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首页> 外文期刊>Transportation >Understanding and Modeling the Social Preferences for Riders in Rideshare Matching
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Understanding and Modeling the Social Preferences for Riders in Rideshare Matching

机译:在Rideshare匹配中了解和建模社会偏好

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摘要

Ridesharing is the sharing of trip segments from one place to another among multiple travelers, obviating others' needs to drive themselves. By having more than one occupant sharing a vehicle, ridesharing aims to reduce personal resources and costs, such as fuel and trip-related costs, and driver stress. The objective of this paper is to model the social preferences of rideshare passengers. We identify challenges and barriers people face in ridesharing with respect to whom they share the ride with and model these social preferences to determine the probability of matching for rideshare demand forecasting. An online survey instrument was designed and distributed among the people residing in the United States to uncover their preferences for ridesharing, in addition to the attributes of potential rideshare passengers. Furthermore, using the survey data, a discrete choice model with latent variables was estimated to uncover the relationship between social preferences and matching. We identified 13 attitudinal dimensions characterizing social preference from the survey responses. These 13 variables were further distilled into four latent variables using factor analysis. Four models were estimated for each latent dimension to predict the probabilities of a person pleasantly experiencing his/her shared rides in social aspects from his/her attributes and preferences. Based on the estimated choice model, we developed a matching index derived from preference probabilities that give a compatibility ratio between riders.
机译:RideSharing是在多个旅行者中与一个地方的跳闸区段分享,避免其他人需要自己开车。通过拥有一个以上的乘员分享车辆,RideShiing旨在减少个人资源和成本,例如燃料和旅行相关成本和驾驶员压力。本文的目的是模拟Rideshare乘客的社会偏好。我们确定与他们共享乘坐和模拟这些社会偏好的竞争对手的挑战和障碍人士,以确定骑行者需求预测匹配的概率。除了潜在的Rideshare乘客的属性之外,还设计了在美国居住在美国的人们偏离骑士的偏好而设计和分发了在线调查仪器。此外,使用调查数据,估计具有潜在变量的离散选择模型,以发现社交偏好与匹配之间的关系。我们确定了13个态度,表征了来自调查答复的社会偏好。使用因子分析进一步将这些13个变量进一步蒸馏到四个潜变量。估计每个潜在维度的四种模型,以预测人/她的属性和偏好的社会方面愉快地遇到他/她的共同乘坐的人的概率。基于估计的选择模型,我们开发了一种衍生自偏好概率的匹配指数,可以在riveers之间提供兼容性比率。

著录项

  • 来源
    《Transportation》 |2021年第4期|1809-1835|共27页
  • 作者单位

    Fed Highway Adm 1200 New Jersey Ave SE Washington DC 20590 USA;

    Univ Buffalo State Univ New York Dept Ind & Syst Engn 327 Bell Hall Buffalo NY 14260 USA;

    Univ Hawaii Manoa Dept Civil & Environm Engn 2540 Dole St Holmes 383 Honolulu HI 96822 USA;

    Univ Buffalo State Univ New York Dept Ind & Syst Engn 313 Bell Hall Buffalo NY 14260 USA|Univ Buffalo State Univ New York Dept Civil Struct & Environm Engn 313 Bell Hall Buffalo NY 14260 USA;

    Univ Minnesota Dept Civil Environm & Geoengn 500 Pillsbury Dr SE Minneapolis MN 55455 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Ridesharing behavior; Survey; Social preferences; Ordinal logistic regression; Factor analysis; Latent variables;

    机译:ridesharing行为;调查;社会偏好;序数逻辑回归;因子分析;潜在变量;

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