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A Survey on Utilization of the Machine Learning Algorithms for the Prediction of Erythemato Squamous Diseases

机译:机器学习算法在红斑鳞状疾病预测中的应用研究

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The aim of this study list the contributions of various machine learning algorithms for the prediction of Erythemato Squamous Diseases (ESDs) and it is very useful for the budding researchers to do research in this field. In the advent of ozone depletion the ultra violet radiation is the major cause of many skin diseases, which are leading to skin cancer. Early detection of skin cancer is more important to avoid human loses and especially the white skinned people are more affected. The Asian and African race people are less affected as they have melanin in their skin. The American's are directly and more widely affected by the ozone depletion, due to this ESD, which is predominant among the skin diseases. Due to technology advancements a large amount of data are deposited. In these data the information is hidden as raw data and with latest methodologies and technologies like Data Mining, neural networks, fuzzy systems, Genetic and Evolutionary computing a pattern can be evolved to study them. Guvenir et al. (1998) studied about ESDs and contributed 366 patients data with 34 features consisting of clinical and histopathological data in the dermatology dataset (The data taken from School of Medicine in Gazi University and the department of Computer Science in Bilkent University, Turkey; and it is available in the URL (http://archive.ics.uci.edu/ml/datasets/Dermatology) in the year 1998. This survey study gives a brief description about the contribution of what in the field of ESDs in Chronological order from the year 1998 till 2013. In this study we intend to contribute various machine learning algorithms dealing with ESDs.
机译:这项研究的目的列出了各种机器学习算法对预测红斑鳞状上皮疾病(ESD)的贡献,这对于正在萌芽的研究人员进行该领域的研究非常有用。在臭氧消耗的出现中,紫外线辐射是许多皮肤疾病的主要原因,这些皮肤疾病导致皮肤癌。早期发现皮肤癌对于避免人流失更为重要,尤其是皮肤白皙的人受到的影响更大。亚洲和非洲种族的人皮肤中含有黑色素,因此受影响较小。由于这种ESD(主要在皮肤疾病中),美国人受到臭氧消耗的直接和广泛影响。由于技术的进步,大量的数据被存储。在这些数据中,信息被隐藏为原始数据,并且使用最新的方法和技术(例如数据挖掘,神经网络,模糊系统,遗传和进化计算),可以演变出一种模式来对其进行研究。 Guvenir等。 (1998年)对ESD进行了研究,贡献了366例患者数据,其中包括皮肤病学数据集中的临床和组织病理学数据(包括来自Gazi大学医学院和土耳其Bilkent大学计算机科学系的34个特征)。可从1998年在URL(http://archive.ics.uci.edu/ml/datasets/Dermatology)中获得。此调查研究简要介绍了ESD在按时间顺序排列的ESD领域中的贡献。 1998年至2013年。在这项研究中,我们打算为处理ESD的各种机器学习算法做出贡献。

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