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Resource Allocation for Downlink URLLC in a Smart Factory
Conference proceeding

Resource Allocation for Downlink URLLC in a Smart Factory

Jing Li, Hao Wu, Yong Niu, Bo Ai, Ning Wang and Tony Q. S. Quek
IEEE International Conference on Communications (2003), pp.605-610
09/06/2024

Abstract

alternating optimization Delays Downlink flow scheduling Job shop scheduling matching game power allocation Resource management Simulation Throughput Ultra reliable low latency communication URLLC
Emerging as an important enabling technology for smart factories, ultra-reliable low latency communications (URLLC) have attracted extensive attention from academia and industry. In this paper, we aim to improve the performance of downlink URLLC in a smart factory. We first construct the system model based on the 5G New Radio (NR) standard, which specifies the modulation scheme, resource block structure and achievable data rates under finite blocklength codes (FBC). Next, since it is challenging to fulfill all transmission requests with limited radio and power resources, we formulate the problem to maximize the network throughput while considering delay and reliability constraints. This is a mixed integer non-convex nonlinear problem that is difficult to solve directly. To be tractable, we decompose it into two sub-problems, and apply the alternating optimization to obtain a sub-optimal solution. Specifically, the flow scheduling sub-problem is transformed into a matching game (MG) and solved by a delayed acceptance-based algorithm. Also a local water-filling algorithm is utilized to solve the power allocation sub-problem. Simulation results reveal that our proposed scheme outperforms other benchmark schemes.

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