Please use this identifier to cite or link to this item: http://dspace.unimap.edu.my:80/xmlui/handle/123456789/20497
Title: Comparing the classification performance of multi sensor data fusion based on feature extraction and feature selection
Authors: Maz Jamilah, Masnan
Ali Yeon, Md Shakaff, Prof. Dr.
Ammar, Zakaria
Nor Idayu, Mahat
mazjamilah@unimap.edu.my
aliyeon@unimap.edu.my
Keywords: Linear discriminant analysis (LDA)
Multi sensor data fusion
Feature exstraction
Feature selection
Leave-one-out error rate
Issue Date: 27-Feb-2012
Publisher: Universiti Malaysia Perlis (UniMAP)
Series/Report no.: Proceedings of the International Conference on Man-Machine Systems (ICoMMS 2012)
Abstract: Linear discriminant analysis (LDA) has been widely used in the classification of multi sensor data fusion. This paper discusses the performance of LDA when the classifications were performed based on feature extraction and feature selection methods. Comparisons were also made based on single sensor modality. These strategies were studied using a honey dataset along with two types of sugar concentration collected from two types of sensors namely electronic nose (e-nose) and electronic tongue (e-tongue). Assessment of error rate was achieved using the leave-one-out procedure.
Description: International Conference on Man Machine Systems (ICoMMS 2012) organized by School of Mechatronic Engineering, co-organized by The Institute of Engineer, Malaysia (IEM) and Society of Engineering Education Malaysia, 27th - 28th February 2012 at Bayview Beach Resort, Penang, Malaysia.
URI: http://dspace.unimap.edu.my/123456789/20497
Appears in Collections:Conference Papers
Ali Yeon Md Shakaff, Dato' Prof. Dr.
Ammar Zakaria, Associate Professor Dr.

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