Fundamental properties of solutions to utility maximization problems in wireless networks
Renato Luis Garrido Cavalcante, Slawomir Stanczak

TL;DR
This paper presents a unified theoretical framework for analyzing utility and energy efficiency in interference-coupled wireless networks, revealing key properties and regimes of optimal solutions.
Contribution
It introduces a novel unified framework for utility and energy efficiency analysis, characterizes solution regimes, and applies findings to joint uplink power and base station optimization.
Findings
Functions mapping power budget to utility and efficiency are continuous and monotonic.
Solutions exhibit low and high power regimes with distinct scaling behaviors.
Energy efficiency scales as Θ(1/𝑝̄) in high power regime, utility remains bounded.
Abstract
We introduce a unified framework for the study of the utility and the energy efficiency of solutions to a large class of weighted max-min utility maximization problems in interference-coupled wireless networks. In more detail, given a network utility maximization problem parameterized by a maximum power budget available to network elements, we define two functions that map the power budget to the energy efficiency and to the utility achieved by the solution. Among many interesting properties, we prove that these functions are continuous and monotonic. In addition, we derive bounds revealing that the solutions to utility maximization problems are characterized by a low and a high power regime. In the low power regime, the energy efficiency of the solution can decrease slowly as the power budget increases, and the network utility grows linearly at best. In contrast, in…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Wireless Communication Networks Research · Cooperative Communication and Network Coding
