Resource allocation in 5G cloud‐RAN using deep reinforcement learning algorithms: A review

Author:

Khani Mohsen1,Jamali Shahram2,Sohrabi Mohammad Karim1,Sadr Mohammad Mohsen3,Ghaffari Ali45

Affiliation:

1. Department of Computer Engineering, Semnan Branch Islamic Azad University Semnan Iran

2. Department of Computer Engineering University of Mohaghegh Ardabili Ardabil Iran

3. Department of Computer and Information Technology Engineering Payame Noor University Tehran Iran

4. Department of Computer Engineering, Tabriz Branch Islamic Azad University Tabriz Iran

5. Department of Computer Engineering, Faculty of Engineering and Natural Science Istinye University Istanbul Turkey

Abstract

AbstractThis paper reviews recent research on resource allocation in 5G cloud‐based radio access networks (C‐RAN) using deep reinforcement learning (DRL) algorithms. It explores the potential of DRL for learning complex decision‐making policies without human intervention. The paper first introduces the C‐RAN architecture and resource allocation concepts, followed by an overview of DRL algorithms applied to C‐RAN. It discusses the challenges and potential solutions in applying DRL to C‐RAN resource allocation, including scalability, convergence, and fairness. The review concludes by highlighting open research directions for future investigation. By providing insights into the state‐of‐the‐art techniques for resource allocation in 5G C‐RAN using DRL, this paper emphasizes their potential impact on advancing 5G network technology.

Publisher

Wiley

Subject

Electrical and Electronic Engineering

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