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Combating Security Challenges in the Age of Big Data : Powered by State-of-the-Art Artificial Intelligence Techniques / edited by Zubair Md. Fadlullah, Al-Sakib Khan Pathan.

SpringerLink Books Computer Science (2011-2024) Available online

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Format:
Book
Contributor:
Fadlullah, Zubair Md, editor.
Pathan, Al-Sakib Khan, editor.
SpringerLink (Online service)
Series:
Computer Science (SpringerNature-11645)
Advanced sciences and technologies for security applications 1613-5113
Advanced Sciences and Technologies for Security Applications, 1613-5113
Language:
English
Subjects (All):
Data protection.
Big data.
Artificial intelligence.
System safety.
Electrical engineering.
Security.
Big Data.
Artificial Intelligence.
Security Science and Technology.
Communications Engineering, Networks.
Local Subjects:
Security.
Big Data.
Artificial Intelligence.
Security Science and Technology.
Communications Engineering, Networks.
Physical Description:
1 online resource (XVI, 266 pages) : 124 illustrations, 83 illustrations in color.
Edition:
First edition 2020.
Contained In:
Springer Nature eBook
Place of Publication:
Cham : Springer International Publishing : Imprint: Springer, 2020.
System Details:
text file PDF
Summary:
This book addresses the key security challenges in the big data centric computing and network systems, and discusses how to tackle them using a mix of conventional and state-of-the-art techniques. The incentive for joining big data and advanced analytics is no longer in doubt for businesses and ordinary users alike. Technology giants like Google, Microsoft, Amazon, Facebook, Apple, and companies like Uber, Airbnb, NVIDIA, Expedia, and so forth are continuing to explore new ways to collect and analyze big data to provide their customers with interactive services and new experiences. With any discussion of big data, security is not, however, far behind. Large scale data breaches and privacy leaks at governmental and financial institutions, social platforms, power grids, and so forth, are on the rise that cost billions of dollars. The book explains how the security needs and implementations are inherently different at different stages of the big data centric system, namely at the point of big data sensing and collection, delivery over existing networks, and analytics at the data centers. Thus, the book sheds light on how conventional security provisioning techniques like authentication and encryption need to scale well with all the stages of the big data centric system to effectively combat security threats and vulnerabilities. The book also uncovers the state of the art technologies like deep learning and blockchain which can dramatically change the security landscape in the big data era. .
Contents:
Secure Big data Transmission with Trust management for the Internet of Things (IoT)
Concept Drift for Big Data
Classification of Outlier's Detection Methods Based on Quantitative Or Semantic Learning
Cognitive Artificial Intelligence Countermeasure For Enhancing The Security Of Big Data Hardware From Power Analysis Attack
On the Secure Routing Protocols, Selfishness Mitigation, and Trust in Mobile Ad Hoc Networks
Deep Learning Approaches For IoT Security In The Big Data Era
Deep Learning meets Malware Detection: An Investigation
The Utilization of Blockchain for Enhancing Big Data Security and Veracity
Authentication Methodology for Securing Machine-to-Machine Communication in Smart Grid
Combating Intrusions in Smart Grid: Practical Defense and Forecasting Approaches
Blockchain-based Distributed Key Management Approach Tailored for Smart Grid.
Other Format:
Printed edition:
ISBN:
978-3-030-35642-2
9783030356422
Access Restriction:
Restricted for use by site license.

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