Mercurial > hg
annotate mercurial/ancestor.py @ 5073:4cd52978e188
test-git-import: fake executable permissions.
author | Patrick Mezard <pmezard@gmail.com> |
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date | Mon, 06 Aug 2007 10:38:07 +0200 |
parents | eb0b4a2d70a9 |
children | 20aa460a52b6 |
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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 |
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6 # of the GNU General Public License, incorporated herein by reference. |
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7 |
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8 import heapq |
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9 |
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10 def ancestor(a, b, pfunc): |
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11 """ |
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12 return the least common ancestor of nodes a and b or None if there |
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13 is no such ancestor. |
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14 |
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15 pfunc must return a list of parent vertices |
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16 """ |
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17 |
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18 if a == b: |
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19 return a |
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20 |
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21 # find depth from root of all ancestors |
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22 visit = [a, b] |
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23 depth = {} |
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24 while visit: |
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25 vertex = visit[-1] |
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26 pl = pfunc(vertex) |
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27 if not pl: |
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28 depth[vertex] = 0 |
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29 visit.pop() |
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30 else: |
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31 for p in pl: |
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32 if p == a or p == b: # did we find a or b as a parent? |
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33 return p # we're done |
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34 if p not in depth: |
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35 visit.append(p) |
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36 if visit[-1] == vertex: |
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37 depth[vertex] = min([depth[p] for p in pl]) - 1 |
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38 visit.pop() |
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39 |
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40 # traverse ancestors in order of decreasing distance from root |
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41 def ancestors(vertex): |
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42 h = [(depth[vertex], vertex)] |
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43 seen = {} |
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44 while h: |
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45 d, n = heapq.heappop(h) |
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46 if n not in seen: |
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47 seen[n] = 1 |
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48 yield (d, n) |
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49 for p in pfunc(n): |
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50 heapq.heappush(h, (depth[p], p)) |
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51 |
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52 def generations(vertex): |
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53 sg, s = None, {} |
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54 for g, v in ancestors(vertex): |
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55 if g != sg: |
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56 if sg: |
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57 yield sg, s |
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58 sg, s = g, {v:1} |
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59 else: |
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60 s[v] = 1 |
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61 yield sg, s |
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62 |
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63 x = generations(a) |
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64 y = generations(b) |
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65 gx = x.next() |
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66 gy = y.next() |
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67 |
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68 # increment each ancestor list until it is closer to root than |
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69 # the other, or they match |
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70 try: |
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71 while 1: |
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72 if gx[0] == gy[0]: |
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73 for v in gx[1]: |
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74 if v in gy[1]: |
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75 return v |
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76 gy = y.next() |
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77 gx = x.next() |
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78 elif gx[0] > gy[0]: |
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79 gy = y.next() |
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80 else: |
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81 gx = x.next() |
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82 except StopIteration: |
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83 return None |