Mercurial > hg
annotate mercurial/ancestor.py @ 52164:e01e84e5e426
rust-revlog: add a Rust-only `InnerRevlog`
This mirrors the Python `InnerRevlog` and will be used in a future patch
to replace said Python implementation. This allows us to start doing more
things in pure Rust, in particular reading and writing operations.
A lot of changes have to be introduced all at once, it wouldn't be very
useful to separate this patch IMO since all of them are either interlocked
or only useful with the rest.
author | Raphaël Gomès <rgomes@octobus.net> |
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date | Thu, 10 Oct 2024 10:34:51 +0200 |
parents | f4733654f144 |
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Abstract ancestor algorithm into generic function
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1 # ancestor.py - generic DAG ancestor algorithm for mercurial |
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2 # |
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3 # Copyright 2006 Olivia Mackall <olivia@selenic.com> |
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4 # |
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5 # This software may be used and distributed according to the terms of the |
10263 | 6 # GNU General Public License version 2 or any later version. |
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7 |
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8 from __future__ import annotations |
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9 |
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10 import heapq |
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11 |
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12 from .node import nullrev |
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13 from . import ( |
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ancestor: incrementalmissingancestors.basesheads()
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14 dagop, |
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15 policy, |
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16 ) |
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17 |
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18 parsers = policy.importmod('parsers') |
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19 |
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20 |
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21 def commonancestorsheads(pfunc, *nodes): |
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22 """Returns a set with the heads of all common ancestors of all nodes, |
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23 heads(::nodes[0] and ::nodes[1] and ...) . |
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24 |
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25 pfunc must return a list of parent vertices for a given vertex. |
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26 """ |
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27 if not isinstance(nodes, set): |
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28 nodes = set(nodes) |
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29 if nullrev in nodes: |
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30 return set() |
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31 if len(nodes) <= 1: |
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32 return nodes |
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33 |
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34 allseen = (1 << len(nodes)) - 1 |
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35 seen = [0] * (max(nodes) + 1) |
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36 for i, n in enumerate(nodes): |
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37 seen[n] = 1 << i |
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38 poison = 1 << (i + 1) |
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39 |
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40 gca = set() |
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41 interesting = len(nodes) |
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42 nv = len(seen) - 1 |
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43 while nv >= 0 and interesting: |
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44 v = nv |
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45 nv -= 1 |
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46 if not seen[v]: |
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47 continue |
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48 sv = seen[v] |
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49 if sv < poison: |
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50 interesting -= 1 |
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51 if sv == allseen: |
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52 gca.add(v) |
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53 sv |= poison |
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54 if v in nodes: |
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55 # history is linear |
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56 return {v} |
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57 if sv < poison: |
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58 for p in pfunc(v): |
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59 sp = seen[p] |
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60 if p == nullrev: |
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61 continue |
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62 if sp == 0: |
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63 seen[p] = sv |
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64 interesting += 1 |
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65 elif sp != sv: |
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66 seen[p] |= sv |
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67 else: |
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68 for p in pfunc(v): |
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69 if p == nullrev: |
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70 continue |
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71 sp = seen[p] |
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72 if sp and sp < poison: |
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73 interesting -= 1 |
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74 seen[p] = sv |
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75 return gca |
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76 |
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77 |
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78 def ancestors(pfunc, *orignodes): |
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79 """ |
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80 Returns the common ancestors of a and b that are furthest from a |
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81 root (as measured by longest path). |
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82 |
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83 pfunc must return a list of parent vertices for a given vertex. |
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84 """ |
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85 |
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86 def deepest(nodes): |
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87 interesting = {} |
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88 count = max(nodes) + 1 |
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89 depth = [0] * count |
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90 seen = [0] * count |
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91 mapping = [] |
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92 for i, n in enumerate(sorted(nodes)): |
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93 depth[n] = 1 |
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94 b = 1 << i |
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95 seen[n] = b |
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96 interesting[b] = 1 |
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97 mapping.append((b, n)) |
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98 nv = count - 1 |
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99 while nv >= 0 and len(interesting) > 1: |
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100 v = nv |
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101 nv -= 1 |
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102 dv = depth[v] |
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103 if dv == 0: |
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104 continue |
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105 sv = seen[v] |
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106 for p in pfunc(v): |
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107 if p == nullrev: |
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108 continue |
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109 dp = depth[p] |
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110 sp = seen[p] |
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111 if dp <= dv: |
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112 depth[p] = dv + 1 |
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113 if sp != sv: |
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114 interesting[sv] += 1 |
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115 seen[p] = sv |
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116 if sp: |
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117 interesting[sp] -= 1 |
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118 if interesting[sp] == 0: |
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119 del interesting[sp] |
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120 elif dv == dp - 1: |
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121 nsp = sp | sv |
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122 if nsp == sp: |
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123 continue |
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124 seen[p] = nsp |
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125 interesting.setdefault(nsp, 0) |
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126 interesting[nsp] += 1 |
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127 interesting[sp] -= 1 |
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128 if interesting[sp] == 0: |
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129 del interesting[sp] |
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130 interesting[sv] -= 1 |
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131 if interesting[sv] == 0: |
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132 del interesting[sv] |
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133 |
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134 if len(interesting) != 1: |
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135 return [] |
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136 |
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137 k = 0 |
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138 for i in interesting: |
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139 k |= i |
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140 return {n for (i, n) in mapping if k & i} |
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141 |
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142 gca = commonancestorsheads(pfunc, *orignodes) |
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143 |
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144 if len(gca) <= 1: |
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145 return gca |
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146 return deepest(gca) |
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147 |
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148 |
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149 class incrementalmissingancestors: |
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150 """persistent state used to calculate missing ancestors incrementally |
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151 |
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152 Although similar in spirit to lazyancestors below, this is a separate class |
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153 because trying to support contains and missingancestors operations with the |
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154 same internal data structures adds needless complexity.""" |
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155 |
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156 def __init__(self, pfunc, bases): |
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157 self.bases = set(bases) |
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158 if not self.bases: |
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159 self.bases.add(nullrev) |
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160 self.pfunc = pfunc |
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161 |
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162 def hasbases(self): |
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163 '''whether the common set has any non-trivial bases''' |
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164 return self.bases and self.bases != {nullrev} |
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165 |
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166 def addbases(self, newbases): |
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167 '''grow the ancestor set by adding new bases''' |
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168 self.bases.update(newbases) |
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169 |
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170 def basesheads(self): |
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171 return dagop.headrevs(self.bases, self.pfunc) |
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172 |
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173 def removeancestorsfrom(self, revs): |
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174 '''remove all ancestors of bases from the set revs (in place)''' |
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175 bases = self.bases |
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176 pfunc = self.pfunc |
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177 revs.difference_update(bases) |
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178 # nullrev is always an ancestor |
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179 revs.discard(nullrev) |
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180 if not revs: |
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181 return |
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182 # anything in revs > start is definitely not an ancestor of bases |
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183 # revs <= start needs to be investigated |
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184 start = max(bases) |
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185 keepcount = sum(1 for r in revs if r > start) |
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186 if len(revs) == keepcount: |
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187 # no revs to consider |
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188 return |
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189 |
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190 for curr in range(start, min(revs) - 1, -1): |
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191 if curr not in bases: |
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192 continue |
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193 revs.discard(curr) |
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194 bases.update(pfunc(curr)) |
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195 if len(revs) == keepcount: |
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196 # no more potential revs to discard |
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197 break |
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198 |
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199 def missingancestors(self, revs): |
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200 """return all the ancestors of revs that are not ancestors of self.bases |
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201 |
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202 This may include elements from revs. |
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203 |
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204 Equivalent to the revset (::revs - ::self.bases). Revs are returned in |
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205 revision number order, which is a topological order.""" |
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206 revsvisit = set(revs) |
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207 basesvisit = self.bases |
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208 pfunc = self.pfunc |
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209 bothvisit = revsvisit.intersection(basesvisit) |
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210 revsvisit.difference_update(bothvisit) |
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211 if not revsvisit: |
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212 return [] |
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213 |
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214 start = max(max(revsvisit), max(basesvisit)) |
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215 # At this point, we hold the invariants that: |
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216 # - revsvisit is the set of nodes we know are an ancestor of at least |
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217 # one of the nodes in revs |
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218 # - basesvisit is the same for bases |
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219 # - bothvisit is the set of nodes we know are ancestors of at least one |
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220 # of the nodes in revs and one of the nodes in bases. bothvisit and |
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221 # revsvisit are mutually exclusive, but bothvisit is a subset of |
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222 # basesvisit. |
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223 # Now we walk down in reverse topo order, adding parents of nodes |
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224 # already visited to the sets while maintaining the invariants. When a |
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225 # node is found in both revsvisit and basesvisit, it is removed from |
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226 # revsvisit and added to bothvisit. When revsvisit becomes empty, there |
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227 # are no more ancestors of revs that aren't also ancestors of bases, so |
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228 # exit. |
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229 |
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230 missing = [] |
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231 for curr in range(start, nullrev, -1): |
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232 if not revsvisit: |
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233 break |
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234 |
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235 if curr in bothvisit: |
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236 bothvisit.remove(curr) |
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237 # curr's parents might have made it into revsvisit through |
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238 # another path |
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239 for p in pfunc(curr): |
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240 revsvisit.discard(p) |
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241 basesvisit.add(p) |
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242 bothvisit.add(p) |
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243 continue |
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244 |
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245 if curr in revsvisit: |
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246 missing.append(curr) |
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247 revsvisit.remove(curr) |
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248 thisvisit = revsvisit |
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249 othervisit = basesvisit |
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250 elif curr in basesvisit: |
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251 thisvisit = basesvisit |
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252 othervisit = revsvisit |
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253 else: |
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254 # not an ancestor of revs or bases: ignore |
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255 continue |
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256 |
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257 for p in pfunc(curr): |
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258 if p == nullrev: |
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259 pass |
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260 elif p in othervisit or p in bothvisit: |
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261 # p is implicitly in thisvisit. This means p is or should be |
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262 # in bothvisit |
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263 revsvisit.discard(p) |
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264 basesvisit.add(p) |
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265 bothvisit.add(p) |
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266 else: |
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267 # visit later |
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268 thisvisit.add(p) |
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269 |
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270 missing.reverse() |
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271 return missing |
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272 |
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273 |
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274 # Extracted from lazyancestors.__iter__ to avoid a reference cycle |
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275 def _lazyancestorsiter(parentrevs, initrevs, stoprev, inclusive): |
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276 seen = {nullrev} |
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277 heappush = heapq.heappush |
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278 heappop = heapq.heappop |
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279 heapreplace = heapq.heapreplace |
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280 see = seen.add |
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281 |
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282 if inclusive: |
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283 visit = [-r for r in initrevs] |
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284 seen.update(initrevs) |
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285 heapq.heapify(visit) |
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286 else: |
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287 visit = [] |
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288 heapq.heapify(visit) |
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289 for r in initrevs: |
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290 p1, p2 = parentrevs(r) |
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291 if p1 not in seen: |
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292 heappush(visit, -p1) |
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293 see(p1) |
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294 if p2 not in seen: |
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295 heappush(visit, -p2) |
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296 see(p2) |
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297 |
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298 while visit: |
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299 current = -visit[0] |
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300 if current < stoprev: |
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301 break |
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302 yield current |
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303 # optimize out heapq operation if p1 is known to be the next highest |
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304 # revision, which is quite common in linear history. |
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305 p1, p2 = parentrevs(current) |
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306 if p1 not in seen: |
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307 if current - p1 == 1: |
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308 visit[0] = -p1 |
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309 else: |
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310 heapreplace(visit, -p1) |
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311 see(p1) |
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312 else: |
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313 heappop(visit) |
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314 if p2 not in seen: |
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315 heappush(visit, -p2) |
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316 see(p2) |
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317 |
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318 |
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319 class lazyancestors: |
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320 def __init__(self, pfunc, revs, stoprev=0, inclusive=False): |
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321 """Create a new object generating ancestors for the given revs. Does |
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322 not generate revs lower than stoprev. |
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323 |
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324 This is computed lazily starting from revs. The object supports |
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325 iteration and membership. |
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326 |
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327 cl should be a changelog and revs should be an iterable. inclusive is |
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328 a boolean that indicates whether revs should be included. Revs lower |
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329 than stoprev will not be generated. |
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330 |
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331 Result does not include the null revision.""" |
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332 self._parentrevs = pfunc |
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333 self._initrevs = [r for r in revs if r >= stoprev] |
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334 self._stoprev = stoprev |
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335 self._inclusive = inclusive |
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336 |
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337 self._containsseen = set() |
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338 self._containsiter = _lazyancestorsiter( |
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339 self._parentrevs, self._initrevs, self._stoprev, self._inclusive |
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340 ) |
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341 |
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342 def __nonzero__(self): |
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343 """False if the set is empty, True otherwise.""" |
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344 try: |
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345 next(iter(self)) |
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346 return True |
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347 except StopIteration: |
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348 return False |
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349 |
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350 __bool__ = __nonzero__ |
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351 |
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352 def __iter__(self): |
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353 """Generate the ancestors of _initrevs in reverse topological order. |
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354 |
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355 If inclusive is False, yield a sequence of revision numbers starting |
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356 with the parents of each revision in revs, i.e., each revision is |
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357 *not* considered an ancestor of itself. Results are emitted in reverse |
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358 revision number order. That order is also topological: a child is |
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359 always emitted before its parent. |
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360 |
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361 If inclusive is True, the source revisions are also yielded. The |
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362 reverse revision number order is still enforced.""" |
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363 return _lazyancestorsiter( |
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364 self._parentrevs, self._initrevs, self._stoprev, self._inclusive |
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365 ) |
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366 |
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367 def __contains__(self, target): |
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368 """Test whether target is an ancestor of self._initrevs.""" |
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369 seen = self._containsseen |
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370 if target in seen: |
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371 return True |
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372 iter = self._containsiter |
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373 if iter is None: |
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374 # Iterator exhausted |
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375 return False |
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376 # Only integer target is valid, but some callers expect 'None in self' |
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377 # to be False. So we explicitly allow it. |
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378 if target is None: |
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379 return False |
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380 |
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381 see = seen.add |
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382 try: |
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383 while True: |
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384 rev = next(iter) |
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385 see(rev) |
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386 if rev == target: |
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387 return True |
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388 if rev < target: |
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389 return False |
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390 except StopIteration: |
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391 # Set to None to indicate fast-path can be used next time, and to |
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392 # free up memory. |
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393 self._containsiter = None |
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394 return False |