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A classification tree approach to identify key factors of transit service quality

机译:分类树方法来识别运输服务质量的关键因素

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A key aspect to take into consideration when developing indices to evaluate transit service quality is to determine how much weight passengers give to each attribute when making a global assessment of service quality (SQ). The simplest method of a direct question in customer satisfaction survey (CSS) poses a number of problems, and therefore statistical regression methods have been developed to infer attribute importance on the basis of CSS or stated preference surveys. However, most regression models have their own model assumptions and pre-defined underlying relationships between dependant and independent variables. If these assumptions are violated, the model could lead to erroneous estimations. This paper proposes using a classification and regression tree (CART) that does not require any pre-defined underlying relationship between dependent and independents variables, to identify the key factors affecting bus transit quality of service. The paper uses the data gathered in a CSS conducted on the Granada metropolitan transit system in 2007, which was a non-research oriented survey. Two CART models were developed to compare the key attributes identified before and after making passengers reflect on the main aspects of the system. The outcomes show that, in a preliminary evaluation, passenger perception of SQ is basically influenced by frequency. After being asked to evaluate all the attributes, however, other attributes (e.g. proximity, speed and safety) become more important than frequency.
机译:在制定评估过境服务质量的指标时要考虑的一个关键方面是,在对服务质量(SQ)进行全面评估时,确定乘客对每个属性的重视程度。客户满意度调查(CSS)中直接问题的最简单方法带来了许多问题,因此已经开发了统计回归方法来基于CSS或陈述的偏好调查来推断属性的重要性。但是,大多数回归模型都有自己的模型假设以及因变量和自变量之间的预定义基础关系。如果违反了这些假设,则该模型可能会导致错误的估计。本文提出了一种使用分类和回归树(CART)的方法,该树不需要在因变量和自变量之间建立任何预定义的基础关系,即可确定影响公交服务质量的关键因素。本文使用2007年在格拉纳达都市交通系统上进行的CSS中收集的数据,这是一项非研究型调查。开发了两个CART模型以比较使乘客反映系统主要方面之前和之后识别的关键属性。结果表明,在初步评估中,乘客对SQ的感知基本上受频率影响。但是,在要求评估所有属性后,其他属性(例如接近性,速度和安全性)变得比频率更重要。

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