4.6 Article

Choice Modelling of a Car Traveler towards Park-and-Ride Services in Putrajaya to Create Green Development

期刊

SUSTAINABILITY
卷 13, 期 14, 页码 -

出版社

MDPI
DOI: 10.3390/su13147869

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park-and-ride service; mode choice model (MCM); travel behavior; single occupant vehicle (SOV); binary logit regression (BLR); Putrajaya; green development

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Putrajaya is experiencing a rise in private car ownership and usage, leading to imbalanced housing and employment attention as well as traffic congestion between the city center and suburban areas. By understanding user travel behaviors and developing mode choice models, significant factors influencing the adoption of sustainable transport options can be identified to promote green development and alleviate congestion issues.
Putrajaya is facing an increasing number of private car ownership and its usage. Integrated transportation infrastructure connecting the city with suburban areas and comparatively low-cost housing schemes are at the fringes of Putrajaya City. It creates a discrepancy between housing and employment attentiveness. Due to the attractiveness of jobs in the city centre, commuters' travelling pattern is morning/evening peak hours, and it leads to traffic congestion on a few major artilleries leading to and from the city. In contrast, Putrajaya was designed to achieve a 70:30 modal split ratio. This policy was introduced to target 70% of the commuters towards a sustainable mode of transport as their mode choice. Currently, congestion in Putrajaya is due to the use of single-occupant vehicles (SOV). The SOV users cannot be convinced to use the park-and-ride services (P&RS) without understanding their travel behaviors. Therefore, the mode choice models (MCM) were developed through binary logit regression (BLR) approaches to determine the factors that influence the SOV travelers' decisions to adopt the P&RS. As a result, several factors, which included the socio-demographic factors, travel time, travel expenses, environmental protection, avoiding stress, parking problems, vehicles sharing, and traveling directly, were found to be significant and will promote green development. Furthermore, the quality of the developed mode choice model was validated through the training and testing approach of logistic regression. Ultimately, this study can help stakeholders to encourage SOV users towards P&RS by overcoming these factors.

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