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Study on the Multi-Class User's Mode Choice Behavior Based on Travel Time Budget

机译:基于旅行时间预算的多级用户模式选择行为研究

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In real life, the travelers' route travel time and the parking space seeking time are always uncertain. In this paper, it is assumed that the route travel time and parking space seeking time are random variables. Based on the travel time budget (TTB), a nested logit (NL) model for the multi-mode and multi-class user is proposed. A nested method of the successive average algorithm was designed to solve the model. Numerical results indicate that the expected probability of arriving on time produces a great influence on travelers' mode choice behavior. Travelers with a higher expected probability of arriving on time are more likely to choose the subway. Among the other travelers, those with a lower expected probability of arriving on time will choose to drive in the whole journey. Accordingly, those with a higher expected probability of arriving on time are more likely to choose park-and-ride.
机译:在现实生活中,旅行者的路线旅行时间和停车位寻找时间总是不确定。 在本文中,假设路线行驶时间和停车位寻找时间是随机变量。 基于旅行时间预算(TTB),提出了多模式和多类用户的嵌套Logit(NL)模型。 嵌套方法的连续平均算法旨在解决该模型。 数值结果表明,到达时间的预期概率会对旅行者模式选择行为产生很大影响。 具有较高预期抵达可能性的旅行者更有可能选择地铁。 在其他旅行者中,达到时间较低的人员将选择在整个旅程中开车。 因此,具有较高预期到达时间概率的人更有可能选择公园和骑行。

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