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A Two-Stage Forecasting System for CPU Workload Prediction in Private Clouds

arXiv · AI, language, vision and robotics · article · Sep 3, 2026 · UTC

Accurate cloud resource forecasting is essential for proactive resource provisioning, maintaining Quality of Service (QoS), and reducing operational costs in dynamic cloud environments. The existing forecasting approaches predominantly estimate future CPU workload directly from historical resource traces, which often overlook the relationship between customer service demand and subsequent resource consumption. This study proposes a two-stage integrated forecasting model that explicitly models this dependency by first forecasting customer service requests, expressed as Transactions Per Second (

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Evidence & attribution

First collected: 2026-09-21T05:11:56.580Z. This is not the publication date.