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利用神经测量指标建立通用的脑力工作负荷模型。

Towards a versatile mental workload modeling using neurometric indices.

机构信息

ICE Department, Dr. B. R. Ambedkar NIT Jalandhar, Jalandhar, Punjab, India.

出版信息

Biomed Tech (Berl). 2023 Jan 23;68(3):297-316. doi: 10.1515/bmt-2022-0479. Print 2023 Jun 27.

Abstract

Researchers have been working to magnify mental workload (MWL) modeling for a long time. An important aspect of its modeling is feature selection as it interprets bulky and high-dimensional EEG data and enhances the accuracy of the classification model. In this study, a feature selection technique is proposed to obtain an optimized feature set with multiple domain features that can contribute to classifying the MWL at three distinct levels. The brain signals from thirteen healthy subjects were examined while they attended an intrinsic MWL of spotting differences in a set of similar pictures. The Recursive Feature Elimination (RFE) technique selects the robust features from the feature matrix by eliminating all the least contributing features. Along with the Support Vector Machine (SVM), the overall classification accuracy with the proposed RFE reached 0.913 from 0.791 surpassing the other techniques mentioned. The results of the study also significantly display the variation in the mean values of the selected features at the three workload levels (p<0.05). This model can become the principle for defining the workload level quantification applicable to diverse fields like neuroergonomics study, intelligent assistive devices (ADs) development, blue-chip technology exploration, cognitive evaluation of students, power plant operators, traffic operators, etc.

摘要

研究人员长期以来一直致力于放大脑力工作负荷 (MWL) 模型。建模的一个重要方面是特征选择,因为它可以解释庞大的高维 EEG 数据并提高分类模型的准确性。在这项研究中,提出了一种特征选择技术,以获得具有多个域特征的优化特征集,这些特征可以有助于将 MWL 分类为三个不同的级别。研究检查了 13 位健康受试者的大脑信号,他们在观看一组相似图片时注意到差异以进行内在的 MWL。递归特征消除 (RFE) 技术通过消除所有贡献最小的特征,从特征矩阵中选择稳健的特征。与支持向量机 (SVM) 一起,所提出的 RFE 的整体分类准确率从 0.791 提高到 0.913,超过了其他提到的技术。研究结果还显著显示了在三个工作负荷水平下所选特征的平均值的变化(p<0.05)。该模型可以成为定义适用于神经工效学研究、智能辅助设备 (AD) 开发、蓝筹技术探索、学生认知评估、发电厂操作员、交通操作员等不同领域的工作量量化的原则。

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