An Observation and Analysis the role of Convolutional Neural Network towards Lung Cancer Prediction
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Published:2023-12-05
Issue:6(Suppl.)
Volume:20
Page:2568
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ISSN:2411-7986
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Container-title:Baghdad Science Journal
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language:
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Short-container-title:Baghdad Sci.J
Author:
Mitra SuranjanaORCID,
Majumder Annwesha BanerjeeORCID,
Saha TanusreeORCID
Abstract
Lung cancer is one of the most serious and prevalent diseases, causing many deaths each year. Though CT scan images are mostly used in the diagnosis of cancer, the assessment of scans is an error-prone and time-consuming task. Machine learning and AI-based models can identify and classify types of lung cancer quite accurately, which helps in the early-stage detection of lung cancer that can increase the survival rate. In this paper, Convolutional Neural Network is used to classify Adenocarcinoma, squamous cell carcinoma and normal case CT scan images from the Chest CT Scan Images Dataset using different combinations of hidden layers and parameters in CNN models. The proposed model was trained on 1000 CT Scan Images of cancerous and non-cancerous cells to find the best combination of parameters in CNN to predict lung cancer accurately. The proposed system recorded the highest accuracy of 92.79%. In addition to that, the paper addresses 192 observations made using the CNN model.
Publisher
College of Science for Women
Subject
General Physics and Astronomy,Agricultural and Biological Sciences (miscellaneous),General Biochemistry, Genetics and Molecular Biology,General Mathematics,General Chemistry,General Computer Science
Cited by
1 articles.
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1. A Federated Learning-based Model for the Detection of Lung Cancer from CT Scan Images;2024 6th International Conference on Electrical Engineering and Information & Communication Technology (ICEEICT);2024-05-02