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An Efficient Brain-Switch for Asynchronous Brain-Computer Interfaces

delete2025-02-01
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PRE
AI
D
Daniel Valencia *
P
Patrick P. Mercier
A
Amirhossein Alimohammad
DOI:10.1109/TBCAS.2024.3396115delete
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摘要

摘要

En 中文
Intracortical brain computer interfaces (iBCIs) utilizing extracellular recordings mainly employ in vivo signal processing application-specific integrated circuits (ASICs) to detect action potentials (spikes). Conventionally, brain-switches based on spiking activity have been employed to realize asynchronous (self-paced) iBCIs, estimating when the user involves in the underlying BCI task. Several studies have demonstrated that local field potentials (LFPs) can effectively replace action potentials, drastically reducing the power consumption and processing requirements of in vivo ASICs. This article presents the first LFP-based brain-switch design and implementation using gated recurrent neural networks (RNNs). Compared to the previously reported brain-switches, our design requires no exhaustive learning phase for the estimation of optimal recording channels or frequency band selection, making it more applicable to practical asynchronous iBCIs. The synthesized ASIC of the designed in vivo LFP-based feature extraction unit, in a standard 180-nm CMOS process, occupies only 0.09 mm2 of silicon area, and the post place-and-route synthesis results indicate that it consumes 91.87 nW of power while operating at 2 kHz. Compared to the previously published ASICs, the proposed LFP-based brain-switch consumes the least power for in vivo digital signal processing and achieves comparable state estimation performance to that of spike-based brain-switches.
Keyword:
Neurons
Electrodes
Decoding
Silicon
Recording
Extracellular
Feature extraction
Application-specific integrated circuits
brain-computer interfaces
local field potentials
neural signal processing

期刊

IEEE Transactions on Circuits and Systems I-Regular Papers 封面图
IEEE Transactions on Circuits and Systems I-Regular Papers
IF:
5.2
论文数:
9.7K
被引数:
2.2W

机构

California State University System 封面图
California State University System
学者数:
2.8W
论文数: 2.4W
被引数: 457
University of California System 封面图
University of California System
学者数:
37.5W
论文数: 33.7W
被引数: 6.6K
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