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Title:

Gravity Model of Passenger and Mobility Fleet Origin–Destination Patterns with Partially Observed Service Data

Accession Number:

01765553

Record Type:

Component

Availability:

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Order URL: http://worldcat.org/issn/03611981

Abstract:

Mobility-as-a-service systems are becoming increasingly important in the context of smart cities, with challenges arising for public agencies to obtain data from private operators. Only limited mobility data are typically provided to city agencies, which are not enough to support their decision-making. This study proposed an entropy-maximizing gravity model to predict origin–destination patterns of both passenger and mobility fleets with only partial operator data. An iterative balancing algorithm was proposed to efficiently reach the entropy maximization state. With different trip length distributions data available, two calibration applications were discussed and validated with a small-scale numerical example. Tests were also conducted to verify the applicability of the proposed model and algorithm to large-scale real data from Chicago transportation network companies. Both shared-ride and single-ride trips were forecast based on the calibrated model, and the prediction of single-ride has a higher level of accuracy. The proposed solution and calibration algorithms are also efficient to handle large scenarios. Additional analyses were conducted for north and south sub-areas of Chicago and revealed different travel patterns in these two sub-areas.

Supplemental Notes:

© National Academy of Sciences: Transportation Research Board 2021.

Language:

English

Authors:

He, Brian Yueshuai
Chow, Joseph Y. J

Pagination:

pp 235-253

Publication Date:

2021-6

Serial:

Transportation Research Record: Journal of the Transportation Research Board

Volume: 2675
Issue Number: 6
Publisher: Sage Publications, Incorporated
ISSN: 0361-1981
EISSN: 2169-4052
Serial URL: http://journals.sagepub.com/home/trr

Media Type:

Web

Features:

References (34)

Geographic Terms:

Subject Areas:

Data and Information Technology; Operations and Traffic Management; Public Transportation

Files:

TRIS, TRB, ATRI

Created Date:

Feb 12 2021 3:11PM

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