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Research PaperResearchia:202608.04050

A 2-Block Architecture for Real-Time EEG Gait Decoding: A Pilot Study

Shantanu Sarkar

Abstract

Closed-loop lower-limb exoskeleton control via Electroencephalography (EEG) remains limited by motion artifacts, low signal-to-noise ratio, and binary gait formulations that fail to capture full cortical gait complexity. We propose a 2-block Brain-Computer Interface (BCI) architecture: a trainable session-specific Feature Extraction Block with real-time artifact suppression and multi-domain feature extraction, coupled with a Decoder Block built on a novel Polynomial Time-Varying Layer (PolyTVL)+...

Submitted: August 4, 2026Subjects: Neuroscience; Bio-AI Interfaces

Description / Details

Closed-loop lower-limb exoskeleton control via Electroencephalography (EEG) remains limited by motion artifacts, low signal-to-noise ratio, and binary gait formulations that fail to capture full cortical gait complexity. We propose a 2-block Brain-Computer Interface (BCI) architecture: a trainable session-specific Feature Extraction Block with real-time artifact suppression and multi-domain feature extraction, coupled with a Decoder Block built on a novel Polynomial Time-Varying Layer (PolyTVL)+LSTM for four-state gait classification (Stand, Initiate, Execute, Terminate). Ablation confirmed v01 (PolyTVL+LSTM) outperformed all variants (validation MCC: 0.435, gap: 0.187), with consistent EEG feature discriminability across ROIs and sub-bands (p<0.05). Closed-loop deployment with v01 achieved 55.3% (Rex-assisted) and 52.7% (volitional) gait initiation success, with a mean prediction time of 70.5~ms (+/-41.5), validating real-time feasibility in this pilot study.


Source: arXiv:2608.02083v1 - http://arxiv.org/abs/2608.02083v1 PDF: https://arxiv.org/pdf/2608.02083v1 Original Link: http://arxiv.org/abs/2608.02083v1

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Submission Info
Date:
Aug 4, 2026
Topic:
Bio-AI Interfaces
Area:
Neuroscience
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