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Classification of user competency levels using EEG and convolutional neural network in 3D modelling application

机译:在3D建模应用中使用脑电图和卷积神经网络对用户能力等级进行分类

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摘要

Competency classification is one of the main challenging tasks for the development of state-of-the-art next generation computer-aided design (CAD) system. To develop a futuristic system that can accommodate the lack of competency, the system needs to adapt to the competency level of the user. To solve this problem, we have presented a deep convolutional neural network (CNN) model that uses the Electroencephalography (EEG) of the user to classify the level of competency in 3D modeling task. The five competency levels were defined based on the task completion time, final 3D model rating and previous modeling experience. This is the first study that classifies user competency and employs the CNN model for the analysis of EEG signals in the design application. In this work, a 14-layer deep CNN model was implemented to classify competency into five different levels. The proposed technique achieved an accuracy, specificity, and sensitivity of > 88%, > 90% and > 70% respectively with 5-fold cross-validation. The results showed the applicability of a CNN model to classify the user competency and can be used as a first step in developing state-of-the-art adaptive 3D modeling systems. (C) 2020 Elsevier Ltd. All rights reserved.
机译:能力分类是开发最新的下一代计算机辅助设计(CAD)系统的主要挑战之一。为了开发可以适应缺乏能力的未来系统,该系统需要适应用户的能力水平。为了解决此问题,我们提出了一种深度卷积神经网络(CNN)模型,该模型使用用户的脑电图(EEG)来对3D建模任务中的能力水平进行分类。根据任务完成时间,最终3D模型评级和先前的建模经验定义了五个能力级别。这是第一项对用户能力进行分类并在设计应用程序中将CNN模型用于EEG信号分析的研究。在这项工作中,实施了一个14层深的CNN模型,将胜任力划分为五个不同的级别。所提出的技术通过5倍交叉验证分别实现了> 88%,> 90%和> 70%的准确性,特异性和敏感性。结果表明,CNN模型可用于对用户能力进行分类,并且可以用作开发最新的自适应3D建模系统的第一步。 (C)2020 Elsevier Ltd.保留所有权利。

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