Adaptive EMG decomposition in dynamic conditions based on online learning metrics with tunable hyperparameters

计算机科学 超参数 人工智能 可穿戴计算机 灵敏度(控制系统) 模式识别(心理学) 峰度 稳健性(进化) 机器学习 数学 化学 嵌入式系统 工程类 统计 基因 生物化学 电子工程
作者
Irene Méndez Guerra,Deren Y. Barsakcioglu,Dario Farina
出处
期刊:Journal of Neural Engineering [IOP Publishing]
卷期号:21 (4): 046023-046023 被引量:4
标识
DOI:10.1088/1741-2552/ad5ebf
摘要

Abstract Objective . Developing neural decoders robust to non-stationary conditions is essential to ensure their long-term accuracy and stability. This is particularly important when decoding the neural drive to muscles during dynamic contractions, which pose significant challenges for stationary decoders. Approach . We propose a novel adaptive electromyography (EMG) decomposition algorithm that builds on blind source separation methods by leveraging the Kullback–Leibler divergence and kurtosis of the signals as metrics for online learning. The proposed approach provides a theoretical framework to tune the adaptation hyperparameters and compensate for non-stationarities in the mixing matrix, such as due to dynamic contractions, and to identify the underlying motor neuron (MN) discharges. The adaptation is performed in real-time (∼22 ms of computational time per 100 ms batches). Main results . The hyperparameters of the proposed adaptation captured anatomical differences between recording locations (forearm vs wrist) and generalised across subjects. Once optimised, the proposed adaptation algorithm significantly improved all decomposition performance metrics with respect to the absence of adaptation in a wide range of motion of the wrist (80 ∘ ). The rate of agreement, sensitivity, and precision were 90 % in 80 % of the cases in both simulated and experimentally recorded data, according to a two-source validation approach. Significance . The findings demonstrate the suitability of the proposed online learning metrics and hyperparameter optimisation to compensate the induced modulation and accurately decode MN discharges in dynamic conditions. Moreover, the study proposes an experimental validation method for EMG decomposition in dynamic tasks.
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