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A Strong and Simple Deep Learning Baseline for BCI MI Decoding

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arxiv 2309.07159 v2 pith:WAE7TEB4 submitted 2023-09-11 eess.SP cs.LGq-bio.NC

classification eess.SPcs.LGq-bio.NC
keywords learningapproachesdeepbaselinecomparedecodingeeg-simpleconvimagery
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We propose EEG-SimpleConv, a straightforward 1D convolutional neural network for Motor Imagery decoding in BCI. Our main motivation is to propose a simple and performing baseline to compare to, using only very standard ingredients from the literature. We evaluate its performance on four EEG Motor Imagery datasets, including simulated online setups, and compare it to recent Deep Learning and Machine Learning approaches. EEG-SimpleConv is at least as good or far more efficient than other approaches, showing strong knowledge-transfer capabilities across subjects, at the cost of a low inference time. We advocate that using off-the-shelf ingredients rather than coming with ad-hoc solutions can significantly help the adoption of Deep Learning approaches for BCI. We make the code of the models and the experiments accessible.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. NeuralBench: A Unifying Framework to Benchmark NeuroAI Models

    cs.LG 2026-05 conditional novelty 7.0 of 10

    NeuralBench is a new benchmarking framework for neuroAI models on EEG data that finds foundation models only marginally outperform task-specific ones while many tasks like cognitive decoding stay highly challenging.

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