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Classification of Skin Lesions by using Extended-Incremental Convolutional Neural Network

机译:使用延长增量卷积神经网络对皮肤病变进行分类

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Order of skin sores in different dangerous sort assumes a pivotal job in diagnosing different, neighborhood and quality related, ailments in the field of therapeutic science. Grouping of these sores in a few carcinogenic sorts i.e Melanoma(MEL), Melanomic Neves(NV), Basal Cell Carcinoma(BCC), Actinic Keratosis(AKIEC), Benign Keratosis(BKL )Dermatofibroma(DF) and Vascular Lesion(VASC) gives some understanding about the infection. Skin malignancy is the most deadly kind of malignancy however in the event that these infections are recognized in beginning times, at that point patients can have a high recurrence of recuperation. A few ways to deal with programmed arrangement have been investigated by numerous creators, utilizing different systems and methodologies however this paper proposed an extended version of novel Incremental methodology for Convolution Neural Network on dermoscopy pictures for characterization of skin sores in different skin malignant growths. This is a summed up methodologym subsequently can be executed in different calculations for accomplishing higher exactness. Worldwide Skin Imaging Collaboration (ISIC) 2018 test dataset is utilized in this paper. The methodology utilized in this paper yields an accuracy of more than 95%.
机译:皮肤溃疡的危险性不同的排序顺序假定在治疗科学领域的诊断不同,居委会和质量相关的,疾病的关键工作。在一些致癌种种这些疮的分组即黑色素瘤(MEL),Melanomic内维斯(NV),基底细胞癌(BCC),光化性角化病(AKIEC),良性角化病(BKL)皮肤纤维瘤(DF)和血管病变(VASC)给出了解一些有关感染。皮肤恶性肿瘤是最致命的一种恶性肿瘤然而,在这些感染是在开始时承认,在这一点上病人可有休养的高复发的事件。有几个方法来处理程序的安排已被众多创作者的调查,利用不同的系统和方法,但是本文的皮肤镜的照片在不同的皮肤恶性生长皮肤溃疡的特性提出了新的增量方法的卷积神经网络的扩展版本。这是一个总结methodologym随后可以在不同的计算用于实现更高的精确性来执行。全世界皮肤成像协作(ISIC)2018测试数据集被用在本文中。在本文中所用的方法产生的超过95%的准确度。

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