用逻辑回归和特征归一化预测糖尿病

V. Ganesh, Johnson Kolluri, K. V. Kumar
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引用次数: 1

摘要

糖尿病是医学领域的许多主要问题之一,成千上万的人受到糖尿病的影响。多年来,许多研究都在研究这个问题,以检测糖尿病。在这里,我们主要关注的是女性,因为在怀孕期间,她们可能会患上糖尿病,也被称为妊娠糖尿病,正因为如此,未来患2型糖尿病的几率更高,这发生在我们的人体不使用胰岛素激素时,它无法准备它。因此,文献中有许多方法用于分类一个特定的人将来是否会患糖尿病。通常用于此目的的数据集是Pima印度糖尿病数据集,主要用于研究人员对一个实例是否患有糖尿病进行分类。如果这种糖尿病不治疗,会有很多问题,可能会导致其他器官相关疾病。主要的问题出现在肾脏、眼睛和心脏等方面,糖尿病检测的正常方法是去医院或任何医疗中心,我们必须找到医生进行治疗。许多机器学习的研究都是为了这个目的而进行的,许多方法都是利用过去的人的数据提出的,并试图开发用于预测糖尿病的模型。在这里,我们将提出一种使用逻辑回归的方法,这是一种用于检测糖尿病的技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diabetes Prediction using Logistic Regression and Feature Normalization
Diabetes is one of the many major issues in medical field and lakhs of people are affected due to this diabetes. From many years many researches are going on this problem to detect this diabetes. Here we are mainly concerned towards women because during pregnancy they may get diabetes which is also termed as gestational diabetes and due to this there is a higher chance of getting diabetes called type2 in future and this occurs when our human body doesn't use the insulin hormone and it is unable to prepare it. Therefore many methods are there in literature that is used to classify whether a particular human being gets diabetes in future or not. Generally the dataset used for this purpose is Pima Indian diabetes dataset and it is mainly used by the researchers to classify whether an instance has diabetes or not. There are a lot of problems if this diabetes is not treated and it may leads to other organ related diseases. The main problems occur to kidneys, eyes and heart etc. the normal method that is used for this diabetes detection is to visit a hospital or any health care center and we have to reach doctor for treatment. Many researches in machine learning are going on for this purpose and many methods are proposed using the data of people of past and tries to develop models that is used to predict diabetes. In this we are going to propose a method using logistic regression which is technique that is used for detection of diabetes.
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