Created two python packages. One for algorithms implementations of the master thesis and the other for methods, classes and structures meant to help with the use of those algorithms.
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dijkstry:<br>
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https://pl.wikipedia.org/wiki/Algorytm_Dijkstry
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kopce:<br>
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https://ufkapano.github.io/algorytmy/lekcja09/heap.html
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https://docs.python.org/3/library/heapq.html
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algorithms/__init__.py
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algorithms/__init__.py
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algorithms/a_star.py
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algorithms/a_star.py
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algorithms/bidirectional.py
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algorithms/bidirectional.py
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algorithms/dijkstra.py
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algorithms/dijkstra.py
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def dijkstra_algorithm(graph, s ):
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print()
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if __name__ == "__main__":
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print()
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dataset/deezer_clean_data/HR_edgeswith_weight.csv
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dataset/deezer_clean_data/HR_edgeswith_weight.csv
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main.py
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main.py
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def read_graph_from_file(path, separator=",", read_first_line=False, is_directed=False, has_weight=False):
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edges = dict()
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with open(path, 'r') as file:
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read_line = read_first_line
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line = file.readline()
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while line != '':
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if read_line:
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if line[0] != "#":
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split = line.split(separator)
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node1 = int(split[0])
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node2 = int(split[1])
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if not is_directed:
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if not has_weight:
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edges[(node1, node2)] = 1
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else:
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read_line = True
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line = file.readline()
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return edges
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import tools.file_service as op_file
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if __name__ == '__main__':
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e = read_graph_from_file("dataset/deezer_clean_data/HR_edges.csv")
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print(e)
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e = op_file.read_graph_from_file("dataset/deezer_clean_data/HR_edges.csv")
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op_file.add_weight_to_file(e, "dataset/deezer_clean_data/HR_edges", ".csv")
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tools/__init__.py
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tools/__init__.py
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tools/file_service.py
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tools/file_service.py
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import random as rand
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def read_graph_from_file(path, separator=",", read_first_line=False, is_directed=False, has_weight=False):
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edges = dict()
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with open(path, 'r') as file:
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read_line = read_first_line
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line = file.readline()
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while line != '':
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if read_line:
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if line[0] != "#":
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split = line.split(separator)
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node1 = int(split[0])
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node2 = int(split[1])
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if not is_directed:
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if not has_weight:
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edges[(node1, node2)] = 1
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else:
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edges[(node1, node2)] = split[2]
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else:
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read_line = True
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line = file.readline()
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return edges
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def add_weight_to_file(graph, path, extension, separator=",", weight_scale=(1, 100)):
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with open(path + "with_weight" + extension, 'w') as file:
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for key in graph.keys():
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file.write(str(key[0]) + separator + str(key[1]) + separator + str(rand.randint(weight_scale[0],
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weight_scale[1])) + "\n")
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