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Título : Exploring the influence of road network structure on the spatial behaviour of cyclists using crowdsourced data
Autor: Orellana Vintimilla, Daniel Augusto
Guerrero Balarezo, Maria Laura
Correspondencia: Orellana Vintimilla, Daniel Augusto, daniel.orellana@ucuenca.edu.ec
Palabras clave : Big Data
Urban morphology
Space Syntax
OpenStreetMap
cycling movement
Big Data
cycling movement
Urban morphology
Space Syntax
OpenStreetMap
Área de conocimiento FRASCATI amplio: 2. Ingeniería y Tecnología
Área de conocimiento FRASCATI detallado: 2.2.3 Sistemas de Automatización y Control
Área de conocimiento FRASCATI específico: 2.2 Ingenierias Eléctrica, Electrónica e Información
Área de conocimiento UNESCO amplio: 07 - Ingeniería, Industria y Construcción
ÁArea de conocimiento UNESCO detallado: 0731 - Arquitectura y Urbanismo
Área de conocimiento UNESCO específico: 073 - Arquitectura y Construcción
Fecha de publicación : 2019
Fecha de fin de embargo: 31-dic-2050
Volumen: Volumen 46, Número 7
Fuente: Environment and Planning B: Urban Analytics and City Science
metadata.dc.identifier.doi: 10.1177/2399808319863810
Tipo: ARTÍCULO
Abstract: 
© The Author(s) 2019. This study explores the effect of the spatial configuration of street networks on movement patterns of users of a cycling monitoring app, employing crowdsourced information from OpenStreetMap and Strava Metro. Choice and Integration measures from Space Syntax were used to analyse the street network’s configuration for different radiuses. Multiple linear regression models were fitted to explore the influence of these measures on cycling activity at the street segment level after controlling other variables such as land use, household density, socio-economic status, and cycling infrastructure. The variation of such influence for different time periods (weekday vs. weekend) and trip purposes (commuting vs. sports) was also analysed. The results show a positive significant association between normalised angular choice (NACH) and cycling activity. Although the final regression model explained 5.5% of the log-likelihood of the intercept model, it represents an important improvement compared with the base (control-only) model (3.8%). The incidence rate ratio of NACH’s Z scores was 1.63, implying that for an increase of one standard deviation of NACH, there is an expected increment of about 63% in the total cyclist counts while keeping all other variables the same. These results are of interest for researchers, practitioners, and urban planners, since the inclusion of Space Syntax measures derived from available public data can improve movement behaviour modelling and cycling infrastructure planning and design.
Resumen : 
This study explores the effect of the spatial configuration of street networks on movement patterns of users of a cycling monitoring app, employing crowdsourced information from OpenStreetMap and Strava Metro. Choice and Integration measures from Space Syntax were used to analyse the street network’s configuration for different radiuses. Multiple linear regression models were fitted to explore the influence of these measures on cycling activity at the street segment level after controlling other variables such as land use, household density, socio-economic status, and cycling infrastructure. The variation of such influence for different time periods (weekday vs. weekend) and trip purposes (commuting vs. sports) was also analysed. The results show a positive significant association between normalised angular choice (NACH) and cycling activity. Although the final regression model explained 5.5% of the log-likelihood of the intercept model, it represents an important improvement compared with the base (control-only) model (3.8%). The incidence rate ratio of NACH’s Z scores was 1.63, implying that for an increase of one standard deviation of NACH, there is an expected increment of about 63% in the total cyclist counts while keeping all other variables the same. These results are of interest for researchers, practitioners, and urban planners, since the inclusion of Space Syntax measures derived from available public data can improve movement behaviour modelling and cycling infrastructure planning and design.
URI : http://dspace.ucuenca.edu.ec/handle/123456789/34258
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85071453178&origin=inward
URI Fuente: http://journals.sagepub.com/home/epb
ISSN : 2399-8083
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