import heapq
def dijkstra(graph, start):
"""Calcular las rutas más cortas desde un nodo inicial a todos los demás nodos"""
queue = [(0, start)]
distances = {node: float('inf') for node in graph}
distances[start] = 0
while queue:
current_distance, current_node = heapq.heappop(queue)
if current_distance > distances[current_node]:
continue
for neighbor, weight in graph[current_node].items():
distance = current_distance + weight
if distance < distances[neighbor]:
distances[neighbor] = distance
heapq.heappush(queue, (distance, neighbor))
return distances
function dijkstra(graph, start) {
// Calcular las rutas más cortas desde un nodo inicial a todos los demás nodos
const distances = {};
const visited = new Set();
const pq = [[0, start]];
// Initialize distances
for (const node in graph) {
distances[node] = Infinity;
}
distances[start] = 0;
while (pq.length > 0) {
pq.sort((a, b) => a[0] - b[0]);
const [currentDistance, currentNode] = pq.shift();
if (visited.has(currentNode)) continue;
visited.add(currentNode);
for (const neighbor in graph[currentNode]) {
const weight = graph[currentNode][neighbor];
const distance = currentDistance + weight;
if (distance < distances[neighbor]) {
distances[neighbor] = distance;
pq.push([distance, neighbor]);
}
}
}
return distances;
}
#include <vector>
#include <queue>
#include <unordered_map>
#include <limits>
std::unordered_map<int, int> dijkstra(
const std::unordered_map<int, std::unordered_map<int, int>>& graph,
int start
) {
// Calcular las rutas más cortas desde un nodo inicial a todos los demás nodos
std::unordered_map<int, int> distances;
std::priority_queue<
std::pair<int, int>,
std::vector<std::pair<int, int>>,
std::greater<std::pair<int, int>>
> pq;
// Initialize distances
for (const auto& [node, _] : graph) {
distances[node] = std::numeric_limits<int>::max();
}
distances[start] = 0;
pq.push({0, start});
while (!pq.empty()) {
auto [currentDistance, currentNode] = pq.top();
pq.pop();
if (currentDistance > distances[currentNode]) continue;
for (const auto& [neighbor, weight] : graph.at(currentNode)) {
int distance = currentDistance + weight;
if (distance < distances[neighbor]) {
distances[neighbor] = distance;
pq.push({distance, neighbor});
}
}
}
return distances;
}