Heterogenous Computational Intelligence in Internet of Things
  1. 308 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

About this book

We have seen a sharp increase in the development of data transfer techniques in the networking industry over the past few years. We can see that the photos are assisting clinicians in detecting infection in patients even in the current COVID-19 pandemic condition. With the aid of ML/AI, medical imaging, such as lung X-rays for COVID-19 infection, is crucial in the early detection of many diseases. We also learned that in the COVID-19 scenario, both wired and wireless networking are improved for data transfer but have network congestion. An intriguing concept that has the ability to reduce spectrum congestion and continuously offer new network services is providing wireless network virtualization. The degree of virtualization and resource sharing varies between the paradigms. Each paradigm has both technical and non-technical issues that need to be handled before wireless virtualization becomes a common technology. For wireless network virtualization to be successful, these issues need careful design and evaluation. Future wireless network architecture must adhere to a number of Quality of Service (QoS) requirements. Virtualization has been extended to wireless networks as well as conventional ones. By enabling multi-tenancy and tailored services with a wider range of carrier frequencies, it improves efficiency and utilization. In the IoT environment, wireless users are heterogeneous, and the network state is dynamic, making network control problems extremely difficult to solve as dimensionality and computational complexity keep rising quickly. Deep Reinforcement Learning (DRL) has been developed by the use of Deep Neural Networks (DNNs) as a potential approach to solve high-dimensional and continuous control issues effectively.

Deep Reinforcement Learning techniques provide great potential in IoT, edge and SDN scenarios and are used in heterogeneous networks for IoT-based management on the QoS required by each Software Defined Network (SDN) service. While DRL has shown great potential to solve emerging problems in complex wireless network virtualization, there are still domain-specific challenges that require further study, including the design of adequate DNN architectures with 5G network optimization issues, resource discovery and allocation, developing intelligent mechanisms that allow the automated and dynamic management of the virtual communications established in the SDNs which is considered as research perspective.

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Yes, you can access Heterogenous Computational Intelligence in Internet of Things by Pawan Singh, Prateek Singhal, Pramod Kumar Mishra, Avimanyou K. Vatsa, Pawan Singh,Prateek Singhal,Pramod Kumar Mishra,Avimanyou K. Vatsa in PDF and/or ePUB format, as well as other popular books in Computer Science & Computer Networking. We have over one million books available in our catalogue for you to explore.

Information

Table of contents

  1. Cover Page
  2. Half Title page
  3. Title Page
  4. Copyright Page
  5. Contents
  6. Acknowledgment
  7. About the Editors
  8. List of Contributors
  9. 1 Human-Interacted Computation System: A State of the Art in Music
  10. 2 Heterogeneous Computing of Multi-Agent Deep Reinforcement Learning on Edge Devices for Internet of Things
  11. 3 Spectral Analysis of Speech Signal for Psychiatric Health Assessment and Prediction: Optimized Using Various Kernels of Support Vector Classifiers
  12. 4 A Fuzzy-based Predictive Approach for Soil Classification of Agricultural Land for the Efficient Cultivation and Harvesting
  13. 5 Analysis of Smart Agriculture Systems Using IOT
  14. 6 AI-Enabled Internet of Medical Things in Healthcare
  15. 7 Time Division Multiplexer Design for Internet of Things (IoT) Networks by Using Photonic Hetero-Structures
  16. 8 Comparative Evaluation on Various Machine Learning Strategies Based on Identification of DDoS Attacks in IoT Environment
  17. 9 Simulation of Scheduling & Load Balancing Algorithms for a Distributed Data Center by Using Service Broker Policy Over the Cloud
  18. 10 Facts Analysis to Handle the COVID-19 Pandemic Situation in an Efficient Way
  19. 11 Experimental and Computational Investigation of Acoustic Erosion in C2H5OH
  20. 12 A Novel Facial Emotion Recognition Technique using Convolution Neural Network
  21. 13 Using Machine Learning to Detect Abnormalities on Modbus/TCP Networks
  22. 14 Face Recognition System Using CNN Architecture & Its Model with Its Detection Technique Using Machine Learning
  23. 15 Network Security Configuration for Campus LAN Using CPT
  24. 16 Advancements in IoT-Based Smart Environmental Systems
  25. 17 An Application of Convolutional Neural Networks in Recognition of Handwritten Digits
  26. 18 Uses of Artificial Intelligence and GIS Technologies in Healthcare Services
  27. 19 Digital and Smart Agriculture: Components, Challenges, and Limitations