forked from s_ranjbar/city_retrofit
Partial implementation energy ADE, till thermal zones
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1498731275
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7620f89629
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@ -3,6 +3,7 @@ Layers module
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SPDX - License - Identifier: LGPL - 3.0 - or -later
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Copyright © 2020 Project Author Guille Gutierrez guillermo.gutierrezmorote@concordia.ca
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"""
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import uuid
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from city_model_structure.attributes.material import Material
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@ -13,6 +14,13 @@ class Layer:
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def __init__(self):
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self._material = None
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self._thickness = None
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self._id = None
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@property
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def id(self):
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if self._id is None:
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self._id = uuid.uuid4()
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return self._id
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@property
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def material(self) -> Material:
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@ -13,8 +13,10 @@ class EnergyAde:
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def __init__(self, city, path):
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self._city = city
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self._path = path
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self._surface_members = None
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self._export()
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def _export(self):
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energy_ade = {
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'core:CityModel': {
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@ -62,7 +64,7 @@ class EnergyAde:
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}
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}
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building_dic = EnergyAde._measures(building, building_dic)
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building_dic = EnergyAde._building_geometry(building, building_dic, self._city)
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building_dic = self._building_geometry(building, building_dic, self._city)
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building_dic['bldg:Building']['energy:volume'] = {
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'energy:VolumeType': {
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'energy:type':'grossVolume',
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@ -79,10 +81,11 @@ class EnergyAde:
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'gml:Pos': f'{" ".join(map(str,building.centroid))}'
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}
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}
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building_dic['bldg:Building']['energy:thermalZone'] = EnergyAde._thermal_zones(building,self._city)
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building_dic['bldg:Building']['energy:thermalZone'] = self._thermal_zones(building,self._city)
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buildings.append(building_dic)
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energy_ade['core:CityModel']['core:cityObjectMember'] = buildings
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print(energy_ade)
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file_name = self._city.name + '_ade.gml'
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file_path = Path(self._path / file_name).resolve()
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with open(file_path, 'w' ) as file:
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@ -157,8 +160,8 @@ class EnergyAde:
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}
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return demand
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@staticmethod
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def _building_geometry(building, building_dic, city):
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def _building_geometry(self, building, building_dic, city):
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building_dic['bldg:Building']['bldg:function'] = building.function
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building_dic['bldg:Building']['bldg:usage'] = ', '.join([u.usage for u in building.usage_zones])
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@ -170,19 +173,19 @@ class EnergyAde:
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}
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building_dic['bldg:Building']['bldg:storeysAboveGround'] = building.storeys_above_ground
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if building.lod == 1:
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building_dic = EnergyAde._lod1(building, building_dic, city)
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building_dic = self._lod1(building, building_dic, city)
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elif building.lod == 2:
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building_dic = EnergyAde._lod2(building, building_dic, city)
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building_dic = self._lod2(building, building_dic, city)
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else:
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raise NotImplementedError('Only lod 1 and 2 can be exported')
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return building_dic
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@staticmethod
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def _lod1(building, building_dic, city):
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def _lod1(self, building, building_dic, city):
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raise NotImplementedError('Only lod 1 and 2 can be exported')
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@staticmethod
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def _lod2(building, building_dic, city):
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surface_members = []
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def _lod2(self, building, building_dic, city):
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self._surface_members = []
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boundaries = [{
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'gml:Envelope': {
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'@srsName': city.srs_name,
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@ -192,7 +195,7 @@ class EnergyAde:
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}}]
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for surface in building.surfaces:
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surface_member = { '@xlink:href': f'#PolyId{surface.name}'}
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surface_members.append(surface_member)
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self._surface_members.append(surface_member)
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if surface.type == 'Wall':
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surface_type = 'bldg:WallSurface'
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elif surface.type == 'Ground':
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@ -243,7 +246,7 @@ class EnergyAde:
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'gml:CompositeSurface': {
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'@srsName': city.srs_name,
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'@gml:id': f'GML_{uuid.uuid4()}',
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'gml:surfaceMember': surface_members
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'gml:surfaceMember': self._surface_members
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}
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}
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}
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@ -252,8 +255,7 @@ class EnergyAde:
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building_dic['bldg:Building']['gml:boundedBy'] = boundaries
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return building_dic
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@staticmethod
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def _thermal_zones(building, city):
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def _thermal_zones(self, building, city):
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thermal_zones = []
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for index, thermal_zone in enumerate(building.thermal_zones):
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usage_zones = []
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@ -286,10 +288,67 @@ class EnergyAde:
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},
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'energy:isCooled': f'{thermal_zone.is_cooled}',
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'energy:isHeated': f'{thermal_zone.is_heated}',
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'energy:volumeGeometry': {
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'gml:Solid': {
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'@gml:id': f'GML_{uuid.uuid4()}',
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'gml:exterior': {
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'gml:CompositeSurface': {
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'@srsName': f'{city.srs_name}',
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'@gml:id': f'GML_{uuid.uuid4()}',
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'gml:surfaceMember': self._surface_members
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}
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}
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}
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},
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'energy:boundedBy': self._thermal_boundaries(city, thermal_zone)
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}
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}
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thermal_zone_dic['energy:ThermalZone']['energy:contains'] = usage_zones
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thermal_zones.append(thermal_zone_dic)
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print(thermal_zones)
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return thermal_zones
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return thermal_zones
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def _thermal_boundaries(self, city, thermal_zone):
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thermal_boundaries = []
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for thermal_boundary in thermal_zone.bounded:
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thermal_boundary_dic = {
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'@gml:id': f'GML_{uuid.uuid4()}',
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'gml:name': f'{thermal_boundary.construction_name}',
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'energy:thermalBoundaryType': thermal_boundary.type,
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'energy:azumuth': {
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'@uom': 'rad',
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'#text': f'{thermal_boundary.azimuth}'
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},
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'energy:inclination': {
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'@uom': 'rad',
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'#text': f'{thermal_boundary.inclination}'
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},
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'energy:area': {
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'@uom': 'm2',
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'#text': f'{thermal_boundary.area}'
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},
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'energy:surfaceGeometry': {
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'gml:MultiSurface': {
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'@srsName': city.srs_name,
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'@gml:id': f'GML_{uuid.uuid4()}',
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'gml:surfaceMember': {
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'gml:Polygon': {
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'@srsName': city.srs_name,
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'@gml:id': f'GML_{uuid.uuid4()}',
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'gml:exterior': {
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'gml:LinearRing': {
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'@gml:id': f'GML_{uuid.uuid4()}',
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'gml:posList': {
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'@srsDimension': '3',
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'@count': len(thermal_boundary.surface.points) + 1,
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'#text': f'{" ".join(map(str, thermal_boundary.surface.points_list))} '
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f'{" ".join(map(str, thermal_boundary.surface.points[0]))}'
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}
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}
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}
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}
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}
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}
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}
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}
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thermal_boundaries.append(thermal_boundary_dic)
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return thermal_boundaries
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