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Liver Disease Detection Due to Excessive Alcoholism Using Data Mining Techniques

机译:使用数据挖掘技术检测由于过度酗酒引起的肝病

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Alcohol is consumed in excess by millions of people across the world. Alcohol consumption is directly linked to life threatening liver diseases such as cirrhosis which may ultimately lead to death. Early detection of liver disease caused by over consumption of alcohol would help in saving lives of many people. By detecting liver disease in its early stage, it can be diagnosed in time and may lead to full recovery in some patients. This paper proposes detection as well as to predict the presence of liver disease using data mining algorithms. We will make a decision tree for the dataset and then the rules will be generated. After determining the rules, we will use different data mining algorithms to train and test the dataset to detect the liver disease. The data was collected from UCI repository and our training dataset was developed. It consists of 7 different attributes having 345 instances. In the dataset, different categories of blood tests are taken into considerations which are directly linked to liver diseases that may arise due to excessive alcohol consumption along with frequency of alcohol consumption. Based on the type of liver disease detected, prognosis may be suggested.
机译:全世界数百万的人过量饮酒。饮酒与威胁生命的肝脏疾病(例如肝硬化)直接相关,后者可能最终导致死亡。尽早发现由过量饮酒引起的肝脏疾病,将有助于挽救许多人的生命。通过早期发现肝脏疾病,可以及时诊断出肝病,并且可以使某些患者完全康复。本文提出了检测以及使用数据挖掘算法预测肝病的存在。我们将为数据集创建决策树,然后将生成规则。确定规则后,我们将使用不同的数据挖掘算法来训练和测试数据集以检测肝病。数据是从UCI资料库中收集的,并开发了我们的训练数据集。它由具有345个实例的7个不同属性组成。在数据集中,考虑了不同类别的血液检查,这些检查直接与由于过量饮酒和饮酒频率引起的肝脏疾病有关。根据检测到的肝病类型,可以建议预后。

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