Spatial prediction of traffic levels in unmeasured locations: applications of universal kriging and geographically weighted regression
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DOI: 10.1016/j.jtrangeo.2012.12.009
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References listed on IDEAS
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- Boarnet, Marlon G. & Hong, Andy & Santiago-Bartolomei, Raul, 2017. "Urban spatial structure, employment subcenters, and freight travel," Journal of Transport Geography, Elsevier, vol. 60(C), pages 267-276.
- Yoon, Seo Youn & Ravulaparthy, Srinath K. & Goulias, Konstadinos G., 2014. "Dynamic diurnal social taxonomy of urban environments using data from a geocoded time use activity-travel diary and point-based business establishment inventory," Transportation Research Part A: Policy and Practice, Elsevier, vol. 68(C), pages 3-17.
- Munira, Sirajum & Sener, Ipek N., 2020. "A geographically weighted regression model to examine the spatial variation of the socioeconomic and land-use factors associated with Strava bike activity in Austin, Texas," Journal of Transport Geography, Elsevier, vol. 88(C).
- Yang, Hongtai & Lu, Xiaozhao & Cherry, Christopher & Liu, Xiaohan & Li, Yanlai, 2017. "Spatial variations in active mode trip volume at intersections: a local analysis utilizing geographically weighted regression," Journal of Transport Geography, Elsevier, vol. 64(C), pages 184-194.
- Lowry, Michael, 2014. "Spatial interpolation of traffic counts based on origin–destination centrality," Journal of Transport Geography, Elsevier, vol. 36(C), pages 98-105.
- Wang, Chih-Hao & Chen, Na, 2017. "A geographically weighted regression approach to investigating the spatially varied built-environment effects on community opportunity," Journal of Transport Geography, Elsevier, vol. 62(C), pages 136-147.
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Keywords
Annual average daily traffic (AADT) prediction; Universal kriging; Traffic counts; Geographically weighted regression;All these keywords.
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