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1671 if rev == NULL_REVISION { |
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1672 return Some(&NULL_NODE); |
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1673 } |
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1674 self.get_entry(rev).map(|entry| entry.hash()) |
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1675 } |
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1676 } |
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1677 |
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1678 #[derive(Debug)] |
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1679 pub struct IndexEntry<'a> { |
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1680 bytes: &'a [u8], |
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1681 /// Allows to override the offset value of the entry. |
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1682 /// |
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1683 /// For interleaved index and data, the offset stored in the index |
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1684 /// corresponds to the separated data offset. |
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1685 /// It has to be overridden with the actual offset in the interleaved |
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1686 /// index which is just after the index block. |
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1687 /// |
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1688 /// For separated index and data, the offset stored in the first index |
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1689 /// entry is mixed with the index headers. |
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1690 /// It has to be overridden with 0. |
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1691 offset_override: Option<usize>, |
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1692 } |
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1693 |
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1694 impl<'a> IndexEntry<'a> { |
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1695 /// Return the offset of the data. |
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1696 pub fn offset(&self) -> usize { |
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1697 if let Some(offset_override) = self.offset_override { |
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1698 offset_override |
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1699 } else { |
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1700 let mut bytes = [0; 8]; |
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1701 bytes[2..8].copy_from_slice(&self.bytes[0..=5]); |
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1702 BigEndian::read_u64(&bytes[..]) as usize |
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1703 } |
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1704 } |
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1705 pub fn raw_offset(&self) -> u64 { |
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1706 BigEndian::read_u64(&self.bytes[0..8]) |
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1707 } |
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1708 |
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1709 /// Same result (except potentially for rev 0) as C `index_get_start()` |
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1710 fn c_start(&self) -> u64 { |
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1711 self.raw_offset() >> 16 |
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1712 } |
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1713 |
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1714 pub fn flags(&self) -> u16 { |
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1715 BigEndian::read_u16(&self.bytes[6..=7]) |
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1716 } |
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1717 |
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1718 /// Return the compressed length of the data. |
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1719 pub fn compressed_len(&self) -> u32 { |
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1720 BigEndian::read_u32(&self.bytes[8..=11]) |
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1721 } |
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1722 |
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1723 /// Return the uncompressed length of the data. |
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1724 pub fn uncompressed_len(&self) -> i32 { |
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1725 BigEndian::read_i32(&self.bytes[12..=15]) |
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1726 } |
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1727 |
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1728 /// Return the revision upon which the data has been derived. |
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1729 pub fn base_revision_or_base_of_delta_chain(&self) -> UncheckedRevision { |
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1730 // TODO Maybe return an Option when base_revision == rev? |
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1731 // Requires to add rev to IndexEntry |
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1732 |
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1733 BigEndian::read_i32(&self.bytes[16..]).into() |
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1734 } |
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1735 |
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1736 pub fn link_revision(&self) -> UncheckedRevision { |
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1737 BigEndian::read_i32(&self.bytes[20..]).into() |
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1738 } |
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1739 |
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1740 pub fn p1(&self) -> UncheckedRevision { |
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1741 BigEndian::read_i32(&self.bytes[24..]).into() |
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1742 } |
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1743 |
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1744 pub fn p2(&self) -> UncheckedRevision { |
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1745 BigEndian::read_i32(&self.bytes[28..]).into() |
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1746 } |
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1747 |
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1748 /// Return the hash of revision's full text. |
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1749 /// |
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1750 /// Currently, SHA-1 is used and only the first 20 bytes of this field |
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1751 /// are used. |
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1752 pub fn hash(&self) -> &'a Node { |
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1753 (&self.bytes[32..52]).try_into().unwrap() |
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1754 } |
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1755 |
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1756 pub fn as_bytes(&self) -> &'a [u8] { |
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1757 self.bytes |
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1758 } |
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1759 } |
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1760 |
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1761 #[cfg(test)] |
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1762 mod tests { |
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1763 use super::*; |
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1764 use crate::node::NULL_NODE; |
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1765 |
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1766 #[cfg(test)] |
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1767 #[derive(Debug, Copy, Clone)] |
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1768 pub struct IndexEntryBuilder { |
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1769 is_first: bool, |
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1770 is_inline: bool, |
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1771 is_general_delta: bool, |
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1772 version: u16, |
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1773 offset: usize, |
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1774 compressed_len: usize, |
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1775 uncompressed_len: usize, |
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1776 base_revision_or_base_of_delta_chain: Revision, |
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1777 link_revision: Revision, |
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1778 p1: Revision, |
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1779 p2: Revision, |
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1780 node: Node, |
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1781 } |
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1782 |
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1783 #[cfg(test)] |
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1784 impl IndexEntryBuilder { |
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1785 #[allow(clippy::new_without_default)] |
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1786 pub fn new() -> Self { |
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1787 Self { |
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1788 is_first: false, |
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1789 is_inline: false, |
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1790 is_general_delta: true, |
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1791 version: 1, |
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1792 offset: 0, |
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1793 compressed_len: 0, |
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1794 uncompressed_len: 0, |
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1795 base_revision_or_base_of_delta_chain: Revision(0), |
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1796 link_revision: Revision(0), |
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1797 p1: NULL_REVISION, |
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1798 p2: NULL_REVISION, |
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1799 node: NULL_NODE, |
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1800 } |
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1801 } |
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1802 |
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1803 pub fn is_first(&mut self, value: bool) -> &mut Self { |
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1804 self.is_first = value; |
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1805 self |
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1806 } |
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1807 |
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1808 pub fn with_inline(&mut self, value: bool) -> &mut Self { |
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1809 self.is_inline = value; |
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1810 self |
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1811 } |
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1812 |
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1813 pub fn with_general_delta(&mut self, value: bool) -> &mut Self { |
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|
1814 self.is_general_delta = value; |
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1815 self |
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1816 } |
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1817 |
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1818 pub fn with_version(&mut self, value: u16) -> &mut Self { |
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1819 self.version = value; |
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1820 self |
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1821 } |
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1822 |
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1823 pub fn with_offset(&mut self, value: usize) -> &mut Self { |
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1824 self.offset = value; |
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1825 self |
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1826 } |
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1827 |
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1828 pub fn with_compressed_len(&mut self, value: usize) -> &mut Self { |
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1829 self.compressed_len = value; |
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1830 self |
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1831 } |
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1832 |
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1833 pub fn with_uncompressed_len(&mut self, value: usize) -> &mut Self { |
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1834 self.uncompressed_len = value; |
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1835 self |
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1836 } |
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1837 |
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1838 pub fn with_base_revision_or_base_of_delta_chain( |
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1839 &mut self, |
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1840 value: Revision, |
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1841 ) -> &mut Self { |
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|
1842 self.base_revision_or_base_of_delta_chain = value; |
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1843 self |
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1844 } |
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1845 |
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1846 pub fn with_link_revision(&mut self, value: Revision) -> &mut Self { |
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|
1847 self.link_revision = value; |
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1848 self |
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1849 } |
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|
1850 |
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1851 pub fn with_p1(&mut self, value: Revision) -> &mut Self { |
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1852 self.p1 = value; |
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1853 self |
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1854 } |
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|
1855 |
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1856 pub fn with_p2(&mut self, value: Revision) -> &mut Self { |
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1857 self.p2 = value; |
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1858 self |
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1859 } |
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1860 |
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1861 pub fn with_node(&mut self, value: Node) -> &mut Self { |
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|
1862 self.node = value; |
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1863 self |
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1864 } |
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1865 |
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1866 pub fn build(&self) -> Vec<u8> { |
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|
1867 let mut bytes = Vec::with_capacity(INDEX_ENTRY_SIZE); |
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1868 if self.is_first { |
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1869 bytes.extend(match (self.is_general_delta, self.is_inline) { |
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1870 (false, false) => [0u8, 0], |
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1871 (false, true) => [0u8, 1], |
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1872 (true, false) => [0u8, 2], |
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1873 (true, true) => [0u8, 3], |
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1874 }); |
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1875 bytes.extend(self.version.to_be_bytes()); |
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1876 // Remaining offset bytes. |
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1877 bytes.extend([0u8; 2]); |
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1878 } else { |
46887
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|
1879 // Offset stored on 48 bits (6 bytes) |
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1880 bytes.extend(&(self.offset as u64).to_be_bytes()[2..]); |
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1881 } |
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|
1882 bytes.extend([0u8; 2]); // Revision flags. |
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1883 bytes.extend((self.compressed_len as u32).to_be_bytes()); |
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1884 bytes.extend((self.uncompressed_len as u32).to_be_bytes()); |
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1885 bytes.extend( |
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|
1886 self.base_revision_or_base_of_delta_chain.0.to_be_bytes(), |
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1887 ); |
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1888 bytes.extend(self.link_revision.0.to_be_bytes()); |
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1889 bytes.extend(self.p1.0.to_be_bytes()); |
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1890 bytes.extend(self.p2.0.to_be_bytes()); |
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1891 bytes.extend(self.node.as_bytes()); |
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|
1892 bytes.extend(vec![0u8; 12]); |
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1893 bytes |
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1894 } |
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1895 } |
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1896 |
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1897 pub fn is_inline(index_bytes: &[u8]) -> bool { |
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1898 IndexHeader::parse(index_bytes) |
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1899 .expect("too short") |
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1900 .unwrap() |
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1901 .format_flags() |
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|
1902 .is_inline() |
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1903 } |
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1904 |
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1905 pub fn uses_generaldelta(index_bytes: &[u8]) -> bool { |
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1906 IndexHeader::parse(index_bytes) |
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1907 .expect("too short") |
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1908 .unwrap() |
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1909 .format_flags() |
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1910 .uses_generaldelta() |
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1911 } |
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1912 |
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1913 pub fn get_version(index_bytes: &[u8]) -> u16 { |
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1914 IndexHeader::parse(index_bytes) |
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1915 .expect("too short") |
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1916 .unwrap() |
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1917 .format_version() |
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1918 } |
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1919 |
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1920 #[test] |
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1921 fn flags_when_no_inline_flag_test() { |
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1922 let bytes = IndexEntryBuilder::new() |
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1923 .is_first(true) |
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1924 .with_general_delta(false) |
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1925 .with_inline(false) |
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1926 .build(); |
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1927 |
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1928 assert!(!is_inline(&bytes)); |
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1929 assert!(!uses_generaldelta(&bytes)); |
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1930 } |
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1931 |
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1932 #[test] |
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1933 fn flags_when_inline_flag_test() { |
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1934 let bytes = IndexEntryBuilder::new() |
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1935 .is_first(true) |
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1936 .with_general_delta(false) |
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1937 .with_inline(true) |
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1938 .build(); |
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1939 |
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1940 assert!(is_inline(&bytes)); |
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1941 assert!(!uses_generaldelta(&bytes)); |
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1942 } |
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1943 |
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1944 #[test] |
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1945 fn flags_when_inline_and_generaldelta_flags_test() { |
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1946 let bytes = IndexEntryBuilder::new() |
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1947 .is_first(true) |
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1948 .with_general_delta(true) |
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1949 .with_inline(true) |
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1950 .build(); |
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1951 |
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1952 assert!(is_inline(&bytes)); |
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1953 assert!(uses_generaldelta(&bytes)); |
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1954 } |
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1955 |
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1956 #[test] |
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1957 fn test_offset() { |
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1958 let bytes = IndexEntryBuilder::new().with_offset(1).build(); |
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1959 let entry = IndexEntry { |
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1960 bytes: &bytes, |
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1961 offset_override: None, |
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1962 }; |
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1963 |
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1964 assert_eq!(entry.offset(), 1) |
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1965 } |
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1966 |
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1967 #[test] |
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1968 fn test_with_overridden_offset() { |
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1969 let bytes = IndexEntryBuilder::new().with_offset(1).build(); |
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1970 let entry = IndexEntry { |
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1971 bytes: &bytes, |
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1972 offset_override: Some(2), |
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1973 }; |
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1974 |
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1975 assert_eq!(entry.offset(), 2) |
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1976 } |
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1977 |
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1978 #[test] |
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1979 fn test_compressed_len() { |
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1980 let bytes = IndexEntryBuilder::new().with_compressed_len(1).build(); |
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1981 let entry = IndexEntry { |
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1982 bytes: &bytes, |
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1983 offset_override: None, |
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1984 }; |
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1985 |
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1986 assert_eq!(entry.compressed_len(), 1) |
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1987 } |
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1988 |
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1989 #[test] |
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1990 fn test_uncompressed_len() { |
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1991 let bytes = IndexEntryBuilder::new().with_uncompressed_len(1).build(); |
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1992 let entry = IndexEntry { |
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1993 bytes: &bytes, |
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1994 offset_override: None, |
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1995 }; |
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1996 |
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1997 assert_eq!(entry.uncompressed_len(), 1) |
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1998 } |
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1999 |
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2000 #[test] |
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2001 fn test_base_revision_or_base_of_delta_chain() { |
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2002 let bytes = IndexEntryBuilder::new() |
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2003 .with_base_revision_or_base_of_delta_chain(Revision(1)) |
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2004 .build(); |
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2005 let entry = IndexEntry { |
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2006 bytes: &bytes, |
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2007 offset_override: None, |
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2008 }; |
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2009 |
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2010 assert_eq!(entry.base_revision_or_base_of_delta_chain(), 1.into()) |
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2011 } |
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2012 |
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2013 #[test] |
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2014 fn link_revision_test() { |
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2015 let bytes = IndexEntryBuilder::new() |
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2016 .with_link_revision(Revision(123)) |
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2017 .build(); |
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2018 |
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2019 let entry = IndexEntry { |
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2020 bytes: &bytes, |
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2021 offset_override: None, |
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2022 }; |
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2023 |
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2024 assert_eq!(entry.link_revision(), 123.into()); |
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2025 } |
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2026 |
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2027 #[test] |
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2028 fn p1_test() { |
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2029 let bytes = IndexEntryBuilder::new().with_p1(Revision(123)).build(); |
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2030 |
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2031 let entry = IndexEntry { |
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2032 bytes: &bytes, |
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2033 offset_override: None, |
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2034 }; |
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2035 |
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2036 assert_eq!(entry.p1(), 123.into()); |
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2037 } |
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2038 |
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2039 #[test] |
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2040 fn p2_test() { |
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2041 let bytes = IndexEntryBuilder::new().with_p2(Revision(123)).build(); |
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2042 |
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2043 let entry = IndexEntry { |
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2044 bytes: &bytes, |
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2045 offset_override: None, |
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2046 }; |
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2047 |
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2048 assert_eq!(entry.p2(), 123.into()); |
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2049 } |
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2050 |
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2051 #[test] |
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2052 fn node_test() { |
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2053 let node = Node::from_hex("0123456789012345678901234567890123456789") |
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2054 .unwrap(); |
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2055 let bytes = IndexEntryBuilder::new().with_node(node).build(); |
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2056 |
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2057 let entry = IndexEntry { |
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2058 bytes: &bytes, |
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2059 offset_override: None, |
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2060 }; |
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2061 |
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2062 assert_eq!(*entry.hash(), node); |
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2063 } |
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2064 |
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2065 #[test] |
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2066 fn version_test() { |
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2067 let bytes = IndexEntryBuilder::new() |
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2068 .is_first(true) |
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2069 .with_version(2) |
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2070 .build(); |
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2071 |
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2072 assert_eq!(get_version(&bytes), 2) |
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2073 } |
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2074 } |
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2075 |
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2076 #[cfg(test)] |
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2077 pub use tests::IndexEntryBuilder; |