基于混合机器学习模型的饮酒死亡率分析

IF 0.9 Q3 ENGINEERING, MULTIDISCIPLINARY
P. Pragathi, A. N. Rao
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引用次数: 0

摘要

慢性疾病的日常变化和演变对医学领域产生了很大的影响。饮酒也是各种慢性疾病发生的另一个重要和相当大的原因。通常,在诊断过程中收集的数据可以以多种形式表示,如临床价值、报告、图像等。迫切需要对这些数据进行分析,使人民和保健中心/机构了解慢性病的严重性和影响。这项工作主要侧重于分析因饮酒而发生的死亡率。为此,提出了基于线性回归技术的k均值聚类方法。构建线性回归模型,对消费者的整体分析进行预测。仿真结果对模型进行了评价,发现决定系数表明所构建的模型是精确拟合的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mortality analysis of alcohol consumption using a hybrid machine learning model
The day-to-day change and evolution of chronic conditions had a high impact on the medical field. Alcohol consumption is also another important and considerable cause of the occurrence of various chronic conditions. Generally, the data that is being collected during the diagnosis can be represented in various forms such as clinical values, reports, images, etc. There is a dire need of analysing this data to let the people and health centres/institutions knowledgeable about the criticality and effect of chronic conditions. This work mainly focuses on the analysis of the mortality rate that occurs due to alcohol consumption. To achieve this, K-means clustering with linear regression technique is proposed. The linear regression model is constructed to forecast the analysis of consumers on the whole. The simulation results evaluate the model and it is observed that the coefficient of determination exhibits that the constructed model is found to be fitting precisely.
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来源期刊
CiteScore
2.00
自引率
27.30%
发文量
53
期刊介绍: Most of the research and experiments in the field of engineering have devoted significant efforts to modelling and simulation of various complicated phenomena and processes occurring in engineering systems. IJESMS provides an international forum and refereed authoritative source of information on the development and advances in modelling and simulation, contributing to the understanding of different complex engineering systems. IJESMS is designed to be a multi-disciplinary, fully refereed, international journal.
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