Computing Resource Allocation in Three-Tier IoT Fog Networks: a Joint Optimization Approach Combining Stackelberg Game and Matching
Huaqing Zhang, Yong Xiao, Shengrong Bu, Dusit Niyato, Richard Yu, and, Zhu Han

TL;DR
This paper presents a distributed resource allocation framework for three-tier IoT fog networks, combining Stackelberg game theory and matching algorithms to optimize performance and stability.
Contribution
It introduces a novel joint optimization approach integrating Stackelberg and matching games for resource allocation in fog IoT networks.
Findings
Significant performance improvements demonstrated through simulations.
Effective stable resource allocation achieved in a distributed manner.
Enhanced network efficiency and service quality.
Abstract
Fog computing is a promising architecture to provide economic and low latency data services for future Internet of things (IoT)-based network systems. It relies on a set of low-power fog nodes that are close to the end users to offload the services originally targeting at cloud data centers. In this paper, we consider a specific fog computing network consisting of a set of data service operators (DSOs) each of which controls a set of fog nodes to provide the required data service to a set of data service subscribers (DSSs). How to allocate the limited computing resources of fog nodes (FNs) to all the DSSs to achieve an optimal and stable performance is an important problem. In this paper, we propose a joint optimization framework for all FNs, DSOs and DSSs to achieve the optimal resource allocation schemes in a distributed fashion. In the framework, we first formulate a Stackelberg game…
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Taxonomy
TopicsIoT and Edge/Fog Computing · Energy Efficient Wireless Sensor Networks · Blockchain Technology Applications and Security
