基于输入命令决策特征的人类技能评价

H. Igarashi
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引用次数: 0

摘要

本文研究了人机系统中具有人的命令决策特征的人的技能量化技术。在机器操作系统中,掌握操作技能并不容易,需要学习时间。该技术旨在实现对人类技能成就的辅助系统。然而,在以往的工作中,操作员的技能是通过跟踪误差来评估跟踪任务的。本文提出了一种基于人工神经网络预测误差的人工操作技能评价指标。人工神经网络分别具有不同时间序列的输入信号。通过观察这些预测误差,我们可以知道在任务期间,信息用于输入命令决策的时间有多长。通过对20名参与者的实验,预测误差的分布随着技能的掌握而变化,并且这种变化趋势不依赖于跟踪误差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Human skill evaluation by characteristics of input command decision
This paper addresses a human skill quantification technique with human command decision characteristics in human-machine systems. In machine operation systems, getting operation skills is not easy and required learning time. Proposed technique aims at realizing assist system to human skill achievement. However, in previous works, the operator skill is evaluated by tracking error for tracking tasks. In this paper, a new evaluation indexes for human operation skill based on prediction errors by a human model consists of multiple ANNs. The ANNs have input signals of different time series respectively. By observing these prediction errors, we can get how long or what time information is used for input command decision during the task. By some experiments with 20 participants, the distribution of prediction error is change as getting skills and this trend is not depend on the tracking errors.
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