Perspectives of Machine Learning and Deep Learning in Internet of Things and Cloud

Author:

Raju Preethi Sambandam1ORCID,Rajendran Revathi Arumugam1,Mahalingam Murugan1ORCID

Affiliation:

1. SRM Valliammai Engineering College, India

Abstract

For centuries, the concept of a smart, autonomous learning machine has fascinated people. The machine learning philosophy is to automate the development of analytical models so that algorithms can learn continually with the assistance of accessible information. Machine learning (ML) and deep learning (DL) methods are implemented to further improve an application's intelligence and capacities as the quantity of the gathered information rises. Because IoT will be one of the main sources of information, data science will make a significant contribution to making IoT apps smarter. There is a rapid development of both technologies, cloud computing and the internet of things, considering the field of wireless communication. This chapter answers the questions: How can IoT intelligent information be applied to ML and DL algorithms? What is the taxonomy of IoT's ML and DL and profound learning algorithms? And what are real-world IoT data features that require data analytics?

Publisher

IGI Global

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