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MSRFNet for Skin Lesion Segmentation and Deep Learning with Hybrid Optimization for Skin Cancer Detection

Imaging science journal/˜The œimaging science journal(2023)

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摘要
Skin cancer is the irregular growth of skin cells, which is most often termed as cancer, developed by exposure of ultraviolet rays from sun. In this research paper, deep learning enabled hybrid optimization is followed for skin cancer detection and lesion segmentation. Two optimization algorithms are followed for skin lesion segmentation and cancer detection. Here, pre-processing is done by anisotropic diffusion followed by skin lesion segmentation. Here, Multi-Scale Residual Fusion Network (MSRFNet) is utilized for skin lesion segmentation, which is trained by proposed Average Subtraction Student Psychology Based Optimization (ASSPBO). After skin lesion segmentation, necessary features are extracted, followed by skin cancer detection. Skin cancer is detected by Deep Residual Network (DRN) trained by proposed Fractional ASSPBO (FrASSPBO). Moreover, performance of proposed FrASSPBO-DRN is analysed by three performance metrics like testing accuracy, True Positive Rate (TPR), and False Positive Rate (FPR) with values of 93.4%, 94%, and 8.2%.
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关键词
Multi-scale residual fusion network,fractional calculus,average and subtraction based optimizer,student psychology based optimization,deep residual network,skin cancer,Fractional Average Subtraction Student Psychology Based Optimization,True Positive Rate
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