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        <dc:title>OPTIMALISASI REGRESI BINOMIAL NEGATIF DENGAN REGULARISASI LASSO MENGGUNAKAN K-FOLD CROSS VALIDATION (STUDI KASUS : JUMLAH KASUS DBD DI JAWA TENGAH TAHUN 2024)</dc:title>
        <dc:creator>Robit Ma’rufi Sabila, NIM.: 22106010081</dc:creator>
        <dc:subject>515.6 Metode Analitik - Matematika</dc:subject>
        <dc:description>Regression is one of the statistical methods used to analyze the relationship&#13;
between dependent and independent variables. For count data, the Poisson&#13;
regression model is commonly used. Poisson regression assumes equidispersion,&#13;
where the mean and variance of the dependent variable are equal. However, in&#13;
practice, Poisson regression often encounters overdispersion, where the variance&#13;
is greater than the mean, making Poisson regression less appropriate. One method&#13;
for addressing overdispersion is Negative Binomial regression, which has a&#13;
dispersion parameter that can accommodate overdispersion in the data. In addition&#13;
to overdispersion, multicollinearity, characterized by high correlations among&#13;
independent variables, can cause regression coefficients to become unstable. The&#13;
use of high-dimensional data can also increase the risk of overfitting. Therefore,&#13;
a variable selection method is needed to produce a simpler and more efficient&#13;
model. To address these issues, Lasso regularization is applied by imposing an L1&#13;
penalty on the regression coefficients, thereby producing more stable parameter&#13;
estimates while simultaneously performing variable selection. This study uses the&#13;
number of Dengue Hemorrhagic Fever (DHF) cases in Central Java in 2024 as the&#13;
dependent variable and 12 independent variables related to health, sanitation, and&#13;
socioeconomic factors. This study aims to apply Negative Binomial regression&#13;
with Lasso regularization using K-Fold Cross Validation. The results show that the&#13;
optimal λ value of 0.4247 selects one variable, namely the Number of Community&#13;
Health Centers (JSKP), resulting in a more parsimonious and efficient model.</dc:description>
        <dc:date>2026-08-03</dc:date>
        <dc:type>Thesis</dc:type>
        <dc:type>NonPeerReviewed</dc:type>
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        <dc:identifier>https://digilib.uin-suka.ac.id/id/eprint/78703/1/22106010081_BAB-I_IV-atau-V_DAFTAR-PUSTAKA.pdf</dc:identifier>
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        <dc:identifier>https://digilib.uin-suka.ac.id/id/eprint/78703/2/22106010081_BAB-II_sampai_SEBELUM-BAB-TERAKHIR.pdf</dc:identifier>
        <dc:identifier>  Robit Ma’rufi Sabila, NIM.: 22106010081  (2026) OPTIMALISASI REGRESI BINOMIAL NEGATIF DENGAN REGULARISASI LASSO MENGGUNAKAN K-FOLD CROSS VALIDATION (STUDI KASUS : JUMLAH KASUS DBD DI JAWA TENGAH TAHUN 2024).  Skripsi thesis, UIN SUNAN KALIJAGA YOGYAKARTA.   </dc:identifier></oai_dc:dc>
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