Modified metaheuristics with stacked sparse denoising autoencoder model for cervical cancer classification

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作者
Vaiyapuri, Thavavel [1 ]
Alaskar, Haya [1 ]
Syed, Liyakathunisa [2 ]
Aljohani, Eman [2 ]
Alkhayyat, Ahmed [3 ]
Shankar, K. [4 ]
Kumar, Sachin [4 ]
机构
[1] Department of Computer Science, College of Computer Engineering and Sciences, Prince Sattam bin Abdulaziz University, Al Kharj, Saudi Arabia
[2] Department of Computer Science, College of Computer Science and Engineering, Taibah University, Madinah, Saudi Arabia
[3] College of Technical Engineering, The Islamic University, Najaf, Iraq
[4] Big Data and Machine Learning Lab, South Ural State University, Chelyabinsk,454080, Russia
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Computer aided diagnosis - Computer vision - Decision making - Diseases - Image classification - Image segmentation - Learning systems - Medical imaging;
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摘要
Cervical cancer is the most commonly diagnosed cancer among women globally, with high mortality rate. For early diagnosis, automated and accurate cervical cancer classification approaches can be developed through effective classification of Pap smear cell images. The current study introduces a novel Modified Firefly Optimization Algorithm with Deep Learning-enabled cervical cancer classification (MFFOA-DL3) model for the classification of Pap Smear Images (PSI). The proposed MFFOA-DL3 model examines the PSI for the existence of cervical cancer cells. To accomplish this, the proposed MFFOA-DL3 model primarily applies Bilateral Filtering (BF)-based noise removal approach to get rid of the noise. Then, Kapur's entropy-based image segmentation technique is applied to determine the affected regions. Moreover, EfficientNet technique is also applied to generate the feature vectors. Finally, MFFOA with Stacked Sparse Denoising Autoencoder (SSDA) model is exploited to classify the PSI. In current study, MFFOA is utilized to appropriately modify the parameters related to SSDA model. The proposed MFFOA-DL3 model was experimentally validated using benchmark dataset. The results attained from extensive comparative analysis highlighted the better performance of MFFOA-DL3 model over other recent approaches. © 2022
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