ANALISIS MODEL ARIMA DAN XGBOOST DALAM FORECASTING HARGA SAHAM BANK TERBESAR DI INDONESIA

dc.contributor.advisorArdi, Noper
dc.contributor.authorDiaz, Muhammad
dc.date.accessioned2026-08-10T01:38:54Z
dc.date.issued2026-05-09
dc.description.abstractThe blue-chip banking sector in Indonesia, including BBCA, BBRI, and BBNI, exhibits high volatility and non-linear movements, presenting significant challenges for investors in mitigating financial risk. This study aims to develop and comparatively evaluate the performance of the traditional statistical model, Autoregressive Integrated Moving Average (ARIMA), against the modern machine learning algorithm, Extreme Gradient Boosting (XGBoost), in predicting daily closing stock prices for a one-day horizon (H+1). The research methodology employs a Research and Development (R&D) approach, utilizing historical data for model training and validation. The results demonstrate that the XGBoost model consistently outperforms ARIMA across all tested samples. Specifically, XGBoost achieved a Mean Absolute Percentage Error (MAPE) of 0.55% for BBCA, 1.10% for BBRI, and 0.88% for BBNI, which is significantly lower than ARIMA’s MAPE range of 1.48% to 1.60%. The study concludes that ensemble learning models are more effective at capturing non-linear volatility patterns in the Indonesian capital market and serve as a more reliable decision support tool for investors.
dc.identifier.citationAPA
dc.identifier.kodeprodiKODEPRODI58302#Teknologi Rekayasa Perangkat Lunak
dc.identifier.nidnNIDN0021119207
dc.identifier.nimNIM4342201015
dc.identifier.urihttps://repository.polibatam.ac.id//handle/PL29/4926
dc.language.isoen
dc.publisherPoliteknik Negeri Batam
dc.subjectStock Price Prediction
dc.subjectARIMA
dc.subjectXGBoost
dc.subjectBlue-Chip Banking
dc.subjectIndonesia Capital Market
dc.titleANALISIS MODEL ARIMA DAN XGBOOST DALAM FORECASTING HARGA SAHAM BANK TERBESAR DI INDONESIA
dc.title.alternativeComparative Analysis of ARIMA and XGBoost Models for Forecasting
dc.typeArticle

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