IRS Aided MEC Systems with Binary Offloading: A Unified Framework for Dynamic IRS Beamforming
Guangji Chen, Qingqing Wu

TL;DR
This paper introduces a unified dynamic IRS beamforming framework to enhance the sum computation rate in IRS-assisted MEC systems with binary offloading, balancing performance and signaling overhead through joint optimization.
Contribution
It proposes a novel penalty-based successive convex approximation algorithm and a low-complexity refinement method for joint optimization in IRS-aided MEC systems with binary offloading.
Findings
The algorithms significantly improve sum computation rate.
The low-complexity method is effective for large systems.
A fundamental performance-cost tradeoff is identified.
Abstract
In this paper, we develop a unified dynamic intelligent reflecting surface (IRS) beamforming framework to boost the sum computation rate of an IRS-aided mobile edge computing (MEC) system, where each device follows a binary offloading policy. Specifically, the task of each device has to be either executed locally or offloaded to MEC servers as a whole with the aid of given number of IRS beamforming vectors available. By flexibly controlling the number of IRS reconfiguration times, the system can achieve a balance between the performance and associated signalling overhead. We aim to maximize the sum computation rate by jointly optimizing the computational mode selection for each device, offloading time allocation, and IRS beamforming vectors across time. Since the resulting optimization problem is non-convex and NP-hard, there are generally no standard methods to solve it optimally. To…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Satellite Communication Systems · Underwater Vehicles and Communication Systems
