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eess.AS 1

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2025 1

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Scaling and Distilling Transformer Models for sEMG

eess.AS · 2025-07-29 · accept · novelty 6.0

Vanilla transformers on the emg2qwerty dataset improve cross-user typing accuracy up to 109M parameters, and simple logit distillation recovers most of the gain in a 2.2M-parameter student.

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  • Scaling and Distilling Transformer Models for sEMG eess.AS · 2025-07-29 · accept · none · ref 1

    Vanilla transformers on the emg2qwerty dataset improve cross-user typing accuracy up to 109M parameters, and simple logit distillation recovers most of the gain in a 2.2M-parameter student.