Gastrointestinal tract disorders classification using ensemble of InceptionNet and proposed GITNet based deep feature with ant colony optimization.


Journal

PloS one
ISSN: 1932-6203
Titre abrégé: PLoS One
Pays: United States
ID NLM: 101285081

Informations de publication

Date de publication:
2023
Historique:
received: 25 07 2023
accepted: 24 09 2023
medline: 1 11 2023
pubmed: 13 10 2023
entrez: 13 10 2023
Statut: epublish

Résumé

Computer-aided classification of diseases of the gastrointestinal tract (GIT) has become a crucial area of research. Medical science and artificial intelligence have helped medical experts find GIT diseases through endoscopic procedures. Wired endoscopy is a controlled procedure that helps the medical expert in disease diagnosis. Manual screening of the endoscopic frames is a challenging and time taking task for medical experts that also increases the missed rate of the GIT disease. An early diagnosis of GIT disease can save human beings from fatal diseases. An automatic deep feature learning-based system is proposed for GIT disease classification. The adaptive gamma correction and weighting distribution (AGCWD) preprocessing procedure is the first stage of the proposed work that is used for enhancing the intensity of the frames. The deep features are extracted from the frames by deep learning models including InceptionNetV3 and GITNet. Ant Colony Optimization (ACO) procedure is employed for feature optimization. Optimized features are fused serially. The classification operation is performed by variants of support vector machine (SVM) classifiers, including the Cubic SVM (CSVM), Coarse Gaussian SVM (CGSVM), Quadratic SVM (QSVM), and Linear SVM (LSVM) classifiers. The intended model is assessed on two challenging datasets including KVASIR and NERTHUS that consist of eight and four classes respectively. The intended model outperforms as compared with existing methods by achieving an accuracy of 99.32% over the KVASIR dataset and 99.89% accuracy using the NERTHUS dataset.

Identifiants

pubmed: 37831692
doi: 10.1371/journal.pone.0292601
pii: PONE-D-23-23428
pmc: PMC10575542
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e0292601

Informations de copyright

Copyright: © 2023 Ramzan et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

Déclaration de conflit d'intérêts

he authors have declared that no competing interests exist.

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Auteurs

Muhammad Ramzan (M)

Department of Computer Science, COMSATS University Islamabad, Wah Campus, Pakistan.

Mudassar Raza (M)

Department of Computer Science, HITEC University Taxila, Taxila, Pakistan.

Muhammad Irfan Sharif (MI)

Department of Information Sciences, University of Education Lahore, Jauharabad Campus, Jauharabad, Pakistan.

Faisal Azam (F)

Department of Computer Science, COMSATS University Islamabad, Wah Campus, Pakistan.

Jungeun Kim (J)

Department of Software and CMPSI, Kongju National University, Cheonan, Korea.

Seifedine Kadry (S)

Department of Applied Data Science, Noroff University College, Kristiansand, Norway.
Artificial Intelligence Research Center (AIRC), Ajman University, Ajman, United Arab Emirates.
Department of Electrical and Computer Engineering, Lebanese American University, Byblos, Lebanon.
MEU Research Unit, Middle East University, Amman, Jordan.

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