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Skin Cancer Classification with Deep Convolutional Neural Networks

机译:皮肤癌分类与深度卷积神经网络

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摘要

Skin cancers are one of the most common cancers in the world. Early detections and treatments of skin cancers can greatly improve the survival rates of patients. In this paper, a skin lesions classification system is developed with deep convolutional neural networks of ResNet50, which may help dermatologists to recognize skin cancers earlier. We utilize the ResNet50 as a pre-trained model. Then, by transfer learning, it is trained on our skin lesions dataset. Image preprocessing and dataset balancing methods are used to increase the accuracy of the classification model. In classification of skin diseases, our model achieves an overall accuracy of 83.74% on nine-class skin lesions. The experimental results show an impressive effect of the ResNet50 model in finegrained skin lesions classification and skin cancers recognition.
机译:皮肤癌是世界上最常见的癌症之一。 皮肤癌的早期检测和治疗可以大大提高患者的存活率。 在本文中,皮肤病变分类系统是用Reset50的深度卷积神经网络开发的,这可能有助于皮肤科医生早些时候识别皮肤癌症。 我们利用Reset50作为预先训练的模型。 然后,通过转移学习,它培训在我们的皮肤病尼数据集上。 图像预处理和数据集平衡方法用于提高分类模型的准确性。 在皮肤病的分类中,我们的模型在九级皮肤病因地实现了83.74%的整体准确性。 实验结果表明,Reset50模型在Finegreat皮肤病变分类和皮肤癌症识别中令人印象深刻的影响。

著录项

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  • 作者单位

    Shanghai Dev Ctr Comp Software Technol Shanghai Key Lab Comp Software Testing &

    Evaluati Shanghai 201112 Peoples R China;

    Shanghai Dev Ctr Comp Software Technol Shanghai Key Lab Comp Software Testing &

    Evaluati Shanghai 201112 Peoples R China;

    Maternal &

    Child Hlth Care Hosp Hainan Prov Dept Plast &

    Reconstruct Surg Haikou 570206 Hainan Peoples R China;

    Shanghai Dev Ctr Comp Software Technol Shanghai Key Lab Comp Software Testing &

    Evaluati Shanghai 201112 Peoples R China;

    Shanghai Jiao Tong Univ Shanghai Peoples Hosp 9 Dept Plast &

    Reconstruct Surg Sch Med Shanghai 200011 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 放射卫生;
  • 关键词

    Skin Cancer; Convolutional Neural Networks; Image Classification;

    机译:皮肤癌;卷积神经网络;图像分类;

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