Color Dependence Analysis in a CNN-Based Computer-Aided Diagnosis System for Middle and External Ear Diseases

Author:

Viscaino MichelleORCID,Talamilla Matias,Maass Juan Cristóbal,Henríquez Pablo,Délano Paul H.,Auat Cheein Cecilia,Auat Cheein FernandoORCID

Abstract

Artificial intelligence-assisted otologic diagnosis has been of growing interest in the scientific community, where middle and external ear disorders are the most frequent diseases in daily ENT practice. There are some efforts focused on reducing medical errors and enhancing physician capabilities using conventional artificial vision systems. However, approaches with multispectral analysis have not yet been addressed. Tissues of the tympanic membrane possess optical properties that define their characteristics in specific light spectra. This work explores color wavelengths dependence in a model that classifies four middle and external ear conditions: normal, chronic otitis media, otitis media with effusion, and earwax plug. The model is constructed under a computer-aided diagnosis system that uses a convolutional neural network architecture. We trained several models using different single-channel images by taking each color wavelength separately. The results showed that a single green channel model achieves the best overall performance in terms of accuracy (92%), sensitivity (85%), specificity (95%), precision (86%), and F1-score (85%). Our findings can be a suitable alternative for artificial intelligence diagnosis systems compared to the 50% of overall misdiagnosis of a non-specialist physician.

Publisher

MDPI AG

Subject

Clinical Biochemistry

Cited by 13 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. Multispectral imaging in medicine: A bibliometric study;Heliyon;2024-08

2. Transforming ENT Healthcare: Advancements and Implications of Artificial Intelligence;Indian Journal of Otolaryngology and Head & Neck Surgery;2024-07-15

3. Otoscopy Image Classification Using Embedded AI;2024 IEEE International Conference on Information Technology, Electronics and Intelligent Communication Systems (ICITEICS);2024-06-28

4. ВИКОРИСТАННЯ СУЧА СНИХ ТЕХНОЛОГІЙ Д ЛЯ ДІАГНОСТИК И ТА ЛІКУВАННЯ ЗАХВОРЮВАНЬ В ОБЛАСТІ СЛУХУ;Grail of Science;2024-05-01

5. Label-Free Optical Technologies for Middle-Ear Diseases;Bioengineering;2024-01-23

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