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obsolete: introduce a _succs class...
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1 # obsutil.py - utility functions for obsolescence
1 # obsutil.py - utility functions for obsolescence
2 #
2 #
3 # Copyright 2017 Boris Feld <boris.feld@octobus.net>
3 # Copyright 2017 Boris Feld <boris.feld@octobus.net>
4 #
4 #
5 # This software may be used and distributed according to the terms of the
5 # This software may be used and distributed according to the terms of the
6 # GNU General Public License version 2 or any later version.
6 # GNU General Public License version 2 or any later version.
7
7
8 from __future__ import absolute_import
8 from __future__ import absolute_import
9
9
10 from . import (
10 from . import (
11 phases,
11 phases,
12 util
12 util
13 )
13 )
14
14
15 class marker(object):
15 class marker(object):
16 """Wrap obsolete marker raw data"""
16 """Wrap obsolete marker raw data"""
17
17
18 def __init__(self, repo, data):
18 def __init__(self, repo, data):
19 # the repo argument will be used to create changectx in later version
19 # the repo argument will be used to create changectx in later version
20 self._repo = repo
20 self._repo = repo
21 self._data = data
21 self._data = data
22 self._decodedmeta = None
22 self._decodedmeta = None
23
23
24 def __hash__(self):
24 def __hash__(self):
25 return hash(self._data)
25 return hash(self._data)
26
26
27 def __eq__(self, other):
27 def __eq__(self, other):
28 if type(other) != type(self):
28 if type(other) != type(self):
29 return False
29 return False
30 return self._data == other._data
30 return self._data == other._data
31
31
32 def precnode(self):
32 def precnode(self):
33 msg = ("'marker.precnode' is deprecated, "
33 msg = ("'marker.precnode' is deprecated, "
34 "use 'marker.prednode'")
34 "use 'marker.prednode'")
35 util.nouideprecwarn(msg, '4.4')
35 util.nouideprecwarn(msg, '4.4')
36 return self.prednode()
36 return self.prednode()
37
37
38 def prednode(self):
38 def prednode(self):
39 """Predecessor changeset node identifier"""
39 """Predecessor changeset node identifier"""
40 return self._data[0]
40 return self._data[0]
41
41
42 def succnodes(self):
42 def succnodes(self):
43 """List of successor changesets node identifiers"""
43 """List of successor changesets node identifiers"""
44 return self._data[1]
44 return self._data[1]
45
45
46 def parentnodes(self):
46 def parentnodes(self):
47 """Parents of the predecessors (None if not recorded)"""
47 """Parents of the predecessors (None if not recorded)"""
48 return self._data[5]
48 return self._data[5]
49
49
50 def metadata(self):
50 def metadata(self):
51 """Decoded metadata dictionary"""
51 """Decoded metadata dictionary"""
52 return dict(self._data[3])
52 return dict(self._data[3])
53
53
54 def date(self):
54 def date(self):
55 """Creation date as (unixtime, offset)"""
55 """Creation date as (unixtime, offset)"""
56 return self._data[4]
56 return self._data[4]
57
57
58 def flags(self):
58 def flags(self):
59 """The flags field of the marker"""
59 """The flags field of the marker"""
60 return self._data[2]
60 return self._data[2]
61
61
62 def getmarkers(repo, nodes=None, exclusive=False):
62 def getmarkers(repo, nodes=None, exclusive=False):
63 """returns markers known in a repository
63 """returns markers known in a repository
64
64
65 If <nodes> is specified, only markers "relevant" to those nodes are are
65 If <nodes> is specified, only markers "relevant" to those nodes are are
66 returned"""
66 returned"""
67 if nodes is None:
67 if nodes is None:
68 rawmarkers = repo.obsstore
68 rawmarkers = repo.obsstore
69 elif exclusive:
69 elif exclusive:
70 rawmarkers = exclusivemarkers(repo, nodes)
70 rawmarkers = exclusivemarkers(repo, nodes)
71 else:
71 else:
72 rawmarkers = repo.obsstore.relevantmarkers(nodes)
72 rawmarkers = repo.obsstore.relevantmarkers(nodes)
73
73
74 for markerdata in rawmarkers:
74 for markerdata in rawmarkers:
75 yield marker(repo, markerdata)
75 yield marker(repo, markerdata)
76
76
77 def closestpredecessors(repo, nodeid):
77 def closestpredecessors(repo, nodeid):
78 """yield the list of next predecessors pointing on visible changectx nodes
78 """yield the list of next predecessors pointing on visible changectx nodes
79
79
80 This function respect the repoview filtering, filtered revision will be
80 This function respect the repoview filtering, filtered revision will be
81 considered missing.
81 considered missing.
82 """
82 """
83
83
84 precursors = repo.obsstore.predecessors
84 precursors = repo.obsstore.predecessors
85 stack = [nodeid]
85 stack = [nodeid]
86 seen = set(stack)
86 seen = set(stack)
87
87
88 while stack:
88 while stack:
89 current = stack.pop()
89 current = stack.pop()
90 currentpreccs = precursors.get(current, ())
90 currentpreccs = precursors.get(current, ())
91
91
92 for prec in currentpreccs:
92 for prec in currentpreccs:
93 precnodeid = prec[0]
93 precnodeid = prec[0]
94
94
95 # Basic cycle protection
95 # Basic cycle protection
96 if precnodeid in seen:
96 if precnodeid in seen:
97 continue
97 continue
98 seen.add(precnodeid)
98 seen.add(precnodeid)
99
99
100 if precnodeid in repo:
100 if precnodeid in repo:
101 yield precnodeid
101 yield precnodeid
102 else:
102 else:
103 stack.append(precnodeid)
103 stack.append(precnodeid)
104
104
105 def allprecursors(*args, **kwargs):
105 def allprecursors(*args, **kwargs):
106 """ (DEPRECATED)
106 """ (DEPRECATED)
107 """
107 """
108 msg = ("'obsutil.allprecursors' is deprecated, "
108 msg = ("'obsutil.allprecursors' is deprecated, "
109 "use 'obsutil.allpredecessors'")
109 "use 'obsutil.allpredecessors'")
110 util.nouideprecwarn(msg, '4.4')
110 util.nouideprecwarn(msg, '4.4')
111
111
112 return allpredecessors(*args, **kwargs)
112 return allpredecessors(*args, **kwargs)
113
113
114 def allpredecessors(obsstore, nodes, ignoreflags=0):
114 def allpredecessors(obsstore, nodes, ignoreflags=0):
115 """Yield node for every precursors of <nodes>.
115 """Yield node for every precursors of <nodes>.
116
116
117 Some precursors may be unknown locally.
117 Some precursors may be unknown locally.
118
118
119 This is a linear yield unsuited to detecting folded changesets. It includes
119 This is a linear yield unsuited to detecting folded changesets. It includes
120 initial nodes too."""
120 initial nodes too."""
121
121
122 remaining = set(nodes)
122 remaining = set(nodes)
123 seen = set(remaining)
123 seen = set(remaining)
124 while remaining:
124 while remaining:
125 current = remaining.pop()
125 current = remaining.pop()
126 yield current
126 yield current
127 for mark in obsstore.predecessors.get(current, ()):
127 for mark in obsstore.predecessors.get(current, ()):
128 # ignore marker flagged with specified flag
128 # ignore marker flagged with specified flag
129 if mark[2] & ignoreflags:
129 if mark[2] & ignoreflags:
130 continue
130 continue
131 suc = mark[0]
131 suc = mark[0]
132 if suc not in seen:
132 if suc not in seen:
133 seen.add(suc)
133 seen.add(suc)
134 remaining.add(suc)
134 remaining.add(suc)
135
135
136 def allsuccessors(obsstore, nodes, ignoreflags=0):
136 def allsuccessors(obsstore, nodes, ignoreflags=0):
137 """Yield node for every successor of <nodes>.
137 """Yield node for every successor of <nodes>.
138
138
139 Some successors may be unknown locally.
139 Some successors may be unknown locally.
140
140
141 This is a linear yield unsuited to detecting split changesets. It includes
141 This is a linear yield unsuited to detecting split changesets. It includes
142 initial nodes too."""
142 initial nodes too."""
143 remaining = set(nodes)
143 remaining = set(nodes)
144 seen = set(remaining)
144 seen = set(remaining)
145 while remaining:
145 while remaining:
146 current = remaining.pop()
146 current = remaining.pop()
147 yield current
147 yield current
148 for mark in obsstore.successors.get(current, ()):
148 for mark in obsstore.successors.get(current, ()):
149 # ignore marker flagged with specified flag
149 # ignore marker flagged with specified flag
150 if mark[2] & ignoreflags:
150 if mark[2] & ignoreflags:
151 continue
151 continue
152 for suc in mark[1]:
152 for suc in mark[1]:
153 if suc not in seen:
153 if suc not in seen:
154 seen.add(suc)
154 seen.add(suc)
155 remaining.add(suc)
155 remaining.add(suc)
156
156
157 def _filterprunes(markers):
157 def _filterprunes(markers):
158 """return a set with no prune markers"""
158 """return a set with no prune markers"""
159 return set(m for m in markers if m[1])
159 return set(m for m in markers if m[1])
160
160
161 def exclusivemarkers(repo, nodes):
161 def exclusivemarkers(repo, nodes):
162 """set of markers relevant to "nodes" but no other locally-known nodes
162 """set of markers relevant to "nodes" but no other locally-known nodes
163
163
164 This function compute the set of markers "exclusive" to a locally-known
164 This function compute the set of markers "exclusive" to a locally-known
165 node. This means we walk the markers starting from <nodes> until we reach a
165 node. This means we walk the markers starting from <nodes> until we reach a
166 locally-known precursors outside of <nodes>. Element of <nodes> with
166 locally-known precursors outside of <nodes>. Element of <nodes> with
167 locally-known successors outside of <nodes> are ignored (since their
167 locally-known successors outside of <nodes> are ignored (since their
168 precursors markers are also relevant to these successors).
168 precursors markers are also relevant to these successors).
169
169
170 For example:
170 For example:
171
171
172 # (A0 rewritten as A1)
172 # (A0 rewritten as A1)
173 #
173 #
174 # A0 <-1- A1 # Marker "1" is exclusive to A1
174 # A0 <-1- A1 # Marker "1" is exclusive to A1
175
175
176 or
176 or
177
177
178 # (A0 rewritten as AX; AX rewritten as A1; AX is unkown locally)
178 # (A0 rewritten as AX; AX rewritten as A1; AX is unkown locally)
179 #
179 #
180 # <-1- A0 <-2- AX <-3- A1 # Marker "2,3" are exclusive to A1
180 # <-1- A0 <-2- AX <-3- A1 # Marker "2,3" are exclusive to A1
181
181
182 or
182 or
183
183
184 # (A0 has unknown precursors, A0 rewritten as A1 and A2 (divergence))
184 # (A0 has unknown precursors, A0 rewritten as A1 and A2 (divergence))
185 #
185 #
186 # <-2- A1 # Marker "2" is exclusive to A0,A1
186 # <-2- A1 # Marker "2" is exclusive to A0,A1
187 # /
187 # /
188 # <-1- A0
188 # <-1- A0
189 # \
189 # \
190 # <-3- A2 # Marker "3" is exclusive to A0,A2
190 # <-3- A2 # Marker "3" is exclusive to A0,A2
191 #
191 #
192 # in addition:
192 # in addition:
193 #
193 #
194 # Markers "2,3" are exclusive to A1,A2
194 # Markers "2,3" are exclusive to A1,A2
195 # Markers "1,2,3" are exclusive to A0,A1,A2
195 # Markers "1,2,3" are exclusive to A0,A1,A2
196
196
197 See test/test-obsolete-bundle-strip.t for more examples.
197 See test/test-obsolete-bundle-strip.t for more examples.
198
198
199 An example usage is strip. When stripping a changeset, we also want to
199 An example usage is strip. When stripping a changeset, we also want to
200 strip the markers exclusive to this changeset. Otherwise we would have
200 strip the markers exclusive to this changeset. Otherwise we would have
201 "dangling"" obsolescence markers from its precursors: Obsolescence markers
201 "dangling"" obsolescence markers from its precursors: Obsolescence markers
202 marking a node as obsolete without any successors available locally.
202 marking a node as obsolete without any successors available locally.
203
203
204 As for relevant markers, the prune markers for children will be followed.
204 As for relevant markers, the prune markers for children will be followed.
205 Of course, they will only be followed if the pruned children is
205 Of course, they will only be followed if the pruned children is
206 locally-known. Since the prune markers are relevant to the pruned node.
206 locally-known. Since the prune markers are relevant to the pruned node.
207 However, while prune markers are considered relevant to the parent of the
207 However, while prune markers are considered relevant to the parent of the
208 pruned changesets, prune markers for locally-known changeset (with no
208 pruned changesets, prune markers for locally-known changeset (with no
209 successors) are considered exclusive to the pruned nodes. This allows
209 successors) are considered exclusive to the pruned nodes. This allows
210 to strip the prune markers (with the rest of the exclusive chain) alongside
210 to strip the prune markers (with the rest of the exclusive chain) alongside
211 the pruned changesets.
211 the pruned changesets.
212 """
212 """
213 # running on a filtered repository would be dangerous as markers could be
213 # running on a filtered repository would be dangerous as markers could be
214 # reported as exclusive when they are relevant for other filtered nodes.
214 # reported as exclusive when they are relevant for other filtered nodes.
215 unfi = repo.unfiltered()
215 unfi = repo.unfiltered()
216
216
217 # shortcut to various useful item
217 # shortcut to various useful item
218 nm = unfi.changelog.nodemap
218 nm = unfi.changelog.nodemap
219 precursorsmarkers = unfi.obsstore.predecessors
219 precursorsmarkers = unfi.obsstore.predecessors
220 successormarkers = unfi.obsstore.successors
220 successormarkers = unfi.obsstore.successors
221 childrenmarkers = unfi.obsstore.children
221 childrenmarkers = unfi.obsstore.children
222
222
223 # exclusive markers (return of the function)
223 # exclusive markers (return of the function)
224 exclmarkers = set()
224 exclmarkers = set()
225 # we need fast membership testing
225 # we need fast membership testing
226 nodes = set(nodes)
226 nodes = set(nodes)
227 # looking for head in the obshistory
227 # looking for head in the obshistory
228 #
228 #
229 # XXX we are ignoring all issues in regard with cycle for now.
229 # XXX we are ignoring all issues in regard with cycle for now.
230 stack = [n for n in nodes if not _filterprunes(successormarkers.get(n, ()))]
230 stack = [n for n in nodes if not _filterprunes(successormarkers.get(n, ()))]
231 stack.sort()
231 stack.sort()
232 # nodes already stacked
232 # nodes already stacked
233 seennodes = set(stack)
233 seennodes = set(stack)
234 while stack:
234 while stack:
235 current = stack.pop()
235 current = stack.pop()
236 # fetch precursors markers
236 # fetch precursors markers
237 markers = list(precursorsmarkers.get(current, ()))
237 markers = list(precursorsmarkers.get(current, ()))
238 # extend the list with prune markers
238 # extend the list with prune markers
239 for mark in successormarkers.get(current, ()):
239 for mark in successormarkers.get(current, ()):
240 if not mark[1]:
240 if not mark[1]:
241 markers.append(mark)
241 markers.append(mark)
242 # and markers from children (looking for prune)
242 # and markers from children (looking for prune)
243 for mark in childrenmarkers.get(current, ()):
243 for mark in childrenmarkers.get(current, ()):
244 if not mark[1]:
244 if not mark[1]:
245 markers.append(mark)
245 markers.append(mark)
246 # traverse the markers
246 # traverse the markers
247 for mark in markers:
247 for mark in markers:
248 if mark in exclmarkers:
248 if mark in exclmarkers:
249 # markers already selected
249 # markers already selected
250 continue
250 continue
251
251
252 # If the markers is about the current node, select it
252 # If the markers is about the current node, select it
253 #
253 #
254 # (this delay the addition of markers from children)
254 # (this delay the addition of markers from children)
255 if mark[1] or mark[0] == current:
255 if mark[1] or mark[0] == current:
256 exclmarkers.add(mark)
256 exclmarkers.add(mark)
257
257
258 # should we keep traversing through the precursors?
258 # should we keep traversing through the precursors?
259 prec = mark[0]
259 prec = mark[0]
260
260
261 # nodes in the stack or already processed
261 # nodes in the stack or already processed
262 if prec in seennodes:
262 if prec in seennodes:
263 continue
263 continue
264
264
265 # is this a locally known node ?
265 # is this a locally known node ?
266 known = prec in nm
266 known = prec in nm
267 # if locally-known and not in the <nodes> set the traversal
267 # if locally-known and not in the <nodes> set the traversal
268 # stop here.
268 # stop here.
269 if known and prec not in nodes:
269 if known and prec not in nodes:
270 continue
270 continue
271
271
272 # do not keep going if there are unselected markers pointing to this
272 # do not keep going if there are unselected markers pointing to this
273 # nodes. If we end up traversing these unselected markers later the
273 # nodes. If we end up traversing these unselected markers later the
274 # node will be taken care of at that point.
274 # node will be taken care of at that point.
275 precmarkers = _filterprunes(successormarkers.get(prec))
275 precmarkers = _filterprunes(successormarkers.get(prec))
276 if precmarkers.issubset(exclmarkers):
276 if precmarkers.issubset(exclmarkers):
277 seennodes.add(prec)
277 seennodes.add(prec)
278 stack.append(prec)
278 stack.append(prec)
279
279
280 return exclmarkers
280 return exclmarkers
281
281
282 def foreground(repo, nodes):
282 def foreground(repo, nodes):
283 """return all nodes in the "foreground" of other node
283 """return all nodes in the "foreground" of other node
284
284
285 The foreground of a revision is anything reachable using parent -> children
285 The foreground of a revision is anything reachable using parent -> children
286 or precursor -> successor relation. It is very similar to "descendant" but
286 or precursor -> successor relation. It is very similar to "descendant" but
287 augmented with obsolescence information.
287 augmented with obsolescence information.
288
288
289 Beware that possible obsolescence cycle may result if complex situation.
289 Beware that possible obsolescence cycle may result if complex situation.
290 """
290 """
291 repo = repo.unfiltered()
291 repo = repo.unfiltered()
292 foreground = set(repo.set('%ln::', nodes))
292 foreground = set(repo.set('%ln::', nodes))
293 if repo.obsstore:
293 if repo.obsstore:
294 # We only need this complicated logic if there is obsolescence
294 # We only need this complicated logic if there is obsolescence
295 # XXX will probably deserve an optimised revset.
295 # XXX will probably deserve an optimised revset.
296 nm = repo.changelog.nodemap
296 nm = repo.changelog.nodemap
297 plen = -1
297 plen = -1
298 # compute the whole set of successors or descendants
298 # compute the whole set of successors or descendants
299 while len(foreground) != plen:
299 while len(foreground) != plen:
300 plen = len(foreground)
300 plen = len(foreground)
301 succs = set(c.node() for c in foreground)
301 succs = set(c.node() for c in foreground)
302 mutable = [c.node() for c in foreground if c.mutable()]
302 mutable = [c.node() for c in foreground if c.mutable()]
303 succs.update(allsuccessors(repo.obsstore, mutable))
303 succs.update(allsuccessors(repo.obsstore, mutable))
304 known = (n for n in succs if n in nm)
304 known = (n for n in succs if n in nm)
305 foreground = set(repo.set('%ln::', known))
305 foreground = set(repo.set('%ln::', known))
306 return set(c.node() for c in foreground)
306 return set(c.node() for c in foreground)
307
307
308 def getobsoleted(repo, tr):
308 def getobsoleted(repo, tr):
309 """return the set of pre-existing revisions obsoleted by a transaction"""
309 """return the set of pre-existing revisions obsoleted by a transaction"""
310 torev = repo.unfiltered().changelog.nodemap.get
310 torev = repo.unfiltered().changelog.nodemap.get
311 phase = repo._phasecache.phase
311 phase = repo._phasecache.phase
312 succsmarkers = repo.obsstore.successors.get
312 succsmarkers = repo.obsstore.successors.get
313 public = phases.public
313 public = phases.public
314 addedmarkers = tr.changes.get('obsmarkers')
314 addedmarkers = tr.changes.get('obsmarkers')
315 addedrevs = tr.changes.get('revs')
315 addedrevs = tr.changes.get('revs')
316 seenrevs = set(addedrevs)
316 seenrevs = set(addedrevs)
317 obsoleted = set()
317 obsoleted = set()
318 for mark in addedmarkers:
318 for mark in addedmarkers:
319 node = mark[0]
319 node = mark[0]
320 rev = torev(node)
320 rev = torev(node)
321 if rev is None or rev in seenrevs:
321 if rev is None or rev in seenrevs:
322 continue
322 continue
323 seenrevs.add(rev)
323 seenrevs.add(rev)
324 if phase(repo, rev) == public:
324 if phase(repo, rev) == public:
325 continue
325 continue
326 if set(succsmarkers(node) or []).issubset(addedmarkers):
326 if set(succsmarkers(node) or []).issubset(addedmarkers):
327 obsoleted.add(rev)
327 obsoleted.add(rev)
328 return obsoleted
328 return obsoleted
329
329
330 class _succs(list):
331 """small class to represent a successors with some metadata about it"""
332
330 def successorssets(repo, initialnode, closest=False, cache=None):
333 def successorssets(repo, initialnode, closest=False, cache=None):
331 """Return set of all latest successors of initial nodes
334 """Return set of all latest successors of initial nodes
332
335
333 The successors set of a changeset A are the group of revisions that succeed
336 The successors set of a changeset A are the group of revisions that succeed
334 A. It succeeds A as a consistent whole, each revision being only a partial
337 A. It succeeds A as a consistent whole, each revision being only a partial
335 replacement. By default, the successors set contains non-obsolete
338 replacement. By default, the successors set contains non-obsolete
336 changesets only, walking the obsolescence graph until reaching a leaf. If
339 changesets only, walking the obsolescence graph until reaching a leaf. If
337 'closest' is set to True, closest successors-sets are return (the
340 'closest' is set to True, closest successors-sets are return (the
338 obsolescence walk stops on known changesets).
341 obsolescence walk stops on known changesets).
339
342
340 This function returns the full list of successor sets which is why it
343 This function returns the full list of successor sets which is why it
341 returns a list of tuples and not just a single tuple. Each tuple is a valid
344 returns a list of tuples and not just a single tuple. Each tuple is a valid
342 successors set. Note that (A,) may be a valid successors set for changeset A
345 successors set. Note that (A,) may be a valid successors set for changeset A
343 (see below).
346 (see below).
344
347
345 In most cases, a changeset A will have a single element (e.g. the changeset
348 In most cases, a changeset A will have a single element (e.g. the changeset
346 A is replaced by A') in its successors set. Though, it is also common for a
349 A is replaced by A') in its successors set. Though, it is also common for a
347 changeset A to have no elements in its successor set (e.g. the changeset
350 changeset A to have no elements in its successor set (e.g. the changeset
348 has been pruned). Therefore, the returned list of successors sets will be
351 has been pruned). Therefore, the returned list of successors sets will be
349 [(A',)] or [], respectively.
352 [(A',)] or [], respectively.
350
353
351 When a changeset A is split into A' and B', however, it will result in a
354 When a changeset A is split into A' and B', however, it will result in a
352 successors set containing more than a single element, i.e. [(A',B')].
355 successors set containing more than a single element, i.e. [(A',B')].
353 Divergent changesets will result in multiple successors sets, i.e. [(A',),
356 Divergent changesets will result in multiple successors sets, i.e. [(A',),
354 (A'')].
357 (A'')].
355
358
356 If a changeset A is not obsolete, then it will conceptually have no
359 If a changeset A is not obsolete, then it will conceptually have no
357 successors set. To distinguish this from a pruned changeset, the successor
360 successors set. To distinguish this from a pruned changeset, the successor
358 set will contain itself only, i.e. [(A,)].
361 set will contain itself only, i.e. [(A,)].
359
362
360 Finally, final successors unknown locally are considered to be pruned
363 Finally, final successors unknown locally are considered to be pruned
361 (pruned: obsoleted without any successors). (Final: successors not affected
364 (pruned: obsoleted without any successors). (Final: successors not affected
362 by markers).
365 by markers).
363
366
364 The 'closest' mode respect the repoview filtering. For example, without
367 The 'closest' mode respect the repoview filtering. For example, without
365 filter it will stop at the first locally known changeset, with 'visible'
368 filter it will stop at the first locally known changeset, with 'visible'
366 filter it will stop on visible changesets).
369 filter it will stop on visible changesets).
367
370
368 The optional `cache` parameter is a dictionary that may contains
371 The optional `cache` parameter is a dictionary that may contains
369 precomputed successors sets. It is meant to reuse the computation of a
372 precomputed successors sets. It is meant to reuse the computation of a
370 previous call to `successorssets` when multiple calls are made at the same
373 previous call to `successorssets` when multiple calls are made at the same
371 time. The cache dictionary is updated in place. The caller is responsible
374 time. The cache dictionary is updated in place. The caller is responsible
372 for its life span. Code that makes multiple calls to `successorssets`
375 for its life span. Code that makes multiple calls to `successorssets`
373 *should* use this cache mechanism or risk a performance hit.
376 *should* use this cache mechanism or risk a performance hit.
374
377
375 Since results are different depending of the 'closest' most, the same cache
378 Since results are different depending of the 'closest' most, the same cache
376 cannot be reused for both mode.
379 cannot be reused for both mode.
377 """
380 """
378
381
379 succmarkers = repo.obsstore.successors
382 succmarkers = repo.obsstore.successors
380
383
381 # Stack of nodes we search successors sets for
384 # Stack of nodes we search successors sets for
382 toproceed = [initialnode]
385 toproceed = [initialnode]
383 # set version of above list for fast loop detection
386 # set version of above list for fast loop detection
384 # element added to "toproceed" must be added here
387 # element added to "toproceed" must be added here
385 stackedset = set(toproceed)
388 stackedset = set(toproceed)
386 if cache is None:
389 if cache is None:
387 cache = {}
390 cache = {}
388
391
389 # This while loop is the flattened version of a recursive search for
392 # This while loop is the flattened version of a recursive search for
390 # successors sets
393 # successors sets
391 #
394 #
392 # def successorssets(x):
395 # def successorssets(x):
393 # successors = directsuccessors(x)
396 # successors = directsuccessors(x)
394 # ss = [[]]
397 # ss = [[]]
395 # for succ in directsuccessors(x):
398 # for succ in directsuccessors(x):
396 # # product as in itertools cartesian product
399 # # product as in itertools cartesian product
397 # ss = product(ss, successorssets(succ))
400 # ss = product(ss, successorssets(succ))
398 # return ss
401 # return ss
399 #
402 #
400 # But we can not use plain recursive calls here:
403 # But we can not use plain recursive calls here:
401 # - that would blow the python call stack
404 # - that would blow the python call stack
402 # - obsolescence markers may have cycles, we need to handle them.
405 # - obsolescence markers may have cycles, we need to handle them.
403 #
406 #
404 # The `toproceed` list act as our call stack. Every node we search
407 # The `toproceed` list act as our call stack. Every node we search
405 # successors set for are stacked there.
408 # successors set for are stacked there.
406 #
409 #
407 # The `stackedset` is set version of this stack used to check if a node is
410 # The `stackedset` is set version of this stack used to check if a node is
408 # already stacked. This check is used to detect cycles and prevent infinite
411 # already stacked. This check is used to detect cycles and prevent infinite
409 # loop.
412 # loop.
410 #
413 #
411 # successors set of all nodes are stored in the `cache` dictionary.
414 # successors set of all nodes are stored in the `cache` dictionary.
412 #
415 #
413 # After this while loop ends we use the cache to return the successors sets
416 # After this while loop ends we use the cache to return the successors sets
414 # for the node requested by the caller.
417 # for the node requested by the caller.
415 while toproceed:
418 while toproceed:
416 # Every iteration tries to compute the successors sets of the topmost
419 # Every iteration tries to compute the successors sets of the topmost
417 # node of the stack: CURRENT.
420 # node of the stack: CURRENT.
418 #
421 #
419 # There are four possible outcomes:
422 # There are four possible outcomes:
420 #
423 #
421 # 1) We already know the successors sets of CURRENT:
424 # 1) We already know the successors sets of CURRENT:
422 # -> mission accomplished, pop it from the stack.
425 # -> mission accomplished, pop it from the stack.
423 # 2) Stop the walk:
426 # 2) Stop the walk:
424 # default case: Node is not obsolete
427 # default case: Node is not obsolete
425 # closest case: Node is known at this repo filter level
428 # closest case: Node is known at this repo filter level
426 # -> the node is its own successors sets. Add it to the cache.
429 # -> the node is its own successors sets. Add it to the cache.
427 # 3) We do not know successors set of direct successors of CURRENT:
430 # 3) We do not know successors set of direct successors of CURRENT:
428 # -> We add those successors to the stack.
431 # -> We add those successors to the stack.
429 # 4) We know successors sets of all direct successors of CURRENT:
432 # 4) We know successors sets of all direct successors of CURRENT:
430 # -> We can compute CURRENT successors set and add it to the
433 # -> We can compute CURRENT successors set and add it to the
431 # cache.
434 # cache.
432 #
435 #
433 current = toproceed[-1]
436 current = toproceed[-1]
434
437
435 # case 2 condition is a bit hairy because of closest,
438 # case 2 condition is a bit hairy because of closest,
436 # we compute it on its own
439 # we compute it on its own
437 case2condition = ((current not in succmarkers)
440 case2condition = ((current not in succmarkers)
438 or (closest and current != initialnode
441 or (closest and current != initialnode
439 and current in repo))
442 and current in repo))
440
443
441 if current in cache:
444 if current in cache:
442 # case (1): We already know the successors sets
445 # case (1): We already know the successors sets
443 stackedset.remove(toproceed.pop())
446 stackedset.remove(toproceed.pop())
444 elif case2condition:
447 elif case2condition:
445 # case (2): end of walk.
448 # case (2): end of walk.
446 if current in repo:
449 if current in repo:
447 # We have a valid successors.
450 # We have a valid successors.
448 cache[current] = [(current,)]
451 cache[current] = [_succs((current,))]
449 else:
452 else:
450 # Final obsolete version is unknown locally.
453 # Final obsolete version is unknown locally.
451 # Do not count that as a valid successors
454 # Do not count that as a valid successors
452 cache[current] = []
455 cache[current] = []
453 else:
456 else:
454 # cases (3) and (4)
457 # cases (3) and (4)
455 #
458 #
456 # We proceed in two phases. Phase 1 aims to distinguish case (3)
459 # We proceed in two phases. Phase 1 aims to distinguish case (3)
457 # from case (4):
460 # from case (4):
458 #
461 #
459 # For each direct successors of CURRENT, we check whether its
462 # For each direct successors of CURRENT, we check whether its
460 # successors sets are known. If they are not, we stack the
463 # successors sets are known. If they are not, we stack the
461 # unknown node and proceed to the next iteration of the while
464 # unknown node and proceed to the next iteration of the while
462 # loop. (case 3)
465 # loop. (case 3)
463 #
466 #
464 # During this step, we may detect obsolescence cycles: a node
467 # During this step, we may detect obsolescence cycles: a node
465 # with unknown successors sets but already in the call stack.
468 # with unknown successors sets but already in the call stack.
466 # In such a situation, we arbitrary set the successors sets of
469 # In such a situation, we arbitrary set the successors sets of
467 # the node to nothing (node pruned) to break the cycle.
470 # the node to nothing (node pruned) to break the cycle.
468 #
471 #
469 # If no break was encountered we proceed to phase 2.
472 # If no break was encountered we proceed to phase 2.
470 #
473 #
471 # Phase 2 computes successors sets of CURRENT (case 4); see details
474 # Phase 2 computes successors sets of CURRENT (case 4); see details
472 # in phase 2 itself.
475 # in phase 2 itself.
473 #
476 #
474 # Note the two levels of iteration in each phase.
477 # Note the two levels of iteration in each phase.
475 # - The first one handles obsolescence markers using CURRENT as
478 # - The first one handles obsolescence markers using CURRENT as
476 # precursor (successors markers of CURRENT).
479 # precursor (successors markers of CURRENT).
477 #
480 #
478 # Having multiple entry here means divergence.
481 # Having multiple entry here means divergence.
479 #
482 #
480 # - The second one handles successors defined in each marker.
483 # - The second one handles successors defined in each marker.
481 #
484 #
482 # Having none means pruned node, multiple successors means split,
485 # Having none means pruned node, multiple successors means split,
483 # single successors are standard replacement.
486 # single successors are standard replacement.
484 #
487 #
485 for mark in sorted(succmarkers[current]):
488 for mark in sorted(succmarkers[current]):
486 for suc in mark[1]:
489 for suc in mark[1]:
487 if suc not in cache:
490 if suc not in cache:
488 if suc in stackedset:
491 if suc in stackedset:
489 # cycle breaking
492 # cycle breaking
490 cache[suc] = []
493 cache[suc] = []
491 else:
494 else:
492 # case (3) If we have not computed successors sets
495 # case (3) If we have not computed successors sets
493 # of one of those successors we add it to the
496 # of one of those successors we add it to the
494 # `toproceed` stack and stop all work for this
497 # `toproceed` stack and stop all work for this
495 # iteration.
498 # iteration.
496 toproceed.append(suc)
499 toproceed.append(suc)
497 stackedset.add(suc)
500 stackedset.add(suc)
498 break
501 break
499 else:
502 else:
500 continue
503 continue
501 break
504 break
502 else:
505 else:
503 # case (4): we know all successors sets of all direct
506 # case (4): we know all successors sets of all direct
504 # successors
507 # successors
505 #
508 #
506 # Successors set contributed by each marker depends on the
509 # Successors set contributed by each marker depends on the
507 # successors sets of all its "successors" node.
510 # successors sets of all its "successors" node.
508 #
511 #
509 # Each different marker is a divergence in the obsolescence
512 # Each different marker is a divergence in the obsolescence
510 # history. It contributes successors sets distinct from other
513 # history. It contributes successors sets distinct from other
511 # markers.
514 # markers.
512 #
515 #
513 # Within a marker, a successor may have divergent successors
516 # Within a marker, a successor may have divergent successors
514 # sets. In such a case, the marker will contribute multiple
517 # sets. In such a case, the marker will contribute multiple
515 # divergent successors sets. If multiple successors have
518 # divergent successors sets. If multiple successors have
516 # divergent successors sets, a Cartesian product is used.
519 # divergent successors sets, a Cartesian product is used.
517 #
520 #
518 # At the end we post-process successors sets to remove
521 # At the end we post-process successors sets to remove
519 # duplicated entry and successors set that are strict subset of
522 # duplicated entry and successors set that are strict subset of
520 # another one.
523 # another one.
521 succssets = []
524 succssets = []
522 for mark in sorted(succmarkers[current]):
525 for mark in sorted(succmarkers[current]):
523 # successors sets contributed by this marker
526 # successors sets contributed by this marker
524 markss = [[]]
527 markss = [_succs()]
525 for suc in mark[1]:
528 for suc in mark[1]:
526 # cardinal product with previous successors
529 # cardinal product with previous successors
527 productresult = []
530 productresult = []
528 for prefix in markss:
531 for prefix in markss:
529 for suffix in cache[suc]:
532 for suffix in cache[suc]:
530 newss = list(prefix)
533 newss = _succs(prefix)
531 for part in suffix:
534 for part in suffix:
532 # do not duplicated entry in successors set
535 # do not duplicated entry in successors set
533 # first entry wins.
536 # first entry wins.
534 if part not in newss:
537 if part not in newss:
535 newss.append(part)
538 newss.append(part)
536 productresult.append(newss)
539 productresult.append(newss)
537 markss = productresult
540 markss = productresult
538 succssets.extend(markss)
541 succssets.extend(markss)
539 # remove duplicated and subset
542 # remove duplicated and subset
540 seen = []
543 seen = []
541 final = []
544 final = []
542 candidate = sorted(((set(s), s) for s in succssets if s),
545 candidate = sorted(((set(s), s) for s in succssets if s),
543 key=lambda x: len(x[1]), reverse=True)
546 key=lambda x: len(x[1]), reverse=True)
544 for setversion, listversion in candidate:
547 for setversion, listversion in candidate:
545 for seenset in seen:
548 for seenset in seen:
546 if setversion.issubset(seenset):
549 if setversion.issubset(seenset):
547 break
550 break
548 else:
551 else:
549 final.append(listversion)
552 final.append(listversion)
550 seen.append(setversion)
553 seen.append(setversion)
551 final.reverse() # put small successors set first
554 final.reverse() # put small successors set first
552 cache[current] = final
555 cache[current] = final
553 return cache[initialnode]
556 return cache[initialnode]
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