Toward enhanced skin disease classification using a hybrid RF-DNN system leveraging data balancing and augmentation techniques
Soufiane Hamida,
Driss Lamrani,
Oussama El Gannour
et al.
Abstract:Significant health concerns are associated with skin diseases, and accurate and timely diagnosis is essential for effective treatment and patient management. To improve the classification of cutaneous diseases, we propose a novel hybrid system that incorporates the strengths of random forest (RF) and deep neural network (DNN) algorithms. The system employs data augmentation and balancing techniques to enhance model performance and generalizability. The HAM10000 dataset of diverse dermatoscopic images is used f… Show more
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