PERFORMANCE EVALUATION OF DRY EYE DETECTION SYSTEM USING HIGHER-ORDER SPECTRA FEATURES FOR DIFFERENT NOISE LEVELS IN IR THERMAL IMAGES

Author:

SUDARSHAN VIDYA K.12,KOH JOEL E. W.3,TAN JEN HONG3,HAGIWARA YUKI3,CHUA KUANG CHUA3,NG EDDIE Y. K.4,TONG LOUIS5678

Affiliation:

1. Department of Biomedical Engineering, School of Science and Technology, Singapore University of Social Science, Singapore City 599491, Singapore

2. School of Electrical and Computer Engineering, University of Newcastle, Singapore City 038986, Singapore

3. Department of Electronics and Computer Engineering, Ngee Ann Polytechnic, Singapore City 599489, Singapore

4. School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore City 639798, Singapore

5. Singapore Eye Research Institute, Singapore City 168751, Singapore

6. Singapore National Eye Center, Singapore City 168751, Singapore

7. Duke-NUS Graduate Medical School, Singapore City 169857, Singapore

8. Yong Loo Lin School of Medicine, National University of Singapore, Singapore City 117597, Singapore

Abstract

The enhanced tear film evaporation and diminished tear production causes a dry eye (DE) condition. A non-invasive infrared (IR) thermography is most commonly used as a diagnostic tool for diagnosis of DE. However, the availability of high-quality IR thermal camera at low cost is difficult. Hence, an efficient DE detection system which can perform efficiently by using low-cost and low-quality images instead of conventional IR images would be a significant contribution. Therefore, in this work, we have evaluated the performance of automated non-invasive DE detection system using low-quality images obtained by adding different levels of noise to high-quality IR images. In this work, the performances of two non-linear higher-order spectra (HOS) cumulants and bispectrum features are compared. These features are extracted from the IR images with different levels of Gaussian noise. Principal component analysis (PCA) is performed on these extracted features and they are ranked using [Formula: see text]-value and later fed to different classifiers. We have achieved the accuracies, sensitivities and specificities of: (i) 86.90%, 85.71% and 88.10%, with noise level 0 using 24 bispectrum features, and (ii) 80.95%, 85.71% and 76.19%, with noise level 10 using 15 bispectrum features for right eye IR images. This study exhibits that even in the presence of high levels of noise, the detection of DE is possible and our proposed method performs efficiently using HOS bispectrum features. Thus, our proposed method can be used to detect DE using low-quality and inexpensive cameras instead of high-cost IR camera.

Publisher

World Scientific Pub Co Pte Lt

Subject

Biomedical Engineering

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Classification of Retinal Vascular Diseases Using Ensemble Decision Tree in Thermal Images;International Journal of Pattern Recognition and Artificial Intelligence;2023-09-21

2. Infrared Thermograms for Diagnosis of Dry Eye: A Review;2023 International Conference on Bio Signals, Images, and Instrumentation (ICBSII);2023-03-16

3. A practical framework for telemedicine in dry eye disease;The Ocular Surface;2022-01

4. Thoughts concerning the application of thermogram images for automated diagnosis of dry eye – A review;Infrared Physics & Technology;2020-05

5. Optimizing and calibration of thermal camera for ocular surface imaging;Design and Quality for Biomedical Technologies XIII;2020-02-17

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