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Spatial allocation of heavy commercial vehicles parking areas through geo-fencing

https://hiroshima.repo.nii.ac.jp/records/2007565
https://hiroshima.repo.nii.ac.jp/records/2007565
92eb8d1e-ea26-48c7-8826-6e4bf9f04340
名前 / ファイル ライセンス アクション
JTG_117_103876.pdf JTG_117_103876.pdf (3.7 MB)
 Download is available from 2026/4/17.
Item type デフォルトアイテムタイプ_(フル)(1)
公開日 2024-12-12
タイトル
タイトル Spatial allocation of heavy commercial vehicles parking areas through geo-fencing
言語 en
作成者 Wu, Jishi

× Wu, Jishi

en Wu, Jishi

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Feng, Tao

× Feng, Tao

en Feng, Tao

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Jia, Peng

× Jia, Peng

en Jia, Peng

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Li, Gen

× Li, Gen

en Li, Gen

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アクセス権
アクセス権 embargoed access
アクセス権URI http://purl.org/coar/access_right/c_f1cf
権利情報
言語 en
権利情報 © 2024. This manuscript version is made available under the CC-BY-NC-ND 4.0 license https://creativecommons.org/licenses/by-nc-nd/4.0/
権利情報
言語 en
権利情報 This is not the published version. Please cite only the published version.
権利情報
言語 ja
権利情報 この論文は出版社版ではありません。引用の際には出版社版をご確認、ご利用ください。
主題
言語 en
主題Scheme Other
主題 Commercial vehicles parking management
主題
言語 en
主題Scheme Other
主題 Geo-fenced parking area
主題
言語 en
主題Scheme Other
主題 ST-DBSCAN clustering
主題
言語 en
主題Scheme Other
主題 Gaussian mixture model
内容記述
内容記述 Inadequate parking planning for heavy commercial vehicles (HCV) exacerbates urban road congestion. As an effective means of parking management, geofencing that identifies the virtual boundary for geographic areas is essential to ensure these vehicles do not impede traffic and urban spaces. However, geofenced areas must be rationally designed to prevent mismatches between parking areas and real parking needs. This paper presents a data-driven approach that integrates the Spatial-temporal Density-Based Spatial Clustering of Applications with Noise (ST-DBSCAN) methods and a Gaussian mixture model for identifying and predicting potential parking areas for HCVs. Leveraging the HCV trajectory data and land use data in Shanghai, China, we characterize the spatial distribution of parking demand and create a probabilistic model to predict active HCV traffic patterns and the spatial confidence regions under varying land use conditions. The results show that clusters of HCV parking demand tend to congregate near ports, comprehensive transportation hubs, logistics centers, and commercial hubs. These clusters correspond to five distinct parking demand patterns (i.e., day-long HCV stops, morning peak time HCV stops, daytime HCV stops, afternoon peak time HCV stops, and nighttime HCV stops), each reflecting specific spatiotemporal characteristics. The geofenced spatial domain was found to be very sensitive to the timing of parking, emphasizing the importance of using advanced geofencing technologies. The methodological framework introduced in this study holds significant value for policymakers and HCV operators as it aids in determining parking at strategic levels, offering valuable insights and tools to enhance the effectiveness of parking management.
言語 en
内容記述
内容記述タイプ Other
内容記述 This study has been partially supported by the project funded by the Ministry of Land, Information, Transport and Tourism (MLIT) regarding development of efficient logistics systems (reference number A2300392); The Japan Science and Technology Agency (JST) has established the Promotion of Science, Technology and Innovation Project (Reference number JPMJFS21). The 111 Project of China under Grant (Reference number B20082); The National Natural Science Foundation of China under Grant (Reference number 72174035); National High-end Foreign Experts Recruitment Plan of China (Reference number G2023193005L).
言語 en
出版者
出版者 Elsevier
言語 en
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_6501
資源タイプ journal article
出版タイプ
出版タイプ AM
出版タイプResource http://purl.org/coar/version/c_ab4af688f83e57aa
関連情報
関連タイプ isVersionOf
識別子タイプ DOI
関連識別子 https://doi.org/10.1016/j.jtrangeo.2024.103876
開始ページ
開始ページ 103876
書誌情報 en : Journal of Transport Geography

巻 117, p. 103876, 発行日 2024-04-17
旧ID 55849
備考 The full-text file will be made open to the public on 17 April 2026 in accordance with publisher's 'Terms and Conditions for Self-Archiving'
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