pattern matching: convert tabs to spaces
This commit is contained in:
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5 changed files with 929 additions and 915 deletions
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@ -1,8 +1,8 @@
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# coding: utf-8
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"""
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Author: Sten Vercamman
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Univeristy of Antwerp
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Author: Sten Vercamman
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Univeristy of Antwerp
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Example code for paper: Efficient model transformations for novices
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url: http://msdl.cs.mcgill.ca/people/hv/teaching/MSBDesign/projects/Sten.Vercammen
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@ -25,178 +25,178 @@ import collections
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import random
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class GraphGenerator(object):
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"""
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Generates a random Graph with dv an array containing all vertices (there type),
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de an array containing all edges (their type) and dc_inc an array representing
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the incoming edges (analogue for dc_out)
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"""
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def __init__(self, dv, de, dc_inc, dc_out, debug=False):
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if len(de) != len(dc_inc):
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raise ValueError('de and dc_inc should be the same length.')
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if len(de) != len(dc_out):
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raise ValueError('de and dc_out should be the same length.')
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"""
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Generates a random Graph with dv an array containing all vertices (there type),
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de an array containing all edges (their type) and dc_inc an array representing
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the incoming edges (analogue for dc_out)
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"""
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def __init__(self, dv, de, dc_inc, dc_out, debug=False):
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if len(de) != len(dc_inc):
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raise ValueError('de and dc_inc should be the same length.')
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if len(de) != len(dc_out):
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raise ValueError('de and dc_out should be the same length.')
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self.dv = dv
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self.de = de
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self.dc_inc = dc_inc
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self.dc_out = dc_out
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self.dv = dv
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self.de = de
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self.dc_inc = dc_inc
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self.dc_out = dc_out
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# print for debugging, so you know the used values
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if debug:
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print('dv')
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print('[',','.join(map(str,dv)),']')
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print('_____')
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print('de')
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print('[',','.join(map(str,de)),']')
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print('_____')
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print('dc_inc')
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print('[',','.join(map(str,dc_inc)),']')
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print('_____')
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print('dc_out')
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print('[',','.join(map(str,dc_out)),']')
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print('_____')
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# print for debugging, so you know the used values
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if debug:
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print('dv')
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print('[',','.join(map(str,dv)),']')
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print('_____')
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print('de')
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print('[',','.join(map(str,de)),']')
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print('_____')
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print('dc_inc')
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print('[',','.join(map(str,dc_inc)),']')
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print('_____')
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print('dc_out')
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print('[',','.join(map(str,dc_out)),']')
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print('_____')
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self.graph = graph.Graph()
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self.vertices = []
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# create all the vertices:
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for v_type in self.dv:
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# v_type represents the type of the vertex
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self.vertices.append(self.graph.addCreateVertex('v' + str(v_type)))
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index = 0
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# create all edges
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for e_type in self.de:
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# e_type represents the type of the edge
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src = self.vertices[self.dc_out[index]] # get src vertex
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tgt = self.vertices[self.dc_inc[index]] # get tgt vertex
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self.graph.addCreateEdge(src, tgt, 'e' + str(e_type)) # create edge
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index += 1
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self.graph = graph.Graph()
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self.vertices = []
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# create all the vertices:
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for v_type in self.dv:
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# v_type represents the type of the vertex
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self.vertices.append(self.graph.addCreateVertex('v' + str(v_type)))
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index = 0
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# create all edges
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for e_type in self.de:
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# e_type represents the type of the edge
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src = self.vertices[self.dc_out[index]] # get src vertex
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tgt = self.vertices[self.dc_inc[index]] # get tgt vertex
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self.graph.addCreateEdge(src, tgt, 'e' + str(e_type)) # create edge
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index += 1
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def getRandomGraph(self):
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return self.graph
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def getRandomGraph(self):
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return self.graph
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def getRandomPattern(self, max_nr_of_v, max_nr_of_e, start=0, debug=False):
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# create pattern
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pattern = graph.Graph()
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def getRandomPattern(self, max_nr_of_v, max_nr_of_e, start=0, debug=False):
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# create pattern
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pattern = graph.Graph()
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# map from graph to new pattern
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graph_to_pattern = {}
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# map from graph to new pattern
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graph_to_pattern = {}
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# map of possible edges
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# we don't need a dict, but python v2.7 does not have an OrderedSet
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possible_edges = collections.OrderedDict()
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# map of possible edges
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# we don't need a dict, but python v2.7 does not have an OrderedSet
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possible_edges = collections.OrderedDict()
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# set of chosen edges
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chosen_edges = set()
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# set of chosen edges
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chosen_edges = set()
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# start node from graph
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g_node = self.vertices[start]
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p_node = pattern.addCreateVertex(g_node.type)
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# for debuging, print the order in which the pattern gets created and
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# connects it edges
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if debug:
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print('v'+str(id(p_node))+'=pattern.addCreateVertex('+"'"+str(g_node.type)+"'"+')')
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# save corrolation
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graph_to_pattern[g_node] = p_node
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# start node from graph
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g_node = self.vertices[start]
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p_node = pattern.addCreateVertex(g_node.type)
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# for debuging, print the order in which the pattern gets created and
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# connects it edges
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if debug:
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print('v'+str(id(p_node))+'=pattern.addCreateVertex('+"'"+str(g_node.type)+"'"+')')
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# save corrolation
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graph_to_pattern[g_node] = p_node
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def insertAllEdges(edges, possible_edges, chosen_edges):
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for edge in edges:
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# if we did not chose the edge
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if edge not in chosen_edges:
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# if inc_edge not in possible edges, add it with value 1
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possible_edges[edge] = None
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def insertAllEdges(edges, possible_edges, chosen_edges):
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for edge in edges:
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# if we did not chose the edge
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if edge not in chosen_edges:
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# if inc_edge not in possible edges, add it with value 1
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possible_edges[edge] = None
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def insertEdges(g_vertex, possible_edges, chosen_edges):
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insertAllEdges(g_vertex.incoming_edges, possible_edges, chosen_edges)
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insertAllEdges(g_vertex.outgoing_edges, possible_edges, chosen_edges)
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def insertEdges(g_vertex, possible_edges, chosen_edges):
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insertAllEdges(g_vertex.incoming_edges, possible_edges, chosen_edges)
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insertAllEdges(g_vertex.outgoing_edges, possible_edges, chosen_edges)
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insertEdges(g_node, possible_edges, chosen_edges)
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insertEdges(g_node, possible_edges, chosen_edges)
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while max_nr_of_v > len(graph_to_pattern) and max_nr_of_e > len(chosen_edges):
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candidate = None
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if len(possible_edges) == 0:
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break
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# get a random number between 0 and len(possible_edges)
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# We us a triangular distribution to approximate the fact that
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# the first element is the longest in the possible_edges and
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# already had the post chance of beeing choosen.
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# (The approximation is because the first few ellements where
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# added in the same itteration, but doing this exact is
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# computationally expensive.)
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if len(possible_edges) == 1:
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randie = 0
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else:
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randie = int(round(random.triangular(1, len(possible_edges), len(possible_edges)))) - 1
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candidate = list(possible_edges.keys())[randie]
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del possible_edges[candidate]
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chosen_edges.add(candidate)
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while max_nr_of_v > len(graph_to_pattern) and max_nr_of_e > len(chosen_edges):
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candidate = None
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if len(possible_edges) == 0:
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break
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# get a random number between 0 and len(possible_edges)
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# We us a triangular distribution to approximate the fact that
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# the first element is the longest in the possible_edges and
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# already had the post chance of beeing choosen.
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# (The approximation is because the first few ellements where
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# added in the same itteration, but doing this exact is
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# computationally expensive.)
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if len(possible_edges) == 1:
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randie = 0
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else:
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randie = int(round(random.triangular(1, len(possible_edges), len(possible_edges)))) - 1
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candidate = list(possible_edges.keys())[randie]
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del possible_edges[candidate]
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chosen_edges.add(candidate)
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src = graph_to_pattern.get(candidate.src)
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tgt = graph_to_pattern.get(candidate.tgt)
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src_is_new = True
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if src != None and tgt != None:
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# create edge between source and target
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pattern.addCreateEdge(src, tgt, candidate.type)
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if debug:
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print('pattern.addCreateEdge('+'v'+str(id(src))+', '+'v'+str(id(tgt))+', '+"'"+str(candidate.type)+"'"+')')
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# skip adding new edges
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continue
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elif src == None:
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# create pattern vertex
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src = pattern.addCreateVertex(candidate.src.type)
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if debug:
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print('v'+str(id(src))+'=pattern.addCreateVertex('+"'"+str(candidate.src.type)+"'"+')')
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# map newly created pattern vertex
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graph_to_pattern[candidate.src] = src
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# create edge between source and target
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pattern.addCreateEdge(src, tgt, candidate.type)
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if debug:
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print('pattern.addCreateEdge('+'v'+str(id(src))+', '+'v'+str(id(tgt))+', '+"'"+str(candidate.type)+"'"+')')
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elif tgt == None:
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src_is_new = False
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# create pattern vertex
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tgt = pattern.addCreateVertex(candidate.tgt.type)
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if debug:
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print('v'+str(id(tgt))+'=pattern.addCreateVertex('+"'"+str(candidate.tgt.type)+"'"+')')
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# map newly created pattern vertex
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graph_to_pattern[candidate.tgt] = tgt
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# create edge between source and target
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pattern.addCreateEdge(src, tgt, candidate.type)
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if debug:
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print('pattern.addCreateEdge('+'v'+str(id(src))+', '+'v'+str(id(tgt))+', '+"'"+str(candidate.type)+"'"+')')
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else:
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raise RuntimeError('Bug: src or tgt of edge should be in out pattern')
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src = graph_to_pattern.get(candidate.src)
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tgt = graph_to_pattern.get(candidate.tgt)
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src_is_new = True
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if src != None and tgt != None:
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# create edge between source and target
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pattern.addCreateEdge(src, tgt, candidate.type)
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if debug:
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print('pattern.addCreateEdge('+'v'+str(id(src))+', '+'v'+str(id(tgt))+', '+"'"+str(candidate.type)+"'"+')')
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# skip adding new edges
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continue
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elif src == None:
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# create pattern vertex
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src = pattern.addCreateVertex(candidate.src.type)
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if debug:
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print('v'+str(id(src))+'=pattern.addCreateVertex('+"'"+str(candidate.src.type)+"'"+')')
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# map newly created pattern vertex
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graph_to_pattern[candidate.src] = src
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# create edge between source and target
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pattern.addCreateEdge(src, tgt, candidate.type)
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if debug:
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print('pattern.addCreateEdge('+'v'+str(id(src))+', '+'v'+str(id(tgt))+', '+"'"+str(candidate.type)+"'"+')')
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elif tgt == None:
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src_is_new = False
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# create pattern vertex
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tgt = pattern.addCreateVertex(candidate.tgt.type)
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if debug:
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print('v'+str(id(tgt))+'=pattern.addCreateVertex('+"'"+str(candidate.tgt.type)+"'"+')')
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# map newly created pattern vertex
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graph_to_pattern[candidate.tgt] = tgt
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# create edge between source and target
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pattern.addCreateEdge(src, tgt, candidate.type)
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if debug:
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print('pattern.addCreateEdge('+'v'+str(id(src))+', '+'v'+str(id(tgt))+', '+"'"+str(candidate.type)+"'"+')')
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else:
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raise RuntimeError('Bug: src or tgt of edge should be in out pattern')
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# select the vertex from the chosen edge that was not yet part of the pattern
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if src_is_new:
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new_vertex = candidate.src
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else:
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new_vertex = candidate.tgt
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# insert all edges from the new vertex
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insertEdges(new_vertex, possible_edges, chosen_edges)
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# select the vertex from the chosen edge that was not yet part of the pattern
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if src_is_new:
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new_vertex = candidate.src
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else:
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new_vertex = candidate.tgt
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# insert all edges from the new vertex
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insertEdges(new_vertex, possible_edges, chosen_edges)
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return pattern
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return pattern
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def createConstantPattern():
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"""
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Use this to create the same pattern over and over again.
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"""
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# create pattern
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pattern = graph.Graph()
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def createConstantPattern():
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"""
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Use this to create the same pattern over and over again.
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"""
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# create pattern
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pattern = graph.Graph()
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# copy and paste printed pattern from debug output or create a pattern
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# below the following line:
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# ----------------------------------------------------------------------
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v4447242448=pattern.addCreateVertex('v4')
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v4457323088=pattern.addCreateVertex('v6')
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pattern.addCreateEdge(v4447242448, v4457323088, 'e4')
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v4457323216=pattern.addCreateVertex('v8')
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pattern.addCreateEdge(v4457323216, v4447242448, 'e4')
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v4457323344=pattern.addCreateVertex('v7')
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pattern.addCreateEdge(v4457323216, v4457323344, 'e3')
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v4457323472=pattern.addCreateVertex('v7')
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pattern.addCreateEdge(v4457323344, v4457323472, 'e1')
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# copy and paste printed pattern from debug output or create a pattern
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# below the following line:
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# ----------------------------------------------------------------------
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v4447242448=pattern.addCreateVertex('v4')
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v4457323088=pattern.addCreateVertex('v6')
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pattern.addCreateEdge(v4447242448, v4457323088, 'e4')
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v4457323216=pattern.addCreateVertex('v8')
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pattern.addCreateEdge(v4457323216, v4447242448, 'e4')
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v4457323344=pattern.addCreateVertex('v7')
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pattern.addCreateEdge(v4457323216, v4457323344, 'e3')
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v4457323472=pattern.addCreateVertex('v7')
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pattern.addCreateEdge(v4457323344, v4457323472, 'e1')
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# ----------------------------------------------------------------------
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return pattern
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# ----------------------------------------------------------------------
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return pattern
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@ -1,8 +1,8 @@
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# coding: utf-8
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"""
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Author: Sten Vercamman
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Univeristy of Antwerp
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Author: Sten Vercamman
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Univeristy of Antwerp
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Example code for paper: Efficient model transformations for novices
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url: http://msdl.cs.mcgill.ca/people/hv/teaching/MSBDesign/projects/Sten.Vercammen
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@ -19,139 +19,139 @@ at the workings behind various techniques for efficient pattern matching.
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"""
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class Properties(object):
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"""
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Holds all Properties.
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"""
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def __init__(self):
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# member variables:
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self.properties = {}
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"""
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Holds all Properties.
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"""
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def __init__(self):
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# member variables:
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self.properties = {}
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def addProperty(self, name, value):
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"""
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Adds property (overrides if name already exists).
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"""
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self.properties[name] = value
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def addProperty(self, name, value):
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"""
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Adds property (overrides if name already exists).
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"""
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self.properties[name] = value
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def getProperty(self, name):
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"""
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Returns property with given name or None if not found.
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"""
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return self.properties.get(name)
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def getProperty(self, name):
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"""
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Returns property with given name or None if not found.
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"""
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return self.properties.get(name)
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class Edge(Properties):
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"""
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Describes an Edge with source and target Node.
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The Edge can have several properties, like a name, a weight, etc...
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"""
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def __init__(self, src, tgt, str_type=None):
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# Call parent class constructor
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Properties.__init__(self)
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# member variables:
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self.src = src
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self.tgt = tgt
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self.type = str_type
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"""
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Describes an Edge with source and target Node.
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The Edge can have several properties, like a name, a weight, etc...
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"""
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def __init__(self, src, tgt, str_type=None):
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# Call parent class constructor
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Properties.__init__(self)
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# member variables:
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self.src = src
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self.tgt = tgt
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self.type = str_type
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class Vertex(Properties):
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"""
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Describes a Vertex with incoming, outgoing and undirected (both ways) edges.
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The vertex can have several properties, like a name, a weight, etc...
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"""
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def __init__(self, str_type):
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# Call parent class constructor
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Properties.__init__(self)
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# member variables:
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self.incoming_edges = set() # undirected edges should be stored both in
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self.outgoing_edges = set() # incoming and outgoing edges
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self.type = str_type
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"""
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Describes a Vertex with incoming, outgoing and undirected (both ways) edges.
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The vertex can have several properties, like a name, a weight, etc...
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"""
|
||||
def __init__(self, str_type):
|
||||
# Call parent class constructor
|
||||
Properties.__init__(self)
|
||||
# member variables:
|
||||
self.incoming_edges = set() # undirected edges should be stored both in
|
||||
self.outgoing_edges = set() # incoming and outgoing edges
|
||||
self.type = str_type
|
||||
|
||||
def addIncomingEdge(self, edge):
|
||||
"""
|
||||
Adds an incoming Edge.
|
||||
"""
|
||||
if not isinstance(edge, Edge):
|
||||
raise TypeError('addIncomingEdge without it being an edge')
|
||||
self.incoming_edges.add(edge)
|
||||
def addIncomingEdge(self, edge):
|
||||
"""
|
||||
Adds an incoming Edge.
|
||||
"""
|
||||
if not isinstance(edge, Edge):
|
||||
raise TypeError('addIncomingEdge without it being an edge')
|
||||
self.incoming_edges.add(edge)
|
||||
|
||||
def addOutgoingEdge(self, edge):
|
||||
"""
|
||||
Adds an outgoing Edge.
|
||||
"""
|
||||
if not isinstance(edge, Edge):
|
||||
raise TypeError('addOutgoingEdge without it being an edge')
|
||||
self.outgoing_edges.add(edge)
|
||||
def addOutgoingEdge(self, edge):
|
||||
"""
|
||||
Adds an outgoing Edge.
|
||||
"""
|
||||
if not isinstance(edge, Edge):
|
||||
raise TypeError('addOutgoingEdge without it being an edge')
|
||||
self.outgoing_edges.add(edge)
|
||||
|
||||
def addUndirectedEdge(self, edge):
|
||||
"""
|
||||
Adds an undirected (or bi-directed) Edge.
|
||||
"""
|
||||
self.addIncomingEdge(edge)
|
||||
self.addOutgoingEdge(edge)
|
||||
def addUndirectedEdge(self, edge):
|
||||
"""
|
||||
Adds an undirected (or bi-directed) Edge.
|
||||
"""
|
||||
self.addIncomingEdge(edge)
|
||||
self.addOutgoingEdge(edge)
|
||||
|
||||
class Graph(object):
|
||||
"""
|
||||
Holds a Graph.
|
||||
"""
|
||||
def __init__(self):
|
||||
# member variables:
|
||||
# redundant type keeping, "needed" for fast iterating over specific type
|
||||
self.vertices = {} # {type, set(v1, v2, ...)}
|
||||
self.edges = {} # {type, set(e1, e2, ...)}
|
||||
"""
|
||||
Holds a Graph.
|
||||
"""
|
||||
def __init__(self):
|
||||
# member variables:
|
||||
# redundant type keeping, "needed" for fast iterating over specific type
|
||||
self.vertices = {} # {type, set(v1, v2, ...)}
|
||||
self.edges = {} # {type, set(e1, e2, ...)}
|
||||
|
||||
def addCreateVertex(self, str_type):
|
||||
"""
|
||||
Creates a Vertex of str_type, stores it and returs it
|
||||
(so that properties can be added to it).
|
||||
"""
|
||||
vertex = Vertex(str_type)
|
||||
self.addVertex(vertex)
|
||||
return vertex
|
||||
|
||||
def addCreateVertex(self, str_type):
|
||||
"""
|
||||
Creates a Vertex of str_type, stores it and returs it
|
||||
(so that properties can be added to it).
|
||||
"""
|
||||
vertex = Vertex(str_type)
|
||||
self.addVertex(vertex)
|
||||
return vertex
|
||||
def addVertex(self, vertex):
|
||||
"""
|
||||
Stores a Vertex into the Graph.
|
||||
"""
|
||||
if not isinstance(vertex, Vertex):
|
||||
raise TypeError('addVertex expects a Vertex')
|
||||
# add vertex, but it first creates a new set for the vertex type
|
||||
# if the type does not exist in the dictionary
|
||||
self.vertices.setdefault(vertex.type, set()).add(vertex)
|
||||
|
||||
def addVertex(self, vertex):
|
||||
"""
|
||||
Stores a Vertex into the Graph.
|
||||
"""
|
||||
if not isinstance(vertex, Vertex):
|
||||
raise TypeError('addVertex expects a Vertex')
|
||||
# add vertex, but it first creates a new set for the vertex type
|
||||
# if the type does not exist in the dictionary
|
||||
self.vertices.setdefault(vertex.type, set()).add(vertex)
|
||||
def getVerticesOfType(self, str_type):
|
||||
"""
|
||||
Returns all vertices of a specific type,
|
||||
Return [] if there are no vertices with the given type
|
||||
"""
|
||||
return self.vertices.get(str_type, [])
|
||||
|
||||
def getVerticesOfType(self, str_type):
|
||||
"""
|
||||
Returns all vertices of a specific type,
|
||||
Return [] if there are no vertices with the given type
|
||||
"""
|
||||
return self.vertices.get(str_type, [])
|
||||
def getEdgesOfType(self, str_type):
|
||||
"""
|
||||
Returns all edges of a specific type,
|
||||
Return [] if there are no edges with the given type
|
||||
"""
|
||||
return self.edges.get(str_type, [])
|
||||
|
||||
def getEdgesOfType(self, str_type):
|
||||
"""
|
||||
Returns all edges of a specific type,
|
||||
Return [] if there are no edges with the given type
|
||||
"""
|
||||
return self.edges.get(str_type, [])
|
||||
def addCreateEdge(self, src, tgt, str_type):
|
||||
"""
|
||||
Creates edge of str_type from src to tgt, and returns it,
|
||||
so that properties can be added to the edge.
|
||||
"""
|
||||
if not isinstance(src, Vertex):
|
||||
raise TypeError('addCreateEdge: src is not a Vertex')
|
||||
if not isinstance(tgt, Vertex):
|
||||
raise TypeError('addCreateEdge: tgt is not a Vertex')
|
||||
edge = Edge(src, tgt, str_type)
|
||||
# link vertices connected to this edge
|
||||
edge.src.addOutgoingEdge(edge)
|
||||
edge.tgt.addIncomingEdge(edge)
|
||||
self.addEdge(edge)
|
||||
return edge
|
||||
|
||||
def addCreateEdge(self, src, tgt, str_type):
|
||||
"""
|
||||
Creates edge of str_type from src to tgt, and returns it,
|
||||
so that properties can be added to the edge.
|
||||
"""
|
||||
if not isinstance(src, Vertex):
|
||||
raise TypeError('addCreateEdge: src is not a Vertex')
|
||||
if not isinstance(tgt, Vertex):
|
||||
raise TypeError('addCreateEdge: tgt is not a Vertex')
|
||||
edge = Edge(src, tgt, str_type)
|
||||
# link vertices connected to this edge
|
||||
edge.src.addOutgoingEdge(edge)
|
||||
edge.tgt.addIncomingEdge(edge)
|
||||
self.addEdge(edge)
|
||||
return edge
|
||||
|
||||
def addEdge(self, edge):
|
||||
"""
|
||||
Stores an Edge into the Graph.
|
||||
"""
|
||||
if not isinstance(edge, Edge):
|
||||
raise TypeError('addEdge expects an Edge')
|
||||
# add edge, but it first creates a new set for the edge type
|
||||
# if the type does not exist in the dictionary
|
||||
self.edges.setdefault(edge.type, set()).add(edge)
|
||||
def addEdge(self, edge):
|
||||
"""
|
||||
Stores an Edge into the Graph.
|
||||
"""
|
||||
if not isinstance(edge, Edge):
|
||||
raise TypeError('addEdge expects an Edge')
|
||||
# add edge, but it first creates a new set for the edge type
|
||||
# if the type does not exist in the dictionary
|
||||
self.edges.setdefault(edge.type, set()).add(edge)
|
||||
|
|
|
|||
|
|
@ -1,8 +1,8 @@
|
|||
# coding: utf-8
|
||||
|
||||
"""
|
||||
Author: Sten Vercamman
|
||||
Univeristy of Antwerp
|
||||
Author: Sten Vercamman
|
||||
Univeristy of Antwerp
|
||||
|
||||
Example code for paper: Efficient model transformations for novices
|
||||
url: http://msdl.cs.mcgill.ca/people/hv/teaching/MSBDesign/projects/Sten.Vercammen
|
||||
|
|
@ -21,24 +21,24 @@ at the workings behind various techniques for efficient pattern matching.
|
|||
import graph as mg
|
||||
|
||||
def printGraph(fileName, graph, matched_v={}, matched_e={}):
|
||||
if not isinstance(graph, mg.Graph):
|
||||
raise TypeError('Can only print Graph Graphs')
|
||||
if not isinstance(graph, mg.Graph):
|
||||
raise TypeError('Can only print Graph Graphs')
|
||||
|
||||
with open(fileName, 'w') as f:
|
||||
f.write('digraph randomGraph {\n\n')
|
||||
for str_type, plan_vertices in graph.vertices.items():
|
||||
for plan_vertex in plan_vertices:
|
||||
vertex_str = str(id(plan_vertex)) + ' [label="'+str(str_type)+'"'
|
||||
if plan_vertex in list(matched_v.values()):
|
||||
vertex_str += ', style=dashed, style=filled]\n'
|
||||
else:
|
||||
vertex_str += ']\n'
|
||||
f.write(vertex_str)
|
||||
for out_edge in plan_vertex.outgoing_edges:
|
||||
edge_str = str(id(plan_vertex)) + ' -> ' + str(id(out_edge.tgt)) + ' [label="'+str(out_edge.type)+'"'
|
||||
if out_edge in list(matched_e.values()):
|
||||
edge_str += ', style=dashed, penwidth = 4]\n'
|
||||
else:
|
||||
edge_str += ']\n'
|
||||
f.write(edge_str)
|
||||
f.write('\n}')
|
||||
with open(fileName, 'w') as f:
|
||||
f.write('digraph randomGraph {\n\n')
|
||||
for str_type, plan_vertices in graph.vertices.items():
|
||||
for plan_vertex in plan_vertices:
|
||||
vertex_str = str(id(plan_vertex)) + ' [label="'+str(str_type)+'"'
|
||||
if plan_vertex in list(matched_v.values()):
|
||||
vertex_str += ', style=dashed, style=filled]\n'
|
||||
else:
|
||||
vertex_str += ']\n'
|
||||
f.write(vertex_str)
|
||||
for out_edge in plan_vertex.outgoing_edges:
|
||||
edge_str = str(id(plan_vertex)) + ' -> ' + str(id(out_edge.tgt)) + ' [label="'+str(out_edge.type)+'"'
|
||||
if out_edge in list(matched_e.values()):
|
||||
edge_str += ', style=dashed, penwidth = 4]\n'
|
||||
else:
|
||||
edge_str += ']\n'
|
||||
f.write(edge_str)
|
||||
f.write('\n}')
|
||||
|
|
@ -1,8 +1,8 @@
|
|||
# coding: utf-8
|
||||
|
||||
"""
|
||||
Author: Sten Vercamman
|
||||
Univeristy of Antwerp
|
||||
Author: Sten Vercamman
|
||||
Univeristy of Antwerp
|
||||
|
||||
Example code for paper: Efficient model transformations for novices
|
||||
url: http://msdl.cs.mcgill.ca/people/hv/teaching/MSBDesign/projects/Sten.Vercammen
|
||||
|
|
@ -18,8 +18,8 @@ It is intended as a guideline, even for novices, and provides an in-depth look
|
|||
at the workings behind various techniques for efficient pattern matching.
|
||||
"""
|
||||
|
||||
from generator import *
|
||||
from patternMatching import *
|
||||
from generator import *
|
||||
from patternMatching import *
|
||||
|
||||
import graphToDot
|
||||
|
||||
|
|
@ -28,66 +28,66 @@ import random
|
|||
debug = False
|
||||
|
||||
if __name__ == '__main__':
|
||||
"""
|
||||
The main function called when running from the command line.
|
||||
"""
|
||||
nr_of_vertices = 50
|
||||
nr_of_diff_types_v = 2
|
||||
nr_of_edges = 150
|
||||
nr_of_diff_types_e = 2
|
||||
"""
|
||||
The main function called when running from the command line.
|
||||
"""
|
||||
nr_of_vertices = 50
|
||||
nr_of_diff_types_v = 2
|
||||
nr_of_edges = 150
|
||||
nr_of_diff_types_e = 2
|
||||
|
||||
dv = [random.randint(0, nr_of_diff_types_v) for _ in range(nr_of_vertices)]
|
||||
de = [random.randint(0, nr_of_diff_types_e) for _ in range(nr_of_edges)]
|
||||
dc_inc = [random.randint(0, nr_of_vertices-1) for _ in range(nr_of_edges)]
|
||||
dc_out = [random.randint(0, nr_of_vertices-1) for _ in range(nr_of_edges)]
|
||||
dv = [random.randint(0, nr_of_diff_types_v) for _ in range(nr_of_vertices)]
|
||||
de = [random.randint(0, nr_of_diff_types_e) for _ in range(nr_of_edges)]
|
||||
dc_inc = [random.randint(0, nr_of_vertices-1) for _ in range(nr_of_edges)]
|
||||
dc_out = [random.randint(0, nr_of_vertices-1) for _ in range(nr_of_edges)]
|
||||
|
||||
# override random graph by copy pasting output from terminal
|
||||
# dv = [ 10,5,4,0,8,6,8,0,4,8,5,5,7,0,10,0,5,6,10,4,0,3,0,8,2,7,5,8,1,0,2,10,0,0,1,6,8,4,7,6,4,2,10,10,6,4,6,0,2,7 ]
|
||||
# de = [ 8,10,8,1,6,7,4,3,5,2,0,0,9,6,0,3,8,3,2,7,2,3,10,8,10,8,10,2,5,5,10,6,7,5,1,2,1,2,2,3,7,7,2,1,7,2,9,10,8,1,9,4,1,3,1,1,8,2,2,9,10,9,1,9,4,10,10,10,9,3,5,3,6,6,9,1,2,6,3,2,4,10,9,6,5,6,2,4,3,2,4,10,6,2,8,8,0,5,1,7,3,4,3,8,7,3,0,8,3,3,8,5,10,5,9,3,1,10,3,2,6,3,10,0,5,10,9,10,0,1,4,7,10,3,1,9,1,2,3,7,4,3,7,8,8,4,5,10,1,4 ]
|
||||
# dc_inc = [ 0,25,18,47,22,25,16,45,38,25,5,45,15,44,17,46,6,17,35,8,16,29,48,47,25,34,4,20,24,1,47,44,8,25,32,3,16,6,33,21,6,13,41,10,17,25,21,33,31,30,5,4,45,26,16,42,12,25,29,3,32,30,14,26,11,13,7,13,3,43,43,22,48,37,20,28,15,40,19,33,43,16,49,36,11,25,9,42,3,22,16,40,42,44,27,30,1,18,10,35,19,6,9,43,37,38,45,19,41,14,37,45,0,31,29,31,24,20,44,46,8,45,43,3,38,38,35,12,19,45,7,34,20,28,12,17,45,17,35,49,20,21,49,1,35,38,38,36,33,30 ]
|
||||
# dc_out = [ 9,2,49,49,37,33,16,21,5,46,4,15,9,6,14,22,16,33,23,21,15,31,37,23,47,3,30,26,35,9,29,21,39,32,22,43,5,9,41,30,31,30,37,33,31,34,23,22,34,26,44,36,38,33,48,5,9,34,13,7,48,41,43,26,26,7,12,6,12,28,22,8,29,22,24,27,16,4,31,41,32,15,19,20,38,0,26,18,43,46,40,17,29,14,34,14,32,17,32,47,16,45,7,4,35,22,42,11,38,2,0,29,4,38,17,44,9,23,5,10,31,17,1,11,16,5,37,27,35,32,45,16,18,1,14,4,42,24,43,31,21,38,6,34,39,46,20,1,38,47 ]
|
||||
# override random graph by copy pasting output from terminal
|
||||
# dv = [ 10,5,4,0,8,6,8,0,4,8,5,5,7,0,10,0,5,6,10,4,0,3,0,8,2,7,5,8,1,0,2,10,0,0,1,6,8,4,7,6,4,2,10,10,6,4,6,0,2,7 ]
|
||||
# de = [ 8,10,8,1,6,7,4,3,5,2,0,0,9,6,0,3,8,3,2,7,2,3,10,8,10,8,10,2,5,5,10,6,7,5,1,2,1,2,2,3,7,7,2,1,7,2,9,10,8,1,9,4,1,3,1,1,8,2,2,9,10,9,1,9,4,10,10,10,9,3,5,3,6,6,9,1,2,6,3,2,4,10,9,6,5,6,2,4,3,2,4,10,6,2,8,8,0,5,1,7,3,4,3,8,7,3,0,8,3,3,8,5,10,5,9,3,1,10,3,2,6,3,10,0,5,10,9,10,0,1,4,7,10,3,1,9,1,2,3,7,4,3,7,8,8,4,5,10,1,4 ]
|
||||
# dc_inc = [ 0,25,18,47,22,25,16,45,38,25,5,45,15,44,17,46,6,17,35,8,16,29,48,47,25,34,4,20,24,1,47,44,8,25,32,3,16,6,33,21,6,13,41,10,17,25,21,33,31,30,5,4,45,26,16,42,12,25,29,3,32,30,14,26,11,13,7,13,3,43,43,22,48,37,20,28,15,40,19,33,43,16,49,36,11,25,9,42,3,22,16,40,42,44,27,30,1,18,10,35,19,6,9,43,37,38,45,19,41,14,37,45,0,31,29,31,24,20,44,46,8,45,43,3,38,38,35,12,19,45,7,34,20,28,12,17,45,17,35,49,20,21,49,1,35,38,38,36,33,30 ]
|
||||
# dc_out = [ 9,2,49,49,37,33,16,21,5,46,4,15,9,6,14,22,16,33,23,21,15,31,37,23,47,3,30,26,35,9,29,21,39,32,22,43,5,9,41,30,31,30,37,33,31,34,23,22,34,26,44,36,38,33,48,5,9,34,13,7,48,41,43,26,26,7,12,6,12,28,22,8,29,22,24,27,16,4,31,41,32,15,19,20,38,0,26,18,43,46,40,17,29,14,34,14,32,17,32,47,16,45,7,4,35,22,42,11,38,2,0,29,4,38,17,44,9,23,5,10,31,17,1,11,16,5,37,27,35,32,45,16,18,1,14,4,42,24,43,31,21,38,6,34,39,46,20,1,38,47 ]
|
||||
|
||||
dv = [0, 1, 0, 1, 0]
|
||||
de = [0, 0, 0]
|
||||
dc_inc = [0, 2, 4]
|
||||
dc_out = [1, 3, 3]
|
||||
|
||||
gg = GraphGenerator(dv, de, dc_inc, dc_out, debug)
|
||||
dv = [0, 1, 0, 1, 0]
|
||||
de = [0, 0, 0]
|
||||
dc_inc = [0, 2, 4]
|
||||
dc_out = [1, 3, 3]
|
||||
|
||||
gg = GraphGenerator(dv, de, dc_inc, dc_out, debug)
|
||||
|
||||
graph = gg.getRandomGraph()
|
||||
graph = gg.getRandomGraph()
|
||||
|
||||
print(graph.vertices)
|
||||
pattern = gg.getRandomPattern(3, 15, debug=debug)
|
||||
print(pattern.vertices)
|
||||
print(graph.vertices)
|
||||
pattern = gg.getRandomPattern(3, 15, debug=debug)
|
||||
print(pattern.vertices)
|
||||
|
||||
# override random pattern by copy pasting output from terminal to create
|
||||
# pattern, paste it in the createConstantPattern function in the generator.py
|
||||
# pattern = gg.createConstantPattern()
|
||||
# override random pattern by copy pasting output from terminal to create
|
||||
# pattern, paste it in the createConstantPattern function in the generator.py
|
||||
# pattern = gg.createConstantPattern()
|
||||
|
||||
# generate here to know pattern and graph before searching it
|
||||
graphToDot.printGraph('randomPattern.dot', pattern)
|
||||
graphToDot.printGraph('randomGraph.dot', graph)
|
||||
# generate here to know pattern and graph before searching it
|
||||
graphToDot.printGraph('randomPattern.dot', pattern)
|
||||
graphToDot.printGraph('randomGraph.dot', graph)
|
||||
|
||||
|
||||
#PM = PatternMatching('naive')
|
||||
#PM = PatternMatching('SP')
|
||||
# PM = PatternMatching('Ullmann')
|
||||
PM = PatternMatching('VF2')
|
||||
matches = [m for m in PM.matchVF2(pattern, graph)]
|
||||
print("found", len(matches), "matches:", matches)
|
||||
|
||||
#PM = PatternMatching('naive')
|
||||
#PM = PatternMatching('SP')
|
||||
# PM = PatternMatching('Ullmann')
|
||||
PM = PatternMatching('VF2')
|
||||
matches = [m for m in PM.matchVF2(pattern, graph)]
|
||||
print("found", len(matches), "matches:", matches)
|
||||
|
||||
# regenerate graph, to show matched pattern
|
||||
for i, (v,e) in enumerate(matches):
|
||||
graphToDot.printGraph(f'randomGraph-{i}.dot', graph, v, e)
|
||||
# regenerate graph, to show matched pattern
|
||||
for i, (v,e) in enumerate(matches):
|
||||
graphToDot.printGraph(f'randomGraph-{i}.dot', graph, v, e)
|
||||
|
||||
if debug:
|
||||
print(len(v))
|
||||
print('___')
|
||||
print(v)
|
||||
for key, value in v.items():
|
||||
print(value.type)
|
||||
print(len(e))
|
||||
print(e)
|
||||
print('___')
|
||||
for key, value in e.items():
|
||||
print(value.type)
|
||||
if debug:
|
||||
print(len(v))
|
||||
print('___')
|
||||
print(v)
|
||||
for key, value in v.items():
|
||||
print(value.type)
|
||||
print(len(e))
|
||||
print(e)
|
||||
print('___')
|
||||
for key, value in e.items():
|
||||
print(value.type)
|
||||
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