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Using big data to analyze long-haul vs regional-short-haul trips for medium- and heavy-duty vehicles
Kimberly Collins1, Raffi Der Wartanian2, Yunfei Hou3
1William and Barbara Leonard Transportation Center & Department of Public Administration, California State University, San Bernardino, 5500 University Parkway, San Bernardino CA 92407-2393, United States.
Abstract:
This dataset outlines regional short-haul (RSH) and long-haul (LH) trips for medium- and heavy-duty vehicles (MDHDVs) within the Inland Empire, Southern California, collated through collaboration with a big data vendor employing standardized methodologies for traffic data capture. The compilation encompasses detailed records of trip origins, destinations, timestamps, vehicle classifications, and routes. This strategic categorization facilitates a granular analysis, enabling data scientists to differentiate between RSH and LH travel patterns efficiently. The genesis of this dataset was predicated on the necessity to comprehend the operational dynamics of MDHDVs in the context of transitioning to Zero Emission Vehicles. By offering a coherent framework to segregate RSH and LH trips, the dataset stands as a pivotal resource for stakeholders in environmental policy formulation, urban and transportation planning, and logistics management.
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