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 %.
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
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- Publication year
2017
- Venue
International Journal on Smart Sensing and Intelligent Systems
- Publication date
2017-12-27
- Fields of study
Medicine, Computer Science, Engineering
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