Mobile Information Systems

Federated Learning, Internet of Things, and Edge Computing for Smart Services


Publishing date
01 Feb 2023
Status
Published
Submission deadline
30 Sep 2022

1Abdul Wali Khan University, Mardan, Pakistan

2Ajman University, Ajman, UAE

3Middlesex University, London, UK


Federated Learning, Internet of Things, and Edge Computing for Smart Services

Description

Digital services, including healthcare, among others, have recently seen a massive volume of complicated data that arrives rapidly due to a rapid increase in the number of smart devices. Different areas of the healthcare sector and other information systems create huge amounts of data, including data from hospitals and healthcare service providers. With technological advancements, there is significant potential to use this data to change digital services and healthcare.

In recent years, the digital world of big data and the Internet of Things (IoT) has seen an incredible increase in data, from 1.2 zettabytes to almost 67 zettabytes. It is projected that more than 97 zettabytes of data will be produced and spent in the world by the end of 2022. In addition, the worldwide market for connected medical devices is predicted to grow from $41 billion in 2017 to $158 billion in 2022. Therefore, the growth rate in big data and the IoT is far exceeding the computational services needed to process these quantities of data. Edge computing is transforming health care by putting large data processing and storage closer to the source, allowing the application of game-changing technologies like IoT and artificial intelligence (AI). Edge computing, cloud, IoT, and other emerging technologies enriched by federated learning applications can help in processing such amount of huge data.

The aim of this Special Issue is to look for contributions that attempt to integrate federated learning and AI techniques into the design of algorithms for smart information systems and healthcare. We welcome both original research and review articles.

Potential topics include but are not limited to the following:

  • Machine learning (ML) techniques and algorithms for edge intelligence and computing services
  • Partitioning healthcare services across IoT, edge, and cloud environments
  • Secure and reliable IoT, edge, and cloud services for digital healthcare
  • Intelligent computing, code offloading, and edge processing
  • Ecosystems for improving data processing speed and performance
  • Applications of IoT, edge, fog, and machine learning in healthcare, intelligent agriculture, and smart cities
  • Optimisation, particle swarm, artificial intelligence, and swarm intelligence
  • Medical cyber-physical systems
  • Methods for processing healthcare data in edge and cloud environments
  • Computation, data, and network management to facilitate IoT, edge, and cloud integration in the healthcare sector

Articles

  • Special Issue
  • - Volume 2022
  • - Article ID 1106573
  • - Research Article

[Retracted] Physical Exercise Improves Academic Performance: Based on CNKI Meta-Analysis Evidence

Xin Xiang | Qi Wang
  • Special Issue
  • - Volume 2022
  • - Article ID 8593669
  • - Research Article

Evaluation of Private Enterprises Based on Deep Learning

Lingyan Meng | Bingtao Zhang
  • Special Issue
  • - Volume 2022
  • - Article ID 1510057
  • - Research Article

[Retracted] The English Teaching Mode under the Environment of Computer Technology

Wenxia Liu | Weiming Shi
  • Special Issue
  • - Volume 2022
  • - Article ID 3156759
  • - Research Article

Effects of Carbon Emission on the Environment of High-Speed Vehicles on Highways for Intelligent Transportation Systems

Yuanyuan Liu | Jingwei Liu | Huili Dou
  • Special Issue
  • - Volume 2022
  • - Article ID 3201004
  • - Research Article

Artificial Intelligence Evaluation for Mathematics Teaching in Colleges under the Guidance of Wireless Network

Zhiqin Chen
  • Special Issue
  • - Volume 2022
  • - Article ID 3839346
  • - Research Article

Mobile Geographic Information Service for 4G Terminal

Guiyu Wei
  • Special Issue
  • - Volume 2022
  • - Article ID 1265451
  • - Research Article

Tchaikovsky Music Recommendation Algorithm Based on Deep Learning

Peng Linlin
  • Special Issue
  • - Volume 2022
  • - Article ID 6181357
  • - Research Article

Convolutional Neural Network Based Energy Consumption Management Model for the Full Life Cycle of Buildings and Information System Design

Jingyi Zhou
  • Special Issue
  • - Volume 2022
  • - Article ID 7710715
  • - Research Article

Analyzing the Coupling Degree of Coordinated Development between Ecological Environment and Regional Economy in Underdeveloped Areas

Shiwen Zhang | Malik Ilham Sentosa Bin Anwar | Yibo Zhong
  • Special Issue
  • - Volume 2022
  • - Article ID 7580468
  • - Research Article

Sample Density Clustering Method Considering Unbalanced Data Distribution

Changhui Wang
Mobile Information Systems
 Journal metrics
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Acceptance rate5%
Submission to final decision187 days
Acceptance to publication137 days
CiteScore1.400
Journal Citation Indicator-
Impact Factor-
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