Index Finger Motion Recognition Using Self-Advise Support Vector Machine

K. Anam,Adel Al-Jumaily,Y. Maali

Published 2017 in International Journal on Smart Sensing and Intelligent Systems

ABSTRACT

abstract Because of the functionality of an index finger, the disability of its motion in the modern age can decrease the person’s quality of life. As a part of rehabilitation therapy, the recognition of the index finger motion for rehabilitation purposes should be done properly. This paper proposes a novel recognition system of the index finger motion suing a cutting-edge method and its improvements. The proposed system consists of combination of feature extraction method, a dimensionality reduction and well-known classifier, Support Vector Machine (SVM). An improvement of SVM, Self-advise SVM (SA-SVM), is tested to evaluate and compare its performance with the original one. The experimental result shows that SA-SVM improves the classification performance by on average 0.63 %.

PUBLICATION RECORD

  • Publication year

    2017

  • Venue

    International Journal on Smart Sensing and Intelligent Systems

  • Publication date

    2017-12-27

  • Fields of study

    Medicine, Computer Science, Engineering

  • Identifiers
  • External record

    Open on Semantic Scholar

  • Source metadata

    Semantic Scholar

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CLAIMS

  • No claims are published for this paper.

CONCEPTS

  • No concepts are published for this paper.

REFERENCES

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