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A review of data mining techniques for diagnosing hepatitis

机译:对肝炎诊断数据挖掘技术的综述

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Recently, data mining techniques are widely used in the field of bioinformatics to analyze biomedical data. These techniques have given efficient results in the prediction and classification of diseases severity and diagnosis of sicknesses. Hepatitis is a liver inflammation; it can affect people of all ages. Millions of people globally are thought to be affected by hepatitis. Accurate and early diagnosis of hepatitis can save many patients. Hepatitis is a major challenge for public health care services, due to limited clinical diagnosis of hepatitis disease in its early stages. This paper presents an overview of the recent state-of-the-art data mining techniques used for diagnosing hepatitis and shows the performance of different techniques in term of accuracy and training time. Such review helps in the implementation, development and evaluation of efficient clinical decision support systems; where accurate diagnosis is the most important factor.
机译:最近,数据挖掘技术广泛用于生物信息学领域,以分析生物医学数据。这些技术在疾病严重程度和诊断疾病的预测和分类中具有有效的结果。肝炎是一种肝脏炎症;它会影响所有年龄段的人。全球数百万人被认为受到肝炎的影响。准确和早期诊断肝炎可以节省许多患者。由于其早期阶段的肝炎病有限诊断,肝炎是公共卫生保健服务的重大挑战。本文概述了最近的最先进的数据挖掘技术,用于诊断肝炎,并以准确性和培训时间展示不同技术的性能。这种审查有助于实施高效临床决策支持系统的实施,开发和评估;如果准确的诊断是最重要的因素。

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