Big Data

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advanced big data system architecture
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applications
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Big data
Big Data Applications
Big Data Integration
Big Data Processing
Big Data Security
Big Data Service
Big Data Techniques
Bioinformatics
Bloom Filter
Cap Theorem
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Cloud Computing
cloud data security
Congestion Window Size
database protocol evaluation
Differential Privacy
Encrypted Data
encryption
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gate
Geoinformatics
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Homomorphic Encryption
Homomorphic Encryption Scheme
Jumbo Frames
large scale database management systems
Malware Detection
malware detection techniques
Message Authenticators
NoSQL Database
privacy preserving analytics
programmable
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Searchable Encryption
secure data outsourcing
SP System
spatial data management
systems
Tcp Flow
Very large database (VLDB)
very large databases

Product details

  • ISBN 9781498734868
  • Weight: 1000g
  • Dimensions: 178 x 254mm
  • Publication Date: 03 May 2016
  • Publisher: Taylor & Francis Inc
  • Publication City/Country: US
  • Product Form: Hardback
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Although there are already some books published on Big Data, most of them only cover basic concepts and society impacts and ignore the internal implementation details—making them unsuitable to R&D people. To fill such a need, Big Data: Storage, Sharing, and Security examines Big Data management from an R&D perspective. It covers the 3S designs—storage, sharing, and security—through detailed descriptions of Big Data concepts and implementations.

Written by well-recognized Big Data experts around the world, the book contains more than 450 pages of technical details on the most important implementation aspects regarding Big Data. After reading this book, you will understand how to:

  • Aggregate heterogeneous types of data from numerous sources, and then use efficient database management technology to store the Big Data
  • Use cloud computing to share the Big Data among large groups of people
  • Protect the privacy of Big Data during network sharing

With the goal of facilitating the scientific research and engineering design of Big Data systems, the book consists of two parts. Part I, Big Data Management, addresses the important topics of spatial management, data transfer, and data processing. Part II, Security and Privacy Issues, provides technical details on security, privacy, and accountability.

Examining the state of the art of Big Data over clouds, the book presents a novel architecture for achieving reliability, availability, and security for services running on the clouds. It supplies technical descriptions of Big Data models, algorithms, and implementations, and considers the emerging developments in Big Data applications. Each chapter includes references for further study.

Fei Hu is a professor of electrical and computer engineering at the University of Alabama. Dr. Hu is the author of 10 books and over 200 articles published in top journals and conferences. His current research interests include big data security and 5G networks.