用于机器学习的疟疾患者数据基准收集:也门哈德拉穆的一项研究

R. Al-Dhaibani, Mohammed A. Bamatraf, Khalid.Q. Sha'Afal
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引用次数: 0

摘要

缺乏关于卫生和医药数据收集的研究;特别是在地方病方面。这项研究旨在创建和发布一个数据基准,并使其可供研究人员使用。疟疾一直是许多国家的地方性传染病之一。必须注意。这些疾病需要医生和利益相关者高度重视诊断、预测和控制。数据挖掘和数据分析的第一步是收集数据,从这些数据中提取知识,并加快信息的提取。使用数据挖掘技术可以构建预测模型。在专业医生的直接监督下,收集了大约一千例最终确诊的疟疾患者,并对其进行了预处理以供今后使用。我们报告了记录了40个属性数据的患者百分比,并选择了27个体征和症状。数据质量根据统计评分进行评估。在此基础上,运用常用的统计度量和数据挖掘技术对其进行了基础分析。本研究使用SPSS工具进行统计分析,使用WEKA工具进行数据挖掘。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data Benchmark Collection of Patients with Malaria for Machine Learning: a study in Hadhramout- Yemen
Studies on data collection of health and medicine are lacking; especially in endemic diseases. This study aimed to create and publish a data benchmark and make it available for researchers. Malaria is one of the endemic and infectious diseases consistently in many countries. must attention. Such diseases need high attention to diagnose, predict, and control by physicians and stakeholders. The initial step of data mining and data analysis is data collection to draw knowledge of this data and speed in the elicitation information. Using data mining techniques can enable one to build predictive models. About a thousand cases of finally diagnosed malaria patients have been collected under the direct supervision of specialized doctors and preprocessed for future use. We reported the percentage of patients with data recorded for 40 attributes and selected 27 signs and symptoms. Data quality was assessed based on statistical scores. Later, Basic analysis is presented in this paper too, employing common statistics metrics and data mining as well. This study uses the SPSS tool for statistical analysis and WEKA as a tool for data mining.
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