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ARIMA with Attention-based CNN-LSTM and XGBoost hybrid model for stock prediction in the US stock market

Absteact: Stock price forecasting is considered one of the most difficult tasks in financial forecasting. Combining ARIMA with neural networks helps to enhance the model’s predictive capabilities when dealing with complex, nonlinear time series data. Attention-based CNN-LSTM and XGBoost hybrid model...

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Bibliografiske detaljer
Hovedforfatter: Liang Luocheng
Format: Artigo
Sprog:Inglês
Udgivet: EDP Sciences 2024-01-01
Serier:SHS Web of Conferences
Online adgang:https://www.shs-conferences.org/articles/shsconf/pdf/2024/16/shsconf_edma2024_02001.pdf
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