Pemodelan Geographically Weighted Regression Menggunakan Pembobot Kernel Fixed dan Adaptive pada Kasus Tingkat Pengangguran Terbuka di Indonesia

Rizki Ramadayani, Fariani Hermin Indiyah, Ibnu Hadi
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引用次数: 1

Abstract

Unemployment Rate (UR) is an indicator for measuring the unemployment. Increase in the number of TPT in Indonesia by 1.84%, this is due to the impact of the covid-19 pandemic. analysis to find out the factors that affect TPT in Indonesia is by using multiple linear regression. The results showed that the data contained heterokedasticity and spatial aspects. Spatial data analysis continued with the point approach is by the Geographically Weighted Regression method (GWR). GWR is a weighted regression that results in a model that is local. GWR modeling uses weighting kernels Fixed Gaussian, Adaptive Gaussian , Fixed Bi-Square, and Adaptive Bi-Square produces that GWR Adaptive Bi-Square better, review value of the R2,AIC and JKG. The ability of the GWR model explains the effect of UR on factors (Labor Force or economically active, Health Complaint and Poverty Percentage) by 89.1%.
失业率(UR)是衡量失业率的一个指标。由于covid-19大流行的影响,印度尼西亚的TPT数量增加了1.84%。采用多元线性回归分析,找出影响印尼TPT的因素。结果表明,数据具有异方差性和空间性。空间数据分析继续采用点法,采用地理加权回归法(GWR)。GWR是一种加权回归,其结果是一个局部模型。GWR建模使用固定高斯、自适应高斯、固定Bi-Square和自适应Bi-Square加权核,产生GWR自适应Bi-Square更好的R2、AIC和JKG的评审值。GWR模型解释UR对要素(劳动力或经济活动、健康投诉和贫困百分比)的影响的能力为89.1%。
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