Energy Efficiency of Distributed Signal Processing in Wireless Networks: A Cross-Layer Analysis
arXiv:1507.05698 · doi:10.1109/TSP.2015.2494865
Abstract
In order to meet the growing mobile data demand, future wireless networks will be equipped with a multitude of access points (APs). Besides the important implications for the energy consumption, the trend towards densification requires the development of decentralized and sustainable radio resource management techniques. It is critically important to understand how the distribution of signal processing operations affects the energy efficiency of wireless networks. In this paper, we provide a cross-layer framework to evaluate and compare the energy efficiency of wireless networks under different levels of distribution of the signal processing load: (i) hybrid, where the signal processing operations are shared between nodes and APs, (ii) centralized, where signal processing is entirely implemented at the APs, and (iii) fully distributed, where all operations are performed by the nodes. We find that in practical wireless networks, hybrid signal processing exhibits a significant energy efficiency gain over both centralized and fully distributed approaches.
to appear in IEEE Transactions on Signal Processing
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- On Energy Efficient Uplink Multi-User MIMO with Shared LNA Control
- A Framework for Optimizing Multi-cell NOMA: Delivering Demand with Less Resource
- Downlink Non-Orthogonal Multiple Access (NOMA) in Poisson Networks
- Resource Optimization with Load Coupling in Multi-cell NOMA