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Real-Time State Estimation in a Flight Simulator Using fNIRS

机译:使用fNIRS的飞行模拟器中的实时状态估计

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摘要

Working memory is a key executive function for flying an aircraft. This function is particularly critical when pilots have to recall series of air traffic control instructions. However, working memory limitations may jeopardize flight safety. Since the functional near-infrared spectroscopy (fNIRS) method seems promising for assessing working memory load, our objective is to implement an on-line fNIRS-based inference system that integrates two complementary estimators. The first estimator is a real-time state estimation MACD-based algorithm dedicated to identifying the pilot’s instantaneous mental state (not-on-task vs. on-task). It does not require a calibration process to perform its estimation. The second estimator is an on-line SVM-based classifier that is able to discriminate task difficulty (low working memory load vs. high working memory load). These two estimators were tested with 19 pilots who were placed in a realistic flight simulator and were asked to recall air traffic control instructions. We found that the estimated pilot’s mental state matched significantly better than chance with the pilot’s real state (62% global accuracy, 58% specificity, and 72% sensitivity). The second estimator, dedicated to assessing single trial working memory loads, led to 80% classification accuracy, 72% specificity, and 89% sensitivity. These two estimators establish reusable blocks for further fNIRS-based passive brain computer interface development.
机译:工作记忆是飞行飞机的关键执行功能。当飞行员不得不撤回一系列空中交通管制指令时,此功能尤其重要。但是,工作内存限制可能会危害飞行安全。由于功能近红外光谱(fNIRS)方法似乎有望评估工作记忆负荷,因此我们的目标是实现一个基于在线fNIRS的推理系统,该系统集成了两个互补的估计量。第一个估算器是一种基于MACD的实时状态估算算法,专用于识别飞行员的即时心理状态(非任务状态与任务状态)。它不需要校准过程即可执行其估计。第二个估计器是基于SVM的在线分类器,能够区分任务难度(低工作内存负载与高工作内存负载)。这两个估算器由19位飞行员进行了测试,这些飞行员​​被放置在真实的飞行模拟器中,并被要求回忆空中交通管制指令。我们发现,估计飞行员的精神状态与飞行员的真实状态相匹配的机会要好得多(全球准确度为62%,特异性为58%,敏感性为72%)。第二个估算器专门用于评估单个试验工作记忆负荷,从而导致80%的分类精度,72%的特异性和89%的灵敏度。这两个估计量为进一步基于fNIRS的被动脑计算机接口开发建立了可重用模块。

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