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  1.  15
    Radiography image analysis using cat swarm optimized deep belief networks.Sura Khalil Abd, Mustafa Musa Jaber & Amer S. Elameer - 2021 - Journal of Intelligent Systems 31 (1):40-54.
    Radiography images are widely utilized in the health sector to recognize the patient health condition. The noise and irrelevant region information minimize the entire disease detection accuracy and computation complexity. Therefore, in this study, statistical Kolmogorov–Smirnov test has been integrated with wavelet transform to overcome the de-noising issues. Then the cat swarm-optimized deep belief network is applied to extract the features from the affected region. The optimized deep learning model reduces the feature training cost and time and improves the overall (...)
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  2.  17
    Deep learning for content-based image retrieval in FHE algorithms.Mustafa Musa Jaber & Sura Mahmood Abdullah - 2023 - Journal of Intelligent Systems 32 (1).
    Content-based image retrieval (CBIR) is a technique used to retrieve image from an image database. However, the CBIR process suffers from less accuracy to retrieve many images from an extensive image database and prove the privacy of images. The aim of this article is to address the issues of accuracy utilizing deep learning techniques such as the CNN method. Also, it provides the necessary privacy for images using fully homomorphic encryption methods by Cheon–Kim–Kim–Song (CKKS). The system has been proposed, namely (...)
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  3.  11
    IoT network security using autoencoder deep neural network and channel access algorithm.Mustafa Musa Jaber, Amer S. Elameer & Saif Mohammed Ali - 2021 - Journal of Intelligent Systems 31 (1):95-103.
    Internet-of-Things (IoT) creates a significant impact in spectrum sensing, information retrieval, medical analysis, traffic management, etc. These applications require continuous information to perform a specific task. At the time, various intermediate attacks such as jamming, priority violation attacks, and spectrum poisoning attacks affect communication because of the open nature of wireless communication. These attacks create security and privacy issues while making data communication. Therefore, a new method autoencoder deep neural network (AENN) is developed by considering exploratory, evasion, causative, and priority (...)
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    Systematic review for lung cancer detection and lung nodule classification: Taxonomy, challenges, and recommendation future works. [REVIEW]Mustafa Musa Jaber & Mustafa Mohammed Jassim - 2022 - Journal of Intelligent Systems 31 (1):944-964.
    Nowadays, lung cancer is one of the most dangerous diseases that require early diagnosis. Artificial intelligence has played an essential role in the medical field in general and in analyzing medical images and diagnosing diseases in particular, as it can reduce human errors that can occur with the medical expert when analyzing medical image. In this research study, we have done a systematic survey of the research published during the last 5 years in the diagnosis of lung cancer classification of (...)
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