Intelligent Resource Scheduling in End-Edge-Cloud Networks

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Intelligent Resource Scheduling in End-Edge-Cloud Networks

Cybernetics and systems theory Electronics engineering Communications engineering / telecommunications Network hardware

Authors: Weiting Zhang, Dong Yang, Shuai Gao, Hongke Zhang, Xuemin Shen

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Collection: Wireless Networks

Language: English

Published by: Springer

Published on: 9th January 2026

Format: LCP-protected ePub

ISBN: 9783032076670


Introduction

This book investigates technologies that enable more powerful resources and improve resource utilization for end-edge-cloud networks.

Tools and Architectures

The authors cover tools such as federated learning (FL) and real-time inference in industrial IoT and they present a novel communication and computation integration architecture for end-edge-cloud networks.

Resource Scheduling Schemes

Under the considered end-edge-cloud network architecture, the authors then propose different resource scheduling schemes based on centralized and distributed deep reinforcement learning methods to improve overall resource utilization for guaranteeing the diversified quality of service (QoS) requirements from different applications.

Applications and Guidelines

The proposed architecture and schemes can not only be adopted in future end-edge-cloud networks to efficiently manage the multi-dimensional resources in real time, but also provide useful guidelines for multi-dimensional resource scheduling scheme designing and resource utilization enhancement in complex end-edge-cloud networks with diversified data services and applications.

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