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The Virtual Driver: Integrating physical and cognitive human models to simulate driving with a secondary in-vehicle task.

机译:虚拟驾驶员:集成物理模型和认知模型,以模拟第二项车载任务的驾驶。

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摘要

Models of human behavior provide insight into people's choices and actions and form the basis of engineering tools for predicting performance and improving interface design. Most human models are either cognitive, focusing on the information processing underlying the decisions made when performing a task, or physical, representing postures and motions used to perform the task. In general, cognitive models contain a highly simplified representation of the physical aspects of a task and are best suited for analysis of tasks with only minor motor components. Physical models require a person experienced with the task and the software to enter detailed information about how and when movements should be made, a process that can be costly, time consuming, and inaccurate. Many tasks have both cognitive and physical components, which may interact in ways that could not be predicted using a cognitive or physical model alone.;This research proposes a solution by combining a cognitive model, the Queuing Network-Model Human Processor, and a physical model, the Human Motion Simulation (HUMOSIM) Framework, to produce an integrated cognitive-physical human model that makes it possible to study complex human-machine interactions. The physical task environment is defined using the HUMOSIM Framework, which communicates relevant information such as movement times and difficulty to the QN-MHP. Action choice and movement sequencing are performed in the QN-MHP. The integrated model's more natural movements, generated by motor commands from the QN-MHP, and more realistic cognitive decisions, made using physical information from the HUMOSIM Framework, make it useful for evaluating different designs for tasks, spaces, systems, and jobs.;The Virtual Driver is the application of the integrated model to driving with an in-vehicle task. A driving simulator experiment was used to tune and evaluate the integrated model. Increasing the visual and physical difficulty of the in-vehicle task affected the resource-sharing strategies drivers used and resulted in deterioration in driving and in-vehicle task performance, especially for shorter drivers.;The Virtual Driver replicates basic driving, in-vehicle task, and resource-sharing behaviors and provides a new way to study driver distraction. The model has applicability to interface design and predictions about staffing requirements and performance.
机译:人类行为模型可以洞悉人们的选择和行为,并构成预测性能和改进界面设计的工程工具的基础。大多数人类模型要么是认知模型,即专注于执行任务时所做出的决策所依据的信息处理,要么是物理模型,它们代表用于执行任务的姿势和动作。通常,认知模型包含任务物理方面的高度简化表示,并且最适合仅具有较小运动成分的任务分析。物理模型要求具有执行任务和软件经验的人员输入有关如何以及何时进行运动的详细信息,该过程可能成本高昂,耗时且不准确。许多任务同时具有认知和物理组成部分,它们可能以单独使用认知或物理模型无法预测的方式进行交互。;本研究提出了一种将认知模型,排队网络模型人处理器和物理模型相结合的解决方案人体运动仿真(HUMOSIM)框架模型,以生成一个集成的认知物理人体模型,从而使研究复杂的人机交互成为可能。物理任务环境是使用HUMOSIM框架定义的,该框架将相关信息(例如移动时间和难度)传达给QN-MHP。动作选择和动作排序在QN-MHP中执行。集成模型通过QN-MHP的运动命令生成的更自然的运动,以及使用HUMOSIM框架中的物理信息做出的更实际的认知决策,使其对于评估任务,空间,系统和工作的不同设计很有用。虚拟驱动程序是集成模型在车载任务驾驶中的应用。驾驶模拟器实验用于调整和评估集成模型。车载任务的视觉和物理难度的增加影响了驾驶员使用的资源共享策略,并导致驾驶和车载任务性能下降,尤其是对于较短的驾驶员。虚拟驾驶员复制基本的驾驶,车载任务以及资源共享行为,并提供了一种研究驾驶员分心的新方法。该模型适用于接口设计以及有关人员配备需求和绩效的预测。

著录项

  • 作者

    Fuller, Helen J. A.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Biomedical.;Engineering Industrial.;Psychology Cognitive.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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