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首页> 外文期刊>International Journal of Computer Trends and Technology >Prediction And Diagnosis of Liver Disease In Human Using Machine Learning
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Prediction And Diagnosis of Liver Disease In Human Using Machine Learning

机译:利用机器学习的人类肝病预测与诊断

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Disease diagnosis is the most vital task in medicine and this mostly depends on doctor’s intuition based on experiences in the past. Unfortunately, the difficulties in recognizing correct symptoms results in a misdiagnosis. To avoid such medical misdiagnosis, this study utilized dataset to intelligently detect liver disease in humans. This study aimed to implement an effective data mining method and algorithm to predict and diagnose the occurrence of liver diseases in human in order to eliminate the use of manual methods of analysis relating to liver diseases. The study embodies case studies, systematic literature reviews and surveys. Important requirements were also identified in related papers. The relevant documents obtained were qualitatively analyzed for convergence and relevant details were extracted using inductive approach. Subsequently, a liver disease diagnosis system (LDDS) was developed to tackle the problem of early detection of the disease in humans. LDDS is a web application created to ease the prediction of the occurrence of liver disease in humans.
机译:疾病诊断是医学中最重要的任务,这主要取决于医生的直觉,基于过去的经验。不幸的是,识别正确症状的困难导致误诊。为了避免这种医疗误诊,本研究利用数据集来智能地检测人类的肝病。本研究旨在实施有效的数据挖掘方法和算法,以预测和诊断人类肝脏疾病的发生,以消除使用与肝病有关的手工分析方法。该研究体现了案例研究,系统文献审查和调查。在相关论文中也确定了重要要求。使用归纳方法对所得相关文件进行定性分析,并提取相关细节。随后,开发了一种肝病诊断系统(LDD)以解决人类早期检测疾病的问题。 LDDS是一个创建的Web应用程序,以便于缓解人类肝病的发生。

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