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HHO-Enhanced Deep Learning Approach for Accurate Papilledema Detection

  • 2025
  • OriginalPaper
  • Chapter
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Abstract

This chapter explores the development of a deep learning system for the accurate detection of papilledema, a critical optic nerve disorder, using fundus photographs. The study focuses on the application of the Harris Hawks Optimization (HHO) algorithm to optimize the hyperparameters of convolutional neural networks (CNNs), resulting in improved performance and faster training times. Key topics include the literature review of existing papilledema detection methods, the proposed model architecture combining CNN with HHO, and the experimental results demonstrating the superiority of the HHO-optimized model. The study compares the proposed model with various pretrained models such as EfficientNetB0, EfficientNetB3, DenseNet121, and VGG16, highlighting its superior accuracy of 99.7%. The conclusion emphasizes the potential of deep learning algorithms, particularly those enhanced by optimization techniques like HHO, in the diagnosis and classification of papilledema, paving the way for future research in this field.

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Title
HHO-Enhanced Deep Learning Approach for Accurate Papilledema Detection
Authors
Marwa Mostafa Yassin
Nahla A. Belal
Aliaa Youssif
Copyright Year
2025
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-96-6929-5_41
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