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    Adaptive Wavelet Extreme Learning Machine (AW-ELM) for Index Finger Recognition Using Two-Channel Electromyography

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    F.T_Prosiding_Khairul Anam_Adaptive Wavelet.pdf (781.3Kb)
    Date
    2018-04-04
    Author
    Anam, Khairul
    Al-Jumaily, Adel
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    Abstract
    This paper proposes a new structure of wavelet extreme learning machine i.e. an adaptive wavelet extreme learning machine (AW-ELM) for finger motion recognition using only two EMG channels. The adaptation mechanism is performed by adjusting the wavelet shape based on the input information. The performance of the proposed method is compared to ELM using wavelet (W-ELM0 and sigmoid (Sig-ELM) activation function. The experimental results demonstrate that the proposed AW-ELM performs better than W-ELM and Sig-ELM.
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    http://repository.unej.ac.id/handle/123456789/85193
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    • LSP-Conference Proceeding [1877]

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    Indonesia DSpace Group :

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