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March 3, 2026Knowledge and Information Systems0 citations

Encoder–decoder-based workload forecasting framework for database-as-a-service

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YCYunlong ChengXHXiuqi HuangXGXiaofeng Gao

Key Points

  • Employing an encoder-decoder model, workload forecasting shows increased accuracy for database systems, leading to better resource management.
  • The approach leverages machine learning techniques to predict database workloads, improving overall service efficiency and performance.
  • The encoder-decoder framework utilizes historical data to forecast future workloads, effectively addressing demand fluctuations.
  • Such predictive analytics may enable optimal resource allocation, ultimately enhancing the user experience in database services.
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Cite This Study

Cheng et al. (2026) studied this question.

synapsesocial.com/papers/69a765c2badf0bb9e87da505https://doi.org/10.1007/s10115-026-02686-5
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