Mercurial > hg
annotate mercurial/ancestor.py @ 20595:710c2755e66a
merge with stable
author | Matt Mackall <mpm@selenic.com> |
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date | Thu, 27 Feb 2014 18:57:03 -0600 |
parents | 4add43865a9b |
children | 231ccc08670c |
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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 import heapq |
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9 import util |
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10 from node import nullrev |
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11 |
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12 def ancestors(pfunc, *orignodes): |
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13 """ |
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14 Returns the common ancestors of a and b that are furthest from a |
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15 root (as measured by longest path). |
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16 |
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17 pfunc must return a list of parent vertices for a given vertex. |
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18 """ |
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19 if not isinstance(orignodes, set): |
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20 orignodes = set(orignodes) |
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21 if nullrev in orignodes: |
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22 return set() |
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23 if len(orignodes) <= 1: |
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24 return orignodes |
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25 |
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26 def candidates(nodes): |
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27 allseen = (1 << len(nodes)) - 1 |
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28 seen = [0] * (max(nodes) + 1) |
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29 for i, n in enumerate(nodes): |
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30 seen[n] = 1 << i |
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31 poison = 1 << (i + 1) |
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32 |
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33 gca = set() |
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34 interesting = len(nodes) |
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35 nv = len(seen) - 1 |
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36 while nv >= 0 and interesting: |
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37 v = nv |
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38 nv -= 1 |
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39 if not seen[v]: |
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40 continue |
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41 sv = seen[v] |
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42 if sv < poison: |
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43 interesting -= 1 |
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44 if sv == allseen: |
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45 gca.add(v) |
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46 sv |= poison |
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47 if v in nodes: |
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48 # history is linear |
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49 return set([v]) |
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50 if sv < poison: |
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51 for p in pfunc(v): |
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52 sp = seen[p] |
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53 if p == nullrev: |
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54 continue |
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55 if sp == 0: |
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56 seen[p] = sv |
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57 interesting += 1 |
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58 elif sp != sv: |
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59 seen[p] |= sv |
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60 else: |
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61 for p in pfunc(v): |
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62 if p == nullrev: |
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63 continue |
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64 sp = seen[p] |
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65 if sp and sp < poison: |
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66 interesting -= 1 |
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67 seen[p] = sv |
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68 return gca |
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69 |
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70 def deepest(nodes): |
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71 interesting = {} |
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72 count = max(nodes) + 1 |
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73 depth = [0] * count |
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74 seen = [0] * count |
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75 mapping = [] |
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76 for (i, n) in enumerate(sorted(nodes)): |
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77 depth[n] = 1 |
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78 b = 1 << i |
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79 seen[n] = b |
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80 interesting[b] = 1 |
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81 mapping.append((b, n)) |
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82 nv = count - 1 |
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83 while nv >= 0 and len(interesting) > 1: |
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84 v = nv |
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85 nv -= 1 |
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86 dv = depth[v] |
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87 if dv == 0: |
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88 continue |
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89 sv = seen[v] |
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90 for p in pfunc(v): |
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91 if p == nullrev: |
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92 continue |
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93 dp = depth[p] |
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94 nsp = sp = seen[p] |
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95 if dp <= dv: |
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96 depth[p] = dv + 1 |
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97 if sp != sv: |
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98 interesting[sv] += 1 |
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99 nsp = seen[p] = sv |
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100 if sp: |
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101 interesting[sp] -= 1 |
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102 if interesting[sp] == 0: |
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103 del interesting[sp] |
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104 elif dv == dp - 1: |
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105 nsp = sp | sv |
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106 if nsp == sp: |
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107 continue |
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108 seen[p] = nsp |
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109 interesting.setdefault(nsp, 0) |
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110 interesting[nsp] += 1 |
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111 interesting[sp] -= 1 |
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112 if interesting[sp] == 0: |
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113 del interesting[sp] |
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114 interesting[sv] -= 1 |
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115 if interesting[sv] == 0: |
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116 del interesting[sv] |
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117 |
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118 if len(interesting) != 1: |
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119 return [] |
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120 |
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121 k = 0 |
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122 for i in interesting: |
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123 k |= i |
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124 return set(n for (i, n) in mapping if k & i) |
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125 |
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126 gca = candidates(orignodes) |
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127 |
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128 if len(gca) <= 1: |
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129 return gca |
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130 return deepest(gca) |
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131 |
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132 def genericancestor(a, b, pfunc): |
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133 """ |
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134 Returns the common ancestor of a and b that is furthest from a |
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135 root (as measured by longest path) or None if no ancestor is |
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136 found. If there are multiple common ancestors at the same |
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137 distance, the first one found is returned. |
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138 |
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139 pfunc must return a list of parent vertices for a given vertex |
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140 """ |
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141 |
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142 if a == b: |
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143 return a |
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144 |
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145 a, b = sorted([a, b]) |
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146 |
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147 # find depth from root of all ancestors |
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148 # depth is stored as a negative for heapq |
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149 parentcache = {} |
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150 visit = [a, b] |
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151 depth = {} |
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152 while visit: |
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153 vertex = visit[-1] |
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154 pl = [p for p in pfunc(vertex) if p != nullrev] |
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155 parentcache[vertex] = pl |
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156 if not pl: |
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157 depth[vertex] = 0 |
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158 visit.pop() |
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159 else: |
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160 for p in pl: |
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161 if p == a or p == b: # did we find a or b as a parent? |
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162 return p # we're done |
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163 if p not in depth: |
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164 visit.append(p) |
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165 if visit[-1] == vertex: |
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166 # -(maximum distance of parents + 1) |
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167 depth[vertex] = min([depth[p] for p in pl]) - 1 |
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168 visit.pop() |
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169 |
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170 # traverse ancestors in order of decreasing distance from root |
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171 def ancestors(vertex): |
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172 h = [(depth[vertex], vertex)] |
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173 seen = set() |
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174 while h: |
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175 d, n = heapq.heappop(h) |
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176 if n not in seen: |
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177 seen.add(n) |
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178 yield (d, n) |
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179 for p in parentcache[n]: |
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180 heapq.heappush(h, (depth[p], p)) |
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181 |
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182 def generations(vertex): |
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183 sg, s = None, set() |
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184 for g, v in ancestors(vertex): |
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185 if g != sg: |
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186 if sg: |
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187 yield sg, s |
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188 sg, s = g, set((v,)) |
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189 else: |
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190 s.add(v) |
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191 yield sg, s |
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192 |
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193 x = generations(a) |
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194 y = generations(b) |
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195 gx = x.next() |
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196 gy = y.next() |
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197 |
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198 # increment each ancestor list until it is closer to root than |
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199 # the other, or they match |
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200 try: |
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201 while True: |
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202 if gx[0] == gy[0]: |
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203 for v in gx[1]: |
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204 if v in gy[1]: |
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205 return v |
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206 gy = y.next() |
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207 gx = x.next() |
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208 elif gx[0] > gy[0]: |
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209 gy = y.next() |
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210 else: |
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211 gx = x.next() |
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212 except StopIteration: |
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213 return None |
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214 |
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215 def missingancestors(revs, bases, pfunc): |
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216 """Return all the ancestors of revs that are not ancestors of bases. |
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217 |
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218 This may include elements from revs. |
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219 |
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220 Equivalent to the revset (::revs - ::bases). Revs are returned in |
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221 revision number order, which is a topological order. |
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222 |
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223 revs and bases should both be iterables. pfunc must return a list of |
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224 parent revs for a given revs. |
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225 """ |
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226 |
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227 revsvisit = set(revs) |
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228 basesvisit = set(bases) |
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229 if not revsvisit: |
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230 return [] |
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231 if not basesvisit: |
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232 basesvisit.add(nullrev) |
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233 start = max(max(revsvisit), max(basesvisit)) |
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234 bothvisit = revsvisit.intersection(basesvisit) |
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235 revsvisit.difference_update(bothvisit) |
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236 basesvisit.difference_update(bothvisit) |
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237 # At this point, we hold the invariants that: |
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238 # - revsvisit is the set of nodes we know are an ancestor of at least one |
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239 # of the nodes in revs |
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240 # - basesvisit is the same for bases |
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241 # - bothvisit is the set of nodes we know are ancestors of at least one of |
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242 # the nodes in revs and one of the nodes in bases |
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243 # - a node may be in none or one, but not more, of revsvisit, basesvisit |
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244 # and bothvisit at any given time |
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245 # Now we walk down in reverse topo order, adding parents of nodes already |
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246 # visited to the sets while maintaining the invariants. When a node is |
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247 # found in both revsvisit and basesvisit, it is removed from them and |
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248 # added to bothvisit instead. When revsvisit becomes empty, there are no |
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249 # more ancestors of revs that aren't also ancestors of bases, so exit. |
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250 |
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251 missing = [] |
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252 for curr in xrange(start, nullrev, -1): |
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253 if not revsvisit: |
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254 break |
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255 |
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256 if curr in bothvisit: |
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257 bothvisit.remove(curr) |
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258 # curr's parents might have made it into revsvisit or basesvisit |
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259 # through another path |
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260 for p in pfunc(curr): |
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261 revsvisit.discard(p) |
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262 basesvisit.discard(p) |
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263 bothvisit.add(p) |
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264 continue |
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265 |
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266 # curr will never be in both revsvisit and basesvisit, since if it |
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267 # were it'd have been pushed to bothvisit |
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268 if curr in revsvisit: |
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269 missing.append(curr) |
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270 thisvisit = revsvisit |
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271 othervisit = basesvisit |
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272 elif curr in basesvisit: |
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273 thisvisit = basesvisit |
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274 othervisit = revsvisit |
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275 else: |
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276 # not an ancestor of revs or bases: ignore |
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277 continue |
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278 |
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279 thisvisit.remove(curr) |
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280 for p in pfunc(curr): |
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281 if p == nullrev: |
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282 pass |
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283 elif p in othervisit or p in bothvisit: |
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284 # p is implicitly in thisvisit. This means p is or should be |
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285 # in bothvisit |
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286 revsvisit.discard(p) |
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287 basesvisit.discard(p) |
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288 bothvisit.add(p) |
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289 else: |
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290 # visit later |
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291 thisvisit.add(p) |
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292 |
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293 missing.reverse() |
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294 return missing |
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295 |
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296 class lazyancestors(object): |
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297 def __init__(self, cl, revs, stoprev=0, inclusive=False): |
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298 """Create a new object generating ancestors for the given revs. Does |
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299 not generate revs lower than stoprev. |
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300 |
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301 This is computed lazily starting from revs. The object supports |
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302 iteration and membership. |
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303 |
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304 cl should be a changelog and revs should be an iterable. inclusive is |
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305 a boolean that indicates whether revs should be included. Revs lower |
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306 than stoprev will not be generated. |
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307 |
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308 Result does not include the null revision.""" |
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309 self._parentrevs = cl.parentrevs |
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310 self._initrevs = revs |
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311 self._stoprev = stoprev |
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312 self._inclusive = inclusive |
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313 |
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314 # Initialize data structures for __contains__. |
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315 # For __contains__, we use a heap rather than a deque because |
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316 # (a) it minimizes the number of parentrevs calls made |
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317 # (b) it makes the loop termination condition obvious |
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318 # Python's heap is a min-heap. Multiply all values by -1 to convert it |
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319 # into a max-heap. |
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320 self._containsvisit = [-rev for rev in revs] |
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321 heapq.heapify(self._containsvisit) |
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322 if inclusive: |
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323 self._containsseen = set(revs) |
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324 else: |
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325 self._containsseen = set() |
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326 |
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327 def __iter__(self): |
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328 """Generate the ancestors of _initrevs in reverse topological order. |
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329 |
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330 If inclusive is False, yield a sequence of revision numbers starting |
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331 with the parents of each revision in revs, i.e., each revision is *not* |
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332 considered an ancestor of itself. Results are in breadth-first order: |
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333 parents of each rev in revs, then parents of those, etc. |
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334 |
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335 If inclusive is True, yield all the revs first (ignoring stoprev), |
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336 then yield all the ancestors of revs as when inclusive is False. |
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337 If an element in revs is an ancestor of a different rev it is not |
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338 yielded again.""" |
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339 seen = set() |
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340 revs = self._initrevs |
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341 if self._inclusive: |
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342 for rev in revs: |
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343 yield rev |
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344 seen.update(revs) |
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345 |
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346 parentrevs = self._parentrevs |
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347 stoprev = self._stoprev |
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348 visit = util.deque(revs) |
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349 |
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350 while visit: |
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351 for parent in parentrevs(visit.popleft()): |
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352 if parent >= stoprev and parent not in seen: |
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353 visit.append(parent) |
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354 seen.add(parent) |
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355 yield parent |
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356 |
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357 def __contains__(self, target): |
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358 """Test whether target is an ancestor of self._initrevs.""" |
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359 # Trying to do both __iter__ and __contains__ using the same visit |
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360 # heap and seen set is complex enough that it slows down both. Keep |
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361 # them separate. |
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362 seen = self._containsseen |
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363 if target in seen: |
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364 return True |
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365 |
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366 parentrevs = self._parentrevs |
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367 visit = self._containsvisit |
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368 stoprev = self._stoprev |
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369 heappop = heapq.heappop |
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370 heappush = heapq.heappush |
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371 |
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372 targetseen = False |
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373 |
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374 while visit and -visit[0] > target and not targetseen: |
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375 for parent in parentrevs(-heappop(visit)): |
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376 if parent < stoprev or parent in seen: |
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Siddharth Agarwal <sid0@fb.com>
parents:
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377 continue |
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378 # We need to make sure we push all parents into the heap so |
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379 # that we leave it in a consistent state for future calls. |
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380 heappush(visit, -parent) |
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381 seen.add(parent) |
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382 if parent == target: |
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Siddharth Agarwal <sid0@fb.com>
parents:
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383 targetseen = True |
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384 |
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385 return targetseen |