Zhiyong Du Bin Jiang Qihui Wu Yuhua Xu Kun Xu Du Towards User-Centric Intelligent Network Selection in 5G Heterogeneous Wireless Networks

Towards User-Centric Intelligent Network Selection in 5G Heterogeneous Wireless Networks

von Zhiyong Du Bin Jiang Qihui Wu Yuhua Xu Kun Xu

A Reinforcement Learning Perspective

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Beschreibung

This book presents reinforcement learning (RL) based solutions for user-centric online network selection optimization. The main content can be divided into three parts. The first part (chapter 2 and 3) focuses on how to learning the best network when QoE is revealed beyond QoS under the framework of multi-armed bandit (MAB). The second part (chapter 4 and 5) focuses on how to meet dynamic user demand in complex and uncertain heterogeneous wireless networks under the framework of markov decision process (MDP). The third part (chapter 6 and 7) focuses on how to meet heterogeneous user demand for multiple users inlarge-scale networks under the framework of game theory. Efficient RL algorithms with practical constraints and considerations are proposed to optimize QoE for realizing intelligent online network selection for future mobile networks. This book is intended as a reference resource for researchers and designers in resource management of 5G networks and beyond.


This book presents reinforcement learning (RL) based solutions for user-centric online network selection optimization. The main content can be divided into three parts. The first part (chapter 2 and 3) focuses on how to learning the best network when QoE is revealed beyond QoS under the framework of multi-armed bandit (MAB). The second part (chapter 4 and 5) focuses on how to meet dynamic user demand in complex and uncertain heterogeneous wireless networks under the framework of markov decision process (MDP). The third part (chapter 6 and 7) focuses on how to meet heterogeneous user demand for multiple users inlarge-scale networks under the framework of game theory. Efficient RL algorithms with practical constraints and considerations are proposed to optimize QoE for realizing intelligent online network selection for future mobile networks. This book is intended as a reference resource for researchers and designers in resource management of 5G networks and beyond.


Offers new insights into how to model and exploit user demand in resource management Provides various application examples of reinforcement learning algorithms on resource management of wireless networks Presents novel game models and associated MARL algorithms

Autor*in

Zhiyong Du

Themen in »Towards User-Centric Intelligent Network Selection in 5G Heterogeneous Wireless Networks«

QoE Game Reinforcement Learning Network Selection Network Handoff Intelligent Decision-Making Game Theory 5G Heterogeneous Network Heterogeneous Wireless Network information and communication, circuits

Stimmen zu »Towards User-Centric Intelligent Network Selection in 5G Heterogeneous Wireless Networks«

Details

ISBN: 9789811511202
Verlag: Springer Singapore
Erscheinung: 06.11.2019

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