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tests for the original code
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@ -10,23 +10,17 @@ Useful Links: https://www.geeksforgeeks.org/applications-advantages-and-disadvan
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https://en.wikipedia.org/wiki/Graph_(discrete_mathematics)
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"""
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from collections import deque
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from math import floor
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from random import random
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from time import time
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class DirectedGraph:
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def __init__(self) -> None:
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"""
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Initialize a directed graph.
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>>> g = DirectedGraph()
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>>> g.all_nodes()
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[]
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"""
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def __init__(self):
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self.graph = {}
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def add_pair(self, u: int, v: int, w: int = 1) -> None:
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def add_pair(self, u, v, w=1):
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"""
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Add a directed edge from u to v with weight w.
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@ -36,14 +30,14 @@ class DirectedGraph:
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{1: [[3, 2]], 2: []}
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"""
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if self.graph.get(u):
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if not any(edge[1] == v and edge[0] == w for edge in self.graph[u]):
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if self.graph[u].count([w, v]) == 0:
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self.graph[u].append([w, v])
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else:
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self.graph[u] = [[w, v]]
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if v not in self.graph:
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if not self.graph.get(v):
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self.graph[v] = []
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def all_nodes(self) -> list:
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def all_nodes(self):
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"""
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Return a list of all nodes in the graph.
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@ -54,7 +48,7 @@ class DirectedGraph:
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"""
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return list(self.graph)
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def remove_pair(self, u: int, v: int) -> None:
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def remove_pair(self, u, v):
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"""
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Remove the directed edge from u to v.
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@ -65,9 +59,11 @@ class DirectedGraph:
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{1: [], 2: []}
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"""
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if self.graph.get(u):
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self.graph[u] = [edge for edge in self.graph[u] if edge[1] != v]
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for _ in self.graph[u]:
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if _[1] == v:
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self.graph[u].remove(_)
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def dfs(self, s: int = -2, d: int = -1) -> list:
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def dfs(self, s=-2, d=-1):
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"""
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Perform depth-first search from node s to d.
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@ -76,6 +72,8 @@ class DirectedGraph:
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>>> g.add_pair(2, 3)
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>>> g.dfs(1, 3)
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[1, 2, 3]
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>>> g.dfs(1, 2)
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[1, 2]
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"""
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if s == d:
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return []
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@ -85,23 +83,48 @@ class DirectedGraph:
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s = next(iter(self.graph))
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stack.append(s)
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visited.append(s)
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while stack:
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current = stack[-1]
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if current == d:
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return visited
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if current in self.graph:
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for edge in self.graph[current]:
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if edge[1] not in visited:
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stack.append(edge[1])
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visited.append(edge[1])
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break
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else:
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stack.pop()
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else:
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stack.pop()
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return visited
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while True:
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if len(self.graph[s]) != 0:
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ss = s
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for node in self.graph[s]:
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if visited.count(node[1]) < 1:
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if node[1] == d:
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visited.append(d)
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return visited
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else:
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stack.append(node[1])
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visited.append(node[1])
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ss = node[1]
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break
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def bfs(self, s: int = -2) -> list:
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if s == ss:
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stack.pop()
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if len(stack) != 0:
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s = stack[len(stack) - 1]
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else:
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s = ss
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if len(stack) == 0:
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return visited
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def fill_graph_randomly(self, c=-1):
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"""
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Fill the graph with random edges.
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>>> g = DirectedGraph()
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>>> g.fill_graph_randomly(5)
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>>> len(g.all_nodes()) > 0
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True
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"""
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if c == -1:
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c = floor(random() * 10000) + 10
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for i in range(c):
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for _ in range(floor(random() * 102) + 1):
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n = floor(random() * c) + 1
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if n != i:
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self.add_pair(i, n, 1)
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def bfs(self, s=-2):
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"""
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Perform breadth-first search starting from node s.
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@ -118,15 +141,134 @@ class DirectedGraph:
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d.append(s)
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visited.append(s)
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while d:
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current = d.popleft()
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if current in self.graph:
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for edge in self.graph[current]:
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if edge[1] not in visited:
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d.append(edge[1])
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visited.append(edge[1])
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s = d.popleft()
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if len(self.graph[s]) != 0:
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for node in self.graph[s]:
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if visited.count(node[1]) < 1:
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d.append(node[1])
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visited.append(node[1])
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return visited
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def has_cycle(self) -> bool:
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def in_degree(self, u):
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"""
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Calculate in-degree of node u.
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>>> g = DirectedGraph()
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>>> g.add_pair(1, 2)
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>>> g.in_degree(2)
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1
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"""
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count = 0
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for x in self.graph:
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for y in self.graph[x]:
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if y[1] == u:
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count += 1
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return count
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def out_degree(self, u):
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"""
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Calculate out-degree of node u.
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>>> g = DirectedGraph()
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>>> g.add_pair(1, 2)
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>>> g.out_degree(1)
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1
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"""
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return len(self.graph[u])
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def topological_sort(self, s=-2):
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"""
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Perform topological sort of the graph.
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>>> g = DirectedGraph()
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>>> g.add_pair(1, 2)
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>>> g.add_pair(2, 3)
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>>> g.topological_sort()
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[1, 2, 3]
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"""
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stack = []
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visited = []
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if s == -2:
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s = next(iter(self.graph))
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stack.append(s)
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visited.append(s)
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sorted_nodes = []
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while True:
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if len(self.graph[s]) != 0:
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ss = s
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for node in self.graph[s]:
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if visited.count(node[1]) < 1:
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stack.append(node[1])
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visited.append(node[1])
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ss = node[1]
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break
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if s == ss:
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sorted_nodes.append(stack.pop())
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if len(stack) != 0:
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s = stack[len(stack) - 1]
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else:
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s = ss
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if len(stack) == 0:
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return sorted_nodes
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def cycle_nodes(self):
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"""
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Get nodes that are part of a cycle.
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>>> g = DirectedGraph()
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>>> g.add_pair(1, 2)
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>>> g.add_pair(2, 1)
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>>> g.cycle_nodes()
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[1, 2]
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"""
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stack = []
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visited = []
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s = next(iter(self.graph))
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stack.append(s)
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visited.append(s)
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parent = -2
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indirect_parents = []
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ss = s
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anticipating_nodes = set()
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while True:
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if len(self.graph[s]) != 0:
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ss = s
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for node in self.graph[s]:
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if (
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visited.count(node[1]) > 0
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and node[1] != parent
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and indirect_parents.count(node[1]) > 0
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):
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len_stack = len(stack) - 1
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while len_stack >= 0:
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if stack[len_stack] == node[1]:
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anticipating_nodes.add(node[1])
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break
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else:
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anticipating_nodes.add(stack[len_stack])
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len_stack -= 1
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if visited.count(node[1]) < 1:
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stack.append(node[1])
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visited.append(node[1])
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ss = node[1]
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break
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if s == ss:
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stack.pop()
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if len(stack) != 0:
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s = stack[len(stack) - 1]
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else:
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parent = s
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s = ss
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if len(stack) == 0:
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return list(anticipating_nodes)
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def has_cycle(self):
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"""
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Check if the graph has a cycle.
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>>> g.has_cycle()
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True
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"""
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visited = set()
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rec_stack = set()
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stack = []
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visited = []
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s = next(iter(self.graph))
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stack.append(s)
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visited.append(s)
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parent = -2
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indirect_parents = []
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ss = s
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def cycle_util(v):
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visited.add(v)
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rec_stack.add(v)
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for edge in self.graph.get(v, []):
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if edge[1] not in visited:
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if cycle_util(edge[1]):
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while True:
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if len(self.graph[s]) != 0:
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ss = s
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for node in self.graph[s]:
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if (
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visited.count(node[1]) > 0
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and node[1] != parent
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and indirect_parents.count(node[1]) > 0
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):
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return True
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elif edge[1] in rec_stack:
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return True
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rec_stack.remove(v)
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return False
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if visited.count(node[1]) < 1:
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stack.append(node[1])
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visited.append(node[1])
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ss = node[1]
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break
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for node in self.graph:
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if node not in visited:
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if cycle_util(node):
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return True
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return False
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if s == ss:
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stack.pop()
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if len(stack) != 0:
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s = stack[len(stack) - 1]
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else:
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s = ss
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# Additional methods would go here with doctests...
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if len(stack) == 0:
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return False
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class Graph:
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def __init__(self) -> None:
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def dfs_time(self, s=-2, e=-1):
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"""
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Initialize an undirected graph.
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Measure the time taken for DFS.
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>>> g = Graph()
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>>> g.all_nodes()
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[]
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"""
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self.graph = {}
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def add_pair(self, u: int, v: int, w: int = 1) -> None:
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"""
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Add an undirected edge between u and v with weight w.
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>>> g = Graph()
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>>> g.add_pair(1, 2, 3)
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>>> g.graph
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{1: [[3, 2]], 2: [[3, 1]]}
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"""
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if self.graph.get(u):
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if not any(edge[1] == v and edge[0] == w for edge in self.graph[u]):
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self.graph[u].append([w, v])
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else:
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self.graph[u] = [[w, v]]
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if self.graph.get(v):
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if not any(edge[1] == u and edge[0] == w for edge in self.graph[v]):
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self.graph[v].append([w, u])
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else:
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self.graph[v] = [[w, u]]
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def all_nodes(self) -> list:
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"""
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Return a list of all nodes in the graph.
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>>> g = Graph()
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>>> g = DirectedGraph()
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>>> g.add_pair(1, 2)
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>>> g.all_nodes()
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[1, 2]
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>>> g.dfs_time(1, 2) >= 0
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True
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"""
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return list(self.graph)
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begin = time()
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self.dfs(s, e)
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end = time()
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return end - begin
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# Additional methods would go here with doctests...
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def bfs_time(self, s=-2):
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"""
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Measure the time taken for BFS.
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if __name__ == "__main__":
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import doctest
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doctest.testmod()
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>>> g = DirectedGraph()
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>>> g.add_pair(1, 2)
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>>> g.bfs_time(1) >= 0
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True
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"""
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begin = time()
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self.bfs(s)
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end = time()
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return end - begin
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