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Developing Fuzzy Inference Systems from Qualitative Interviews for Travel Mode Choice in an Agent-Based Mobility Simulation

机译:从基于代理的移动模拟中的旅行模式选择的定性访谈中开发模糊推理系统

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Both qualitative and quantitative research are integral parts for the understanding of traffic systems, yet it can be difficult to formalize and execute qualitative research results in a technical simulation system in an understandable and flexible manner. This paper presents an approach to systematically construct fuzzy inference systems from socio-scientific data for the application as a decision making component in an agent-based mobility simulation. A general fuzzy inference concept is presented and subsequently applied to statements about travel mode choice and common activities from semi-structured interviews on mobility behavior. It is shown that the inference concept can be used to determine both fuzzy rule base and the linguistic variables and terms from the interviews and that such an inference system can be used successfully in an agent-based mobility simulation.
机译:定性和定量研究都是了解交通系统的组成部分,但是难以以可理解和灵活的方式在技术仿真系统中正式化和执行定性研究。本文介绍了一种系统地构建来自社会科学数据的模糊推理系统,将应用程序作为基于代理的移动性仿真中的决策组成部分。提出了一般的模糊推理概念,随后应用于关于行驶模式选择和来自半结构化访谈的常见活动的陈述。结果表明,推理概念可用于确定模糊规则基础和来自访谈的语言变量以及术语,并且这种推理系统可以在基于代理的移动性仿真中成功使用。

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