כתבה
arXiv cs.LG ·
LiteEMG-FM: מודל יסודי זול ומשמיש לאבחון EMG
LiteEMG-FM: An Efficient and Deployable Foundation Model for Robust EMG Sensing
מודל חדש לאבחון EMG, המשמיש לטובת כלי עזר ושיחה בין-אדם. המודל, LiteEMG-FM, פותח על ידי צוות DeepSeek.
תקציר מקורי באנגליתarXiv:2610.02497v1 Announce Type: new Abstract: Electromyography (EMG) signals vary substantially across individuals, body regions, recording sessions, and sensing hardware, limiting the generalization of models for assistive devices and human-computer interaction. Existing time-series foundation models are also computationally expensive for real-time wearable deployment and often fail to capture EMG-specific time-frequency characteristics. We present LiteEMG-FM, an efficient hybrid CNN-Transformer foundation model for practical EMG sensing. Pretrained on 16 diverse upper- and lower-limb EMG datasets, LiteEMG-FM learns representations that generalize across users and datasets. For resource-constrained deployment, we implement a hierarchical wake-up architecture in which a lightweight, alwa
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arxiv.org
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