用支持向量回归模型(SVR)估计妊娠、收缩期和年龄对女性糖尿病的影响

Rawa Saman Maaroof, Shamazad Rahim, S. O. Salih, Hindreen Abdullah Taher
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引用次数: 0

摘要

本文选取623例糖尿病患者,将数据划分为训练数据集(500个观察值)和测试数据集(123个观察值),目的是评估妊娠周数、收缩期和年龄等因素对女性糖尿病患者的影响。结果表明,与其他核函数相比,径向核函数具有最高的性能,R2 = 83%,这意味着能够解释83%的糖尿病变量的MSE和RMSE分别为(0.000958和0.030956)。且上述三个变量的p值均小于0.01的显著水平,说明三个因素对响应变量的影响具有统计学意义。其中妊娠持续时间(周)对患者的影响为0.401,即妊娠持续时间每增加一周,则糖尿病增加0.401个单位,收缩压和年龄对响应变量均有显著的正向影响,影响量分别为(0.621和0.557)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimating the impact of Pregnancy, Systolic and Age on Diabetes for Women by Using Support Vector Regression Model (SVR)
In this paper we have 623 cases of diabetes patients, the data partitioned in to training dataset (500 observations) and testing dataset (123 observations), and the aim is to estimate the impact of pregnancy duration in weeks, systolic and age as factors on diabetes of the women patients for this purpose SVR has been used. According to the results radial kernel function gave highest performance compared to the other kernel functions, the R2 = 83% this implies the factors capable of explaining 83% of diabetes variable with MSE and RMSE of (0.000958 and 0.030956) respectively. And p-values of the three aforementioned variables are less than the significant level of 0.01, implying that the three factors have a statistically significant impact on the response variable. Where Pregnancy duration in weeks has an impact of 0.401 on the patient, that means if duration increase by one week, then diabetes will increase by 0.401 units, also both Systolic and age have a significant positive effect on the response variable, and the amount of impact is (0.621 and 0.557) respectively.
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