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    Neuro-Fuzzy based motor imagery classification for a four class brain machine interface

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    Neuro-Fuzzy based Motor Imagery Classification.pdf (170.0Kb)
    Copyright transfer agreement.pdf (561.4Kb)
    Date
    2009-10-11
    Author
    Hema, Chengalvarayan Radhakrishnamurthy
    Paulraj, Murugesapandian
    Sazali, Yaacob
    Abdul Hamid, Adom
    Ramachandran, Nagarajan
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    Abstract
    Brain Machine Interface (BMI) provides a digital link between the brain and a device such as a computer, robot or wheelchair. This paper presents a BMI design using Neuro-Fuzzy classifiers for controlling a wheelchair using EEG signals. EEG signals during motor imagery (MI) of left and right hand movements are recorded noninvasively at the sensorimotor cortex. Four mental task signals are analyzed and classified to design a four class BMI. The proposed classifier has an average classification performance of 97%.
    URI
    http://dspace.unimap.edu.my/123456789/7339
    Collections
    • Conference Papers [2599]
    • Sazali Yaacob, Prof. Dr. [250]
    • Ramachandran, Nagarajan, Prof. Dr. [90]
    • Abdul Hamid Adom, Prof. Dr. [98]
    • Paulraj Murugesa Pandiyan, Assoc. Prof. Dr. [113]

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