An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]

Lung cancer is a common cause of death among people throughout the world. Lung cancer detection can be done in several ways, such as radiography, magnetic resonance imaging (MRI) and computed tomography (CT). These methods take up a lot of resources in terms of time and money. However, CT has good f...

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Main Authors: Abdullah, Mohd Firdaus, Sulaiman, Siti Noraini, Osman, Muhammad Khusairi, A. Karim, Noor Khairiah, Isa, Iza Sazanita
Format: Conference or Workshop Item
Language:English
Published: 2020
Subjects:
Online Access:https://ir.uitm.edu.my/id/eprint/69745/1/69745.pdf
https://ir.uitm.edu.my/id/eprint/69745/
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spelling my.uitm.ir.697452022-11-17T04:40:43Z https://ir.uitm.edu.my/id/eprint/69745/ An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.] Abdullah, Mohd Firdaus Sulaiman, Siti Noraini Osman, Muhammad Khusairi A. Karim, Noor Khairiah Isa, Iza Sazanita Medical technology Computer applications to medicine. Medical informatics T Technology (General) Technological innovations Lung cancer is a common cause of death among people throughout the world. Lung cancer detection can be done in several ways, such as radiography, magnetic resonance imaging (MRI) and computed tomography (CT). These methods take up a lot of resources in terms of time and money. However, CT has good for lung cancer detection, offers a lower cost, short imaging time and widespread availability. Early diagnosis of lung cancer can help doctors to treat patients in order to reduce the number of mortalities. This project presents an intelligent CAD system for automated detection of thorax region in CT scan of lung cancer. The primary aim of this research is to propose an intelligent, fast and accurate method for lung cancer detection. The proposed method involved the development of DCNN network architecture. It comprises the following steps which involves designed the convolution layer, activation function, max pooling, fully-connected layer and output size. We present three DCNN structures to find the most effective network for thorax and non-thorax region detection. All networks were trained using 12866 images and validate the performance using 5514 images. Simulation results showed that Deep Convolutional Neural Network were able to classify the thorax and non-thorax regions with good performance with an accuracy of 99.42%. This may be considered a promising aspect in realizing an intelligent, fast and accurate method for lung cancer detection. 2020 Conference or Workshop Item PeerReviewed text en https://ir.uitm.edu.my/id/eprint/69745/1/69745.pdf An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]. (2020) In: UNSPECIFIED.
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic Medical technology
Computer applications to medicine. Medical informatics
T Technology (General)
Technological innovations
spellingShingle Medical technology
Computer applications to medicine. Medical informatics
T Technology (General)
Technological innovations
Abdullah, Mohd Firdaus
Sulaiman, Siti Noraini
Osman, Muhammad Khusairi
A. Karim, Noor Khairiah
Isa, Iza Sazanita
An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]
description Lung cancer is a common cause of death among people throughout the world. Lung cancer detection can be done in several ways, such as radiography, magnetic resonance imaging (MRI) and computed tomography (CT). These methods take up a lot of resources in terms of time and money. However, CT has good for lung cancer detection, offers a lower cost, short imaging time and widespread availability. Early diagnosis of lung cancer can help doctors to treat patients in order to reduce the number of mortalities. This project presents an intelligent CAD system for automated detection of thorax region in CT scan of lung cancer. The primary aim of this research is to propose an intelligent, fast and accurate method for lung cancer detection. The proposed method involved the development of DCNN network architecture. It comprises the following steps which involves designed the convolution layer, activation function, max pooling, fully-connected layer and output size. We present three DCNN structures to find the most effective network for thorax and non-thorax region detection. All networks were trained using 12866 images and validate the performance using 5514 images. Simulation results showed that Deep Convolutional Neural Network were able to classify the thorax and non-thorax regions with good performance with an accuracy of 99.42%. This may be considered a promising aspect in realizing an intelligent, fast and accurate method for lung cancer detection.
format Conference or Workshop Item
author Abdullah, Mohd Firdaus
Sulaiman, Siti Noraini
Osman, Muhammad Khusairi
A. Karim, Noor Khairiah
Isa, Iza Sazanita
author_facet Abdullah, Mohd Firdaus
Sulaiman, Siti Noraini
Osman, Muhammad Khusairi
A. Karim, Noor Khairiah
Isa, Iza Sazanita
author_sort Abdullah, Mohd Firdaus
title An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]
title_short An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]
title_full An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]
title_fullStr An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]
title_full_unstemmed An intelligent CAD system for automated detection of thorax region in CT scan of lung cancer / Mohd Firdaus Abdullah ... [et al.]
title_sort intelligent cad system for automated detection of thorax region in ct scan of lung cancer / mohd firdaus abdullah ... [et al.]
publishDate 2020
url https://ir.uitm.edu.my/id/eprint/69745/1/69745.pdf
https://ir.uitm.edu.my/id/eprint/69745/
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score 13.18916