A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French cities

<p>Geographical features may have a considerable effect on local climate. The local climate zone (LCZ) system proposed by <span class="cit" id="xref_text.1"><a href="#bib1.bibx23">Stewart and Oke</a> (<a href="#bib1.bibx23">2012&l...

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Main Authors: J. Bernard, E. Bocher, M. Gousseff, F. Leconte, E. Le Saux Wiederhold
Format: Article
Language:English
Published: Copernicus Publications 2024-03-01
Series:Geoscientific Model Development
Online Access:https://gmd.copernicus.org/articles/17/2077/2024/gmd-17-2077-2024.pdf
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author J. Bernard
J. Bernard
J. Bernard
E. Bocher
M. Gousseff
M. Gousseff
F. Leconte
E. Le Saux Wiederhold
author_facet J. Bernard
J. Bernard
J. Bernard
E. Bocher
M. Gousseff
M. Gousseff
F. Leconte
E. Le Saux Wiederhold
author_sort J. Bernard
collection DOAJ
description <p>Geographical features may have a considerable effect on local climate. The local climate zone (LCZ) system proposed by <span class="cit" id="xref_text.1"><a href="#bib1.bibx23">Stewart and Oke</a> (<a href="#bib1.bibx23">2012</a>)</span> is nowadays seen as a standard approach for classifying any zone according to a set of urban canopy parameters. While many methods already exist to map the LCZ, only few tools are openly and freely available. This paper presents the algorithm implemented in the GeoClimate software to identify the LCZ of any place in the world based on vector data. Six types of information are needed as input: the building footprint, road and rail networks, water, vegetation, and impervious surfaces. First, the territory is partitioned into reference spatial units (RSUs) using the road and rail network, as well as the boundaries of large vegetation and water patches. Then 14 urban canopy parameters are calculated for each RSU. Their values are used to classify each unit to a given LCZ type according to a set of rules. GeoClimate can automatically prepare the inputs and calculate the LCZ for two datasets, namely OpenStreetMap (OSM, available worldwide) and the BD TOPO<sup>®</sup> v2.2 (BDT, a French dataset produced by the national mapping agency). The LCZ are calculated for 22 French communes using these two datasets in order to evaluate the effect of the dataset on the results. About 55 % of all areas have obtained the same LCZ type, with large differences when differentiating this result by city (from 30 % to 82 %). The agreement is good for large patches of forest and water, as well as for compact mid-rise and open low-rise LCZ types. It is lower for open mid-rise and open high-rise, mainly due to the height underestimation of OSM buildings located in open areas. Through its simplicity of use, GeoClimate has great potential for new collaboration in the LCZ field. The software (and its source code) used to produce the LCZ data is freely available at <a href="https://doi.org/10.5281/zenodo.6372337">https://doi.org/10.5281/zenodo.6372337</a> <span class="cit" id="xref_paren.2">(<a href="#bib1.bibx5">Bocher et al.</a>, <a href="#bib1.bibx5">2022</a>)</span>; the scripts and data used for the purpose of this article can be freely accessed at <a href="https://doi.org/10.5281/zenodo.7687911">https://doi.org/10.5281/zenodo.7687911</a> <span class="cit" id="xref_paren.3">(<a href="#bib1.bibx4">Bernard et al.</a>, <a href="#bib1.bibx4">2023</a>)</span> and are based on the R package available at <a href="https://doi.org/10.5281/zenodo.7646866">https://doi.org/10.5281/zenodo.7646866</a> <span class="cit" id="xref_paren.4">(<a href="#bib1.bibx13">Gousseff</a>, <a href="#bib1.bibx13">2023</a>)</span>.</p>
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spelling doaj.art-a88f0ff6e9a149058e6f888c1861c1742024-03-13T07:43:14ZengCopernicus PublicationsGeoscientific Model Development1991-959X1991-96032024-03-01172077211610.5194/gmd-17-2077-2024A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French citiesJ. Bernard0J. Bernard1J. Bernard2E. Bocher3M. Gousseff4M. Gousseff5F. Leconte6E. Le Saux Wiederhold7Department of Earth Sciences, University of Gothenburg, 405 30 Gothenburg, SwedenUniversity of Savoie Mont-Blanc, LOCIE, UMR 5271, 73376 Le Bourget du Lac, FranceCNRS, Lab-STICC, UMR 6285, Vannes, FranceCNRS, Lab-STICC, UMR 6285, Vannes, FranceCNRS, Lab-STICC, UMR 6285, Vannes, FranceUniversité Bretagne Sud, Lab-STICC, UMR 6285, Vannes, FranceUniversité de Lorraine, INRAE, LERMaB, 88000, Epinal, FranceUniversité Bretagne Sud, Lab-STICC, UMR 6285, Vannes, France<p>Geographical features may have a considerable effect on local climate. The local climate zone (LCZ) system proposed by <span class="cit" id="xref_text.1"><a href="#bib1.bibx23">Stewart and Oke</a> (<a href="#bib1.bibx23">2012</a>)</span> is nowadays seen as a standard approach for classifying any zone according to a set of urban canopy parameters. While many methods already exist to map the LCZ, only few tools are openly and freely available. This paper presents the algorithm implemented in the GeoClimate software to identify the LCZ of any place in the world based on vector data. Six types of information are needed as input: the building footprint, road and rail networks, water, vegetation, and impervious surfaces. First, the territory is partitioned into reference spatial units (RSUs) using the road and rail network, as well as the boundaries of large vegetation and water patches. Then 14 urban canopy parameters are calculated for each RSU. Their values are used to classify each unit to a given LCZ type according to a set of rules. GeoClimate can automatically prepare the inputs and calculate the LCZ for two datasets, namely OpenStreetMap (OSM, available worldwide) and the BD TOPO<sup>®</sup> v2.2 (BDT, a French dataset produced by the national mapping agency). The LCZ are calculated for 22 French communes using these two datasets in order to evaluate the effect of the dataset on the results. About 55 % of all areas have obtained the same LCZ type, with large differences when differentiating this result by city (from 30 % to 82 %). The agreement is good for large patches of forest and water, as well as for compact mid-rise and open low-rise LCZ types. It is lower for open mid-rise and open high-rise, mainly due to the height underestimation of OSM buildings located in open areas. Through its simplicity of use, GeoClimate has great potential for new collaboration in the LCZ field. The software (and its source code) used to produce the LCZ data is freely available at <a href="https://doi.org/10.5281/zenodo.6372337">https://doi.org/10.5281/zenodo.6372337</a> <span class="cit" id="xref_paren.2">(<a href="#bib1.bibx5">Bocher et al.</a>, <a href="#bib1.bibx5">2022</a>)</span>; the scripts and data used for the purpose of this article can be freely accessed at <a href="https://doi.org/10.5281/zenodo.7687911">https://doi.org/10.5281/zenodo.7687911</a> <span class="cit" id="xref_paren.3">(<a href="#bib1.bibx4">Bernard et al.</a>, <a href="#bib1.bibx4">2023</a>)</span> and are based on the R package available at <a href="https://doi.org/10.5281/zenodo.7646866">https://doi.org/10.5281/zenodo.7646866</a> <span class="cit" id="xref_paren.4">(<a href="#bib1.bibx13">Gousseff</a>, <a href="#bib1.bibx13">2023</a>)</span>.</p>https://gmd.copernicus.org/articles/17/2077/2024/gmd-17-2077-2024.pdf
spellingShingle J. Bernard
J. Bernard
J. Bernard
E. Bocher
M. Gousseff
M. Gousseff
F. Leconte
E. Le Saux Wiederhold
A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French cities
Geoscientific Model Development
title A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French cities
title_full A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French cities
title_fullStr A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French cities
title_full_unstemmed A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French cities
title_short A generic algorithm to automatically classify urban fabric according to the local climate zone system: implementation in GeoClimate 0.0.1 and application to French cities
title_sort generic algorithm to automatically classify urban fabric according to the local climate zone system implementation in geoclimate 0 0 1 and application to french cities
url https://gmd.copernicus.org/articles/17/2077/2024/gmd-17-2077-2024.pdf
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