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Skin cancer classification dermatologist-level based on deep learning model

Saad Albawi, Muhanad Hameed Arif, Jumana Waleed

2022Acta Scientiarum. Technology/Acta scientiarum. Technology22 citationsDOIOpen Access PDF

Abstract

Medical image analysis is a significant burden for doctors, therefore, it is used to supplement image processing. Many medical images are assumed to be diagnosed as accurately as healthcare experts when the precision of image detection and recognition in an image processing approach matches that of a human being. Artificial Intelligence (AI) based predictive modelling is an important component of many healthcare solutions. This paper develops and implements a neural network-based method for skin cancer prediction to expose the neural network's strength in this field. This method determines which form of deep learning is best for diagnosing diseases with an accuracy exceeds human ability in terms of speed and accuracy, and determines the optimum number of layers and neurons in each layer for both Convolutional Neural network (CNN) and Deep Neural Network (DNN) to obtain the best possible precision. The results of the proposed method showed impressive results, especially for CNN. There is a clear superiority of CNN over DNN. The CNN (which relies on convolution filters) provides great results in extracting features due to the focus on the intended area of the image without the surrounding area region of interest. This led to a remarkable decrease in the number of parameters and the speed of attaining results with higher accuracy. The results indicated that CNN has a high accuracy rate compared with the other existing methods where the accuracy rate of CNN is 98.5%.

Topics & Concepts

Convolutional neural networkArtificial intelligenceComputer scienceDeep learningConvolution (computer science)Pattern recognition (psychology)Field (mathematics)Artificial neural networkImage (mathematics)Focus (optics)Image processingMachine learningMathematicsPure mathematicsOpticsPhysicsCutaneous Melanoma Detection and Management
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