Weighted adaptive load and handoff equilibrium: a novel resource allocation framework for cloud radio access networks with load prediction and handoff optimization
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Abstract (EN)
The effective assignment of Remote Radio Units (RRUs) to Baseband Units (BBUs) in Cloud Radio Access Networks (C-RAN) remains a critical challenge, particularly in large-scale deployments where dynamic load patterns and frequent handoffs necessitate rapid adaptation. This thesis addresses this challenge through an innovative optimization approach that balances computational efficiency with performance in RRU-BBU assignments. The thesis presents a novel approach through the development of the WeigHted Adaptive Load and handoff Equilibrium (WHALE) framework, addressing three critical challenges: RRU load prediction, handoff optimization, and load balancing. The prediction framework combines Long Short-Term Memory (LSTM) and Generalized Autoregressive Conditional Heteroskedasticity (GARCH) models. In moderate-scale tests, WHALE achieves most possible handoff transitions with nearly half the reduction in execution time. For large-scale scenarios, it significantly reduces execution time while maintaining performance comparable to Genetic Algorithm (GA). The prediction-based variant (WHALE-P) achieves nearly all of GA's performance in handoff optimization and outperforms GA in load balancing with notably lower error rates. Keywords: Cloud Radio Access Networks, RRU Load Prediction, Handoff Optimization, LSTM-GARCH
Author
Muhammet Fatih Ulu
Institution
How to Cite
Muhammet Fatih Ulu (Master Thesis). Weighted adaptive load and handoff equilibrium: a novel resource allocation framework for cloud radio access networks with load prediction and handoff optimization, 2025, Boğaziçi University.
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