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Erschienen in: Journal of Medical Systems 4/2015

01.04.2015 | Non-invasive Diagnostic Systems

Non-invasive Health Status Detection System Using Gabor Filters Based on Facial Block Texture Features

verfasst von: Ting Shu, Bob Zhang

Erschienen in: Journal of Medical Systems | Ausgabe 4/2015

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Abstract

Blood tests allow doctors to check for certain diseases and conditions. However, using a syringe to extract the blood can be deemed invasive, slightly painful, and its analysis time consuming. In this paper, we propose a new non-invasive system to detect the health status (Healthy or Diseased) of an individual based on facial block texture features extracted using the Gabor filter. Our system first uses a non-invasive capture device to collect facial images. Next, four facial blocks are located on these images to represent them. Afterwards, each facial block is convolved with a Gabor filter bank to calculate its texture value. Classification is finally performed using K-Nearest Neighbor and Support Vector Machines via a Library for Support Vector Machines (with four kernel functions). The system was tested on a dataset consisting of 100 Healthy and 100 Diseased (with 13 forms of illnesses) samples. Experimental results show that the proposed system can detect the health status with an accuracy of 93 %, a sensitivity of 94 %, a specificity of 92 %, using a combination of the Gabor filters and facial blocks.
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Metadaten
Titel
Non-invasive Health Status Detection System Using Gabor Filters Based on Facial Block Texture Features
verfasst von
Ting Shu
Bob Zhang
Publikationsdatum
01.04.2015
Verlag
Springer US
Erschienen in
Journal of Medical Systems / Ausgabe 4/2015
Print ISSN: 0148-5598
Elektronische ISSN: 1573-689X
DOI
https://doi.org/10.1007/s10916-015-0227-1

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