Mercurial > hg
annotate mercurial/ancestor.py @ 30961:330fbd515512
destutil: remove duplicate check and leave it to merge.update()
The check is done in merge.update() already and the next few patches
will add more checks there. Some of the additional checks will need
information about the merge that will not be available in destutil.
Since commands.postincoming() catches UpdateAbort(), we need to change
merge.update() to raise that more specific exception.
This goes directly again 45b86dbabbda (destupdate: move the check
related to the "clean" logic in the function, 2015-10-05), but it will
simplify the next few patches, and we can always move it out again
(preferably move, not copy) after if we still think it's better that
way.
author | Martin von Zweigbergk <martinvonz@google.com> |
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date | Thu, 09 Feb 2017 09:52:32 -0800 |
parents | ead25aa27a43 |
children | 413b44003462 |
rev | line source |
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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 Matt Mackall <mpm@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 absolute_import |
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9 |
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10 import collections |
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11 import heapq |
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12 |
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13 from .node import nullrev |
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14 |
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15 def commonancestorsheads(pfunc, *nodes): |
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16 """Returns a set with the heads of all common ancestors of all nodes, |
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17 heads(::nodes[0] and ::nodes[1] and ...) . |
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18 |
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19 pfunc must return a list of parent vertices for a given vertex. |
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20 """ |
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21 if not isinstance(nodes, set): |
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22 nodes = set(nodes) |
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23 if nullrev in nodes: |
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24 return set() |
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25 if len(nodes) <= 1: |
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26 return nodes |
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27 |
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28 allseen = (1 << len(nodes)) - 1 |
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29 seen = [0] * (max(nodes) + 1) |
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30 for i, n in enumerate(nodes): |
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31 seen[n] = 1 << i |
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32 poison = 1 << (i + 1) |
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33 |
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34 gca = set() |
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35 interesting = len(nodes) |
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36 nv = len(seen) - 1 |
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37 while nv >= 0 and interesting: |
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38 v = nv |
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39 nv -= 1 |
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40 if not seen[v]: |
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41 continue |
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42 sv = seen[v] |
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43 if sv < poison: |
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44 interesting -= 1 |
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45 if sv == allseen: |
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46 gca.add(v) |
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47 sv |= poison |
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48 if v in nodes: |
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49 # history is linear |
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50 return set([v]) |
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51 if sv < poison: |
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52 for p in pfunc(v): |
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53 sp = seen[p] |
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54 if p == nullrev: |
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55 continue |
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56 if sp == 0: |
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57 seen[p] = sv |
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58 interesting += 1 |
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59 elif sp != sv: |
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60 seen[p] |= sv |
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61 else: |
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62 for p in pfunc(v): |
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63 if p == nullrev: |
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64 continue |
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65 sp = seen[p] |
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66 if sp and sp < poison: |
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67 interesting -= 1 |
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68 seen[p] = sv |
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69 return gca |
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70 |
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71 def ancestors(pfunc, *orignodes): |
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72 """ |
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73 Returns the common ancestors of a and b that are furthest from a |
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74 root (as measured by longest path). |
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75 |
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76 pfunc must return a list of parent vertices for a given vertex. |
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77 """ |
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78 def deepest(nodes): |
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79 interesting = {} |
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80 count = max(nodes) + 1 |
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81 depth = [0] * count |
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82 seen = [0] * count |
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83 mapping = [] |
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84 for (i, n) in enumerate(sorted(nodes)): |
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85 depth[n] = 1 |
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86 b = 1 << i |
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87 seen[n] = b |
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88 interesting[b] = 1 |
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89 mapping.append((b, n)) |
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90 nv = count - 1 |
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91 while nv >= 0 and len(interesting) > 1: |
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92 v = nv |
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93 nv -= 1 |
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94 dv = depth[v] |
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95 if dv == 0: |
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96 continue |
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97 sv = seen[v] |
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98 for p in pfunc(v): |
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99 if p == nullrev: |
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100 continue |
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101 dp = depth[p] |
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102 nsp = sp = seen[p] |
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103 if dp <= dv: |
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104 depth[p] = dv + 1 |
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105 if sp != sv: |
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106 interesting[sv] += 1 |
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107 nsp = seen[p] = sv |
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108 if sp: |
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109 interesting[sp] -= 1 |
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110 if interesting[sp] == 0: |
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111 del interesting[sp] |
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112 elif dv == dp - 1: |
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113 nsp = sp | sv |
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114 if nsp == sp: |
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115 continue |
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116 seen[p] = nsp |
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117 interesting.setdefault(nsp, 0) |
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118 interesting[nsp] += 1 |
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119 interesting[sp] -= 1 |
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120 if interesting[sp] == 0: |
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121 del interesting[sp] |
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122 interesting[sv] -= 1 |
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123 if interesting[sv] == 0: |
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124 del interesting[sv] |
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125 |
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126 if len(interesting) != 1: |
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127 return [] |
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128 |
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129 k = 0 |
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130 for i in interesting: |
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131 k |= i |
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132 return set(n for (i, n) in mapping if k & i) |
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133 |
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134 gca = commonancestorsheads(pfunc, *orignodes) |
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135 |
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136 if len(gca) <= 1: |
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137 return gca |
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138 return deepest(gca) |
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139 |
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140 class incrementalmissingancestors(object): |
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141 '''persistent state used to calculate missing ancestors incrementally |
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142 |
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143 Although similar in spirit to lazyancestors below, this is a separate class |
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144 because trying to support contains and missingancestors operations with the |
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145 same internal data structures adds needless complexity.''' |
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146 def __init__(self, pfunc, bases): |
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147 self.bases = set(bases) |
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148 if not self.bases: |
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149 self.bases.add(nullrev) |
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150 self.pfunc = pfunc |
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151 |
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152 def hasbases(self): |
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153 '''whether the common set has any non-trivial bases''' |
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154 return self.bases and self.bases != set([nullrev]) |
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155 |
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156 def addbases(self, newbases): |
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157 '''grow the ancestor set by adding new bases''' |
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158 self.bases.update(newbases) |
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159 |
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160 def removeancestorsfrom(self, revs): |
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161 '''remove all ancestors of bases from the set revs (in place)''' |
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162 bases = self.bases |
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163 pfunc = self.pfunc |
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164 revs.difference_update(bases) |
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165 # nullrev is always an ancestor |
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166 revs.discard(nullrev) |
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167 if not revs: |
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168 return |
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169 # anything in revs > start is definitely not an ancestor of bases |
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170 # revs <= start needs to be investigated |
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171 start = max(bases) |
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172 keepcount = sum(1 for r in revs if r > start) |
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173 if len(revs) == keepcount: |
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174 # no revs to consider |
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175 return |
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176 |
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177 for curr in xrange(start, min(revs) - 1, -1): |
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178 if curr not in bases: |
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179 continue |
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180 revs.discard(curr) |
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181 bases.update(pfunc(curr)) |
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182 if len(revs) == keepcount: |
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183 # no more potential revs to discard |
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184 break |
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185 |
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186 def missingancestors(self, revs): |
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187 '''return all the ancestors of revs that are not ancestors of self.bases |
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188 |
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189 This may include elements from revs. |
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190 |
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191 Equivalent to the revset (::revs - ::self.bases). Revs are returned in |
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192 revision number order, which is a topological order.''' |
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193 revsvisit = set(revs) |
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194 basesvisit = self.bases |
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195 pfunc = self.pfunc |
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196 bothvisit = revsvisit.intersection(basesvisit) |
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197 revsvisit.difference_update(bothvisit) |
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198 if not revsvisit: |
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199 return [] |
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200 |
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201 start = max(max(revsvisit), max(basesvisit)) |
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202 # At this point, we hold the invariants that: |
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203 # - revsvisit is the set of nodes we know are an ancestor of at least |
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204 # one of the nodes in revs |
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205 # - basesvisit is the same for bases |
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206 # - bothvisit is the set of nodes we know are ancestors of at least one |
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207 # of the nodes in revs and one of the nodes in bases. bothvisit and |
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208 # revsvisit are mutually exclusive, but bothvisit is a subset of |
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209 # basesvisit. |
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210 # Now we walk down in reverse topo order, adding parents of nodes |
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211 # already visited to the sets while maintaining the invariants. When a |
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212 # node is found in both revsvisit and basesvisit, it is removed from |
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213 # revsvisit and added to bothvisit. When revsvisit becomes empty, there |
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214 # are no more ancestors of revs that aren't also ancestors of bases, so |
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215 # exit. |
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216 |
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217 missing = [] |
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218 for curr in xrange(start, nullrev, -1): |
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219 if not revsvisit: |
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220 break |
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221 |
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222 if curr in bothvisit: |
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223 bothvisit.remove(curr) |
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224 # curr's parents might have made it into revsvisit through |
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225 # another path |
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226 for p in pfunc(curr): |
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227 revsvisit.discard(p) |
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228 basesvisit.add(p) |
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229 bothvisit.add(p) |
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230 continue |
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231 |
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232 if curr in revsvisit: |
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233 missing.append(curr) |
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234 revsvisit.remove(curr) |
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235 thisvisit = revsvisit |
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236 othervisit = basesvisit |
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237 elif curr in basesvisit: |
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238 thisvisit = basesvisit |
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239 othervisit = revsvisit |
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240 else: |
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241 # not an ancestor of revs or bases: ignore |
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242 continue |
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243 |
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244 for p in pfunc(curr): |
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245 if p == nullrev: |
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246 pass |
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247 elif p in othervisit or p in bothvisit: |
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248 # p is implicitly in thisvisit. This means p is or should be |
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249 # in bothvisit |
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250 revsvisit.discard(p) |
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251 basesvisit.add(p) |
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252 bothvisit.add(p) |
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253 else: |
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254 # visit later |
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255 thisvisit.add(p) |
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256 |
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257 missing.reverse() |
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258 return missing |
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259 |
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260 class lazyancestors(object): |
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261 def __init__(self, pfunc, revs, stoprev=0, inclusive=False): |
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262 """Create a new object generating ancestors for the given revs. Does |
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263 not generate revs lower than stoprev. |
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264 |
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265 This is computed lazily starting from revs. The object supports |
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266 iteration and membership. |
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267 |
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268 cl should be a changelog and revs should be an iterable. inclusive is |
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269 a boolean that indicates whether revs should be included. Revs lower |
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270 than stoprev will not be generated. |
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271 |
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272 Result does not include the null revision.""" |
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273 self._parentrevs = pfunc |
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274 self._initrevs = revs |
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275 self._stoprev = stoprev |
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276 self._inclusive = inclusive |
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277 |
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278 # Initialize data structures for __contains__. |
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279 # For __contains__, we use a heap rather than a deque because |
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280 # (a) it minimizes the number of parentrevs calls made |
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281 # (b) it makes the loop termination condition obvious |
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282 # Python's heap is a min-heap. Multiply all values by -1 to convert it |
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283 # into a max-heap. |
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284 self._containsvisit = [-rev for rev in revs] |
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285 heapq.heapify(self._containsvisit) |
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286 if inclusive: |
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287 self._containsseen = set(revs) |
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288 else: |
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289 self._containsseen = set() |
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290 |
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291 def __nonzero__(self): |
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292 """False if the set is empty, True otherwise.""" |
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293 try: |
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294 next(iter(self)) |
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295 return True |
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296 except StopIteration: |
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297 return False |
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298 |
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299 def __iter__(self): |
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300 """Generate the ancestors of _initrevs in reverse topological order. |
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301 |
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302 If inclusive is False, yield a sequence of revision numbers starting |
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303 with the parents of each revision in revs, i.e., each revision is *not* |
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304 considered an ancestor of itself. Results are in breadth-first order: |
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305 parents of each rev in revs, then parents of those, etc. |
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306 |
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307 If inclusive is True, yield all the revs first (ignoring stoprev), |
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308 then yield all the ancestors of revs as when inclusive is False. |
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309 If an element in revs is an ancestor of a different rev it is not |
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310 yielded again.""" |
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311 seen = set() |
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312 revs = self._initrevs |
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313 if self._inclusive: |
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314 for rev in revs: |
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315 yield rev |
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316 seen.update(revs) |
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317 |
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318 parentrevs = self._parentrevs |
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319 stoprev = self._stoprev |
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320 visit = collections.deque(revs) |
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321 |
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322 see = seen.add |
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323 schedule = visit.append |
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324 |
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325 while visit: |
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326 for parent in parentrevs(visit.popleft()): |
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327 if parent >= stoprev and parent not in seen: |
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328 schedule(parent) |
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329 see(parent) |
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330 yield parent |
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331 |
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332 def __contains__(self, target): |
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333 """Test whether target is an ancestor of self._initrevs.""" |
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334 # Trying to do both __iter__ and __contains__ using the same visit |
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335 # heap and seen set is complex enough that it slows down both. Keep |
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336 # them separate. |
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337 seen = self._containsseen |
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338 if target in seen: |
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339 return True |
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340 |
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341 parentrevs = self._parentrevs |
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342 visit = self._containsvisit |
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343 stoprev = self._stoprev |
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344 heappop = heapq.heappop |
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345 heappush = heapq.heappush |
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346 see = seen.add |
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347 |
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348 targetseen = False |
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349 |
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350 while visit and -visit[0] > target and not targetseen: |
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351 for parent in parentrevs(-heappop(visit)): |
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352 if parent < stoprev or parent in seen: |
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353 continue |
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354 # We need to make sure we push all parents into the heap so |
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355 # that we leave it in a consistent state for future calls. |
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356 heappush(visit, -parent) |
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357 see(parent) |
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358 if parent == target: |
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359 targetseen = True |
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360 |
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361 return targetseen |