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利用局部场电位的功能连接解码人类认知控制

Decoding Human Cognitive Control Using Functional Connectivity of Local Field Potentials.

作者信息

Avvaru Sandeep, Provenza Nicole R, Widge Alik S, Parhi Keshab K

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2021 Nov;2021:451-454. doi: 10.1109/EMBC46164.2021.9630706.

Abstract

Many patients with mental illnesses characterized by impaired cognitive control have no relief from gold-standard clinical treatments resulting in a pressing need for new alternatives. This paper develops a neural decoder to detect task engagement in ten human subjects during a conflict-based behavioral task known as the multi-source interference task (MSIT). Task engagement is of particular interest here because closed-loop brain stimulation during those states can augment decision-making. The functional connectivity patterns of the electrodes are extracted. A principal component analysis of these patterns is carried out and the ranked principal components are used as inputs to train subject-specific linear support vector machine classifiers. In this paper, we show that task engagement can be differentiated from background brain activity with a median accuracy of 89.7%. This was accomplished by constructing distributed functional networks from local field potentials recording during the task performance. A further challenge is that goal-directed efforts take place over higher temporal resolution. Task engagement must thus be detected at a similar rate for proactive intervention. We show that our algorithms can detect task engagement from neural recordings in less than 2 seconds; this can be further improved using an application-specific device.

摘要

许多以认知控制受损为特征的精神疾病患者无法从金标准临床治疗中得到缓解,因此迫切需要新的替代方案。本文开发了一种神经解码器,用于在一种名为多源干扰任务(MSIT)的基于冲突的行为任务中检测十名人类受试者的任务参与情况。任务参与在这里特别受关注,因为在这些状态下进行闭环脑刺激可以增强决策能力。提取电极的功能连接模式。对这些模式进行主成分分析,并将排序后的主成分用作输入来训练特定于受试者的线性支持向量机分类器。在本文中,我们表明任务参与可以与背景脑活动区分开来,中位数准确率为89.7%。这是通过在任务执行期间从局部场电位记录构建分布式功能网络来实现的。另一个挑战是目标导向的努力发生在更高的时间分辨率上。因此,必须以类似的速率检测任务参与情况以进行主动干预。我们表明,我们的算法可以在不到2秒的时间内从神经记录中检测到任务参与情况;使用特定应用设备可以进一步改进这一点。

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