Add Graph Based Lines
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@ -19,13 +19,27 @@
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}
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});
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</script>
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<!-- Register a simple component to toggle the chat panel -->
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<script>
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AFRAME.registerComponent('toggle-chat', {
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init: function () {
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this.el.addEventListener('click', function () {
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var panel = document.querySelector('#chatPanel');
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var isVisible = panel.getAttribute('visible');
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panel.setAttribute('visible', !isVisible);
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});
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}
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});
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</script>
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</head>
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<body>
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<a-scene shadow="type: pcfsoft"
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environment="preset: forest; dressing: trees; groundColor: #777; skyType: gradient; dressingAmount: 20;">
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<!-- Camera & Controls (give it an id for look-at) -->
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<a-entity id="mainCamera" camera look-controls wasd-controls position="0 2 0"></a-entity>
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<a-entity id="mainCamera" camera look-controls wasd-controls position="0 2 5">
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<a-cursor color="#FF0000"></a-cursor>
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</a-entity>
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<!-- Optional: Transparent ground plane (comment out if you want only environment ground) -->
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<a-plane position="0 -0.1 0" rotation="-90 0 0"
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@ -190,6 +204,33 @@
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</a-entity>
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{% endfor %}
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<!-- VR AI Agent -->
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<a-entity id="aiAgent" position="0 2 -3" toggle-chat class="clickable">
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<!-- Agent appears as a rotating sphere -->
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<a-sphere radius="0.5" color="#FF69B4"
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animation="property: rotation; to: 0 360 0; loop: true; dur: 5000">
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</a-sphere>
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<!-- Prompt text above the agent -->
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<a-text value="Ask me something!" position="0 1 0" align="center" width="2" color="#FFF"></a-text>
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</a-entity>
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<!-- Chat Panel (initially hidden) -->
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<a-entity id="chatPanel" visible="false" position="1 2 -3">
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<!-- Background panel for the chat -->
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<a-plane width="3" height="2" color="#000" opacity="0.7" shadow="cast: false; receive: false"></a-plane>
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<!-- Chat text; later this can be dynamic -->
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<a-text value="Network Summary:
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Towers: {{ city_data.network_summary.num_towers }}
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Fiber: {{ city_data.network_summary.total_fiber_length|floatformat:2 }} m
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Wi-Fi: {{ city_data.network_summary.num_wifi }}"
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align="center" width="4" color="#FFF"
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position="0 0 0.01">
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</a-text>
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</a-entity>
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</a-scene>
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</body>
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</html>
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1
urls.py
1
urls.py
@ -7,4 +7,5 @@ urlpatterns = [
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# Pattern to accept string words
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path('city/digital/twin/<str:city_id>/', views.city_digital_twin, name='city_digital_twin_str'),
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]
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88
views.py
88
views.py
@ -298,22 +298,8 @@ def generate_com_con_city_data(lat, long):
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})
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# Fiber paths connect neighboring towers
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fiber_paths = []
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for i in range(len(towers) - 1):
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fiber_paths.append({
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'id': i + 1,
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'start_x': towers[i]['position_x'],
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'start_z': towers[i]['position_z'],
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'end_x': towers[i + 1]['position_x'],
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'end_z': towers[i + 1]['position_z'],
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'mid_x': (towers[i]['position_x'] + towers[i + 1]['position_x']) / 2,
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'mid_y': 0.1,
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'mid_z': (towers[i]['position_z'] + towers[i + 1]['position_z']) / 2,
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'length': ((towers[i + 1]['position_x'] - towers[i]['position_x'])**2 + (towers[i + 1]['position_z'] - towers[i]['position_z'])**2)**0.5,
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'angle': random.uniform(0, 360),
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'status': 'Connected' if random.random() > 0.1 else 'Broken',
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'color': '#4682b4'
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})
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# Compute optimized fiber paths using MST
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fiber_paths = compute_mst_fiber_paths(towers)
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# Wi-Fi Hotspots scattered nearby but within grid bounds
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wifi_hotspots = []
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@ -330,8 +316,76 @@ def generate_com_con_city_data(lat, long):
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'color': '#32cd32'
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})
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network_summary = compute_network_summary(towers, fiber_paths, wifi_hotspots)
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return {
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'towers': towers,
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'fiber_paths': fiber_paths,
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'wifi_hotspots': wifi_hotspots
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'wifi_hotspots': wifi_hotspots,
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'network_summary': network_summary,
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}
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import networkx as nx
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import math
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def compute_distance(t1, t2):
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"""
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Compute Euclidean distance between two towers in the horizontal plane.
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"""
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dx = t1['position_x'] - t2['position_x']
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dz = t1['position_z'] - t2['position_z']
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return math.sqrt(dx**2 + dz**2)
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def compute_mst_fiber_paths(towers):
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"""
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Given a list of tower dictionaries, compute a Minimum Spanning Tree (MST)
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and return a list of fiber paths connecting the towers.
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"""
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G = nx.Graph()
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# Add towers as nodes
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for tower in towers:
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G.add_node(tower['id'], **tower)
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# Add edges: compute pairwise distances
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n = len(towers)
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for i in range(n):
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for j in range(i+1, n):
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d = compute_distance(towers[i], towers[j])
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G.add_edge(towers[i]['id'], towers[j]['id'], weight=d)
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# Compute MST
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mst = nx.minimum_spanning_tree(G)
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fiber_paths = []
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for edge in mst.edges(data=True):
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id1, id2, data = edge
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# Find towers corresponding to these IDs
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tower1 = next(t for t in towers if t['id'] == id1)
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tower2 = next(t for t in towers if t['id'] == id2)
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fiber_paths.append({
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'id': len(fiber_paths) + 1,
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'start_x': tower1['position_x'],
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'start_z': tower1['position_z'],
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'end_x': tower2['position_x'],
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'end_z': tower2['position_z'],
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'mid_x': (tower1['position_x'] + tower2['position_x']) / 2,
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'mid_y': 0.1, # Slightly above the ground
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'mid_z': (tower1['position_z'] + tower2['position_z']) / 2,
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'length': data['weight'],
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# Optionally, compute the angle in degrees if needed:
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'angle': math.degrees(math.atan2(tower2['position_x'] - tower1['position_x'],
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tower2['position_z'] - tower1['position_z'])),
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'status': 'Connected',
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'color': '#4682b4'
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})
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return fiber_paths
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def compute_network_summary(towers, fiber_paths, wifi_hotspots):
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total_fiber = sum(fiber['length'] for fiber in fiber_paths)
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return {
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'num_towers': len(towers),
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'total_fiber_length': total_fiber,
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'num_wifi': len(wifi_hotspots),
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}
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