Nonparametric Regression Modeling with Fourier Series Approach on Poverty Cases in West Sumatra Province

Melin Wanike Ketrin, Fadhilah Fitri, Atus Amadi putra, Zilrahmi
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Abstract

Poverty is a complex problem that has an impact on various social problems such as education, unemployment, health and economic growth. Therefore, the problem of poverty is important to overcome in order to create population welfare. One of the analyses that can be used to model the percentage of poverty is regression analysis. Regression analysis is divided into two approaches, namely parametric and nonparametric. Parametric regression has several assumptions while, the only assumption nonparametric regression shape of the curve does not form a certain pattern. There are several approaches to nonparametric regression, one of which is the Fourier Series. The purpose of this study is to model the percentage of poverty in West Sumatra Province. The unclear shape of the curve in the data used is a consideration for using nonparametric regression. Then it is known that the data used in this study is data per region which tends to have a fluctuating nature. So it is suitable to use the Fourier series approach. In this research, nonparametric regression modeling with one, two, and three oscillation parameters was attempted. The best model was obtained which consisted of two oscillation parameters with a Generalized Cross Validation (GCV) value of 2.110 and R² of 92.44%.
西苏门答腊省贫困案例的傅里叶级数非参数回归建模
贫穷是一个复杂的问题,对教育、失业、保健和经济增长等各种社会问题都有影响。因此,为了创造人口福利,必须克服贫困问题。其中一种可以用来模拟贫困百分比的分析是回归分析。回归分析分为参数分析和非参数分析两种方法。参数回归有几个假设,而唯一的假设是非参数回归曲线的形状没有形成一定的模式。非参数回归有几种方法,其中之一是傅里叶级数。本研究的目的是建立西苏门答腊省贫困比例的模型。在使用非参数回归的数据中,曲线形状不明确是一个考虑因素。那么,我们知道,本研究中使用的数据是每个地区的数据,往往具有波动性。所以用傅里叶级数方法是合适的。在本研究中,尝试了一个、两个和三个振荡参数的非参数回归建模。由两个振荡参数组成的最佳模型,GCV值为2.110,R²为92.44%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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