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    •   BracU IR
    • School of Engineering and Computer Science (SECS)
    • Department of Computer Science and Engineering (CSE)
    • Thesis & Report, BSc (Computer Science and Engineering)
    • View Item
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    EEG signals analysis for motor imagery brain computer interface

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    14201006, 15101098, 15101089_CSE.pdf (1.145Mb)
    Date
    2019-08
    Publisher
    Brac University
    Author
    Rahman, La z Maruf
    Alam, Zawad
    Rahman, Md. Musta-E-Nur
    Metadata
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    URI
    http://hdl.handle.net/10361/12780
    Abstract
    A brain{computer interface is a medium for communication which converts neuronal signals into commands towards controlling external system. This thesis presented the process of classifying three motor imagery tasks using EEG signals which can be further evolved into BCI system that can remotely control external devices. Different bands are ltered from EEG signals in order to extract di erent frequency distributed features. These features are used to classify di erent motor imagery tasks based on SVM and ANN. Experimental results show that SVM carried higher accuracy (i.e., 80%) compared to other machine learning algorithms where seven subjects participated in this experiment.
    Keywords
    EEG; BCI; MI; SVM; ANN
     
    LC Subject Headings
    Signal processing; Brain-computer interfaces; Human-computer interaction; Computational intelligence
     
    Description
    This thesis is submitted in partial fulfillment of the requirements for the degree of Bachelor of Science in Computer Science, 2019.
     
    Cataloged from PDF version of thesis.
     
    Includes bibliographical references (pages 30-35).
    Department
    Department of Computer Science and Engineering, Brac University
    Collections
    • Thesis & Report, BSc (Computer Science and Engineering)

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