Breast Cancer Detection Using Deep Learning
This research aims to develop an image classification model by integrating long short-term memory (LSTM) with a convolutional neural network (CNN). LSTM, which is a type of neural network, can retain and retrieve long-term dependencies and improves the feature extraction capabilities of CNN when use...
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Format: | Article |
Language: | Arabic |
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University of Information Technology and Communications
2024-12-01
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Series: | Iraqi Journal for Computers and Informatics |
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Online Access: | https://ijci.uoitc.edu.iq/index.php/ijci/article/view/500 |
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author | ahmed Abed Maeedi Dalal Abdulmohsin Hammood Shatha Mezher Hasan |
author_facet | ahmed Abed Maeedi Dalal Abdulmohsin Hammood Shatha Mezher Hasan |
author_sort | ahmed Abed Maeedi |
collection | DOAJ |
description | This research aims to develop an image classification model by integrating long short-term memory (LSTM) with a convolutional neural network (CNN). LSTM, which is a type of neural network, can retain and retrieve long-term dependencies and improves the feature extraction capabilities of CNN when used in a multi-layer setting. The proposed approach outperforms typical CNN classifiers in image classification. The model’s high accuracy is due to the data passing through two stages and multiple layers: first the LSTM layer, followed by the CNN layer for accurate classification. Convolutional and recurrent neural networks are combined in the recommended model, which demonstrates exceptional performance on various classification tasks. The model achieved a training accuracy of 0.9899 and testing accuracy of 0.9463 using real data, which indicates its success and applicability compared with other models. |
format | Article |
id | doaj-art-f30fc6a7f0694e7e991be7acba0ddfbd |
institution | Kabale University |
issn | 2313-190X 2520-4912 |
language | Arabic |
publishDate | 2024-12-01 |
publisher | University of Information Technology and Communications |
record_format | Article |
series | Iraqi Journal for Computers and Informatics |
spelling | doaj-art-f30fc6a7f0694e7e991be7acba0ddfbd2025-01-05T22:17:49ZaraUniversity of Information Technology and CommunicationsIraqi Journal for Computers and Informatics2313-190X2520-49122024-12-0150212213110.25195/ijci.v50i2.500463Breast Cancer Detection Using Deep Learningahmed Abed Maeedi0Dalal Abdulmohsin Hammood1Shatha Mezher Hasan2Iraqi Commission for Computers & InformaticsMiddle Technical UniversityIraqi Commission for Computers and InformaticsThis research aims to develop an image classification model by integrating long short-term memory (LSTM) with a convolutional neural network (CNN). LSTM, which is a type of neural network, can retain and retrieve long-term dependencies and improves the feature extraction capabilities of CNN when used in a multi-layer setting. The proposed approach outperforms typical CNN classifiers in image classification. The model’s high accuracy is due to the data passing through two stages and multiple layers: first the LSTM layer, followed by the CNN layer for accurate classification. Convolutional and recurrent neural networks are combined in the recommended model, which demonstrates exceptional performance on various classification tasks. The model achieved a training accuracy of 0.9899 and testing accuracy of 0.9463 using real data, which indicates its success and applicability compared with other models.https://ijci.uoitc.edu.iq/index.php/ijci/article/view/500breast cancer, deep learning, cnn, neural networks, hybrid lstm-cnn. |
spellingShingle | ahmed Abed Maeedi Dalal Abdulmohsin Hammood Shatha Mezher Hasan Breast Cancer Detection Using Deep Learning Iraqi Journal for Computers and Informatics breast cancer, deep learning, cnn, neural networks, hybrid lstm-cnn. |
title | Breast Cancer Detection Using Deep Learning |
title_full | Breast Cancer Detection Using Deep Learning |
title_fullStr | Breast Cancer Detection Using Deep Learning |
title_full_unstemmed | Breast Cancer Detection Using Deep Learning |
title_short | Breast Cancer Detection Using Deep Learning |
title_sort | breast cancer detection using deep learning |
topic | breast cancer, deep learning, cnn, neural networks, hybrid lstm-cnn. |
url | https://ijci.uoitc.edu.iq/index.php/ijci/article/view/500 |
work_keys_str_mv | AT ahmedabedmaeedi breastcancerdetectionusingdeeplearning AT dalalabdulmohsinhammood breastcancerdetectionusingdeeplearning AT shathamezherhasan breastcancerdetectionusingdeeplearning |