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首页> 外文期刊>IEEE Transactions on Intelligent Transportation Systems >EEG-Based Driver Drowsiness Estimation Using an Online Multi-View and Transfer TSK Fuzzy System
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EEG-Based Driver Drowsiness Estimation Using an Online Multi-View and Transfer TSK Fuzzy System

机译:基于EEG的驾驶员使用在线多视图和传输TSK模糊系统逐渐估计

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摘要

In the field of intelligent transportation, transfer learning (TL) is often used to recognize EEG-based drowsy driving for a new subject with few subject-specific calibration data. However, most of existing TL-based models are offline, non-transparent, and in which features are only represented from one view (usually only one algorithm is used to extract features). In this paper, we consider an online multi-view regression model with high interpretability. By taking the 1-order TSK fuzzy system as the basic regression component and injecting the nature of the multi-view settings into the existing transfer learning framework and enforcing the consistencies across different views, we propose an online multi-view & transfer TSK fuzzy system for driver drowsiness estimation. In this novel model, features in both the source domain and the target domain are represented from multi-view perspectives such that more pattern information can be utilized during model training. Also, comparing with offline training, the proposed online fuzzy system meets the practical requirements more competently. An experiment on a driving dataset demonstrates that the proposed fuzzy system has smaller drowsiness estimation errors and higher interpretability than introduced benchmarking models.
机译:在智能运输领域,转移学习(TL)通常用于识别基于EEG的昏昏欲睡,为具有少数对象特定的校准数据的新主题驾驶。但是,大多数现有的基于TL的模型是脱机的,不透明的,并且其中特征仅从一个视图中表示(通常只使用一个算法来提取特征)。在本文中,我们考虑一个具有高可解释性的在线多视角回归模型。通过将1阶TSK模糊系统作为基本回归组件,并将多视图设置的性质注入现有的转移学习框架并在不同视图中执行常规,我们提出了一个在线多视图和传输TSK模糊系统司机嗜睡估计。在该新型模型中,源域和目标域中的特征由多视图透视图表示,使得可以在模型训练期间使用更多模式信息。此外,与离线培训相比,拟议的在线模糊系统符合实用要求更胜过。驾驶数据集上的实验表明,所提出的模糊系统具有较小的嗜睡估计误差和比引入的基准模型更高的可解释性。

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