von Pethuru Raj Anupama Raman Dhivya Nagaraj Siddhartha Duggirala
Computing Systems and Approaches
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Beschreibung
This important and timely text/reference presents a detailed review of high-performance computing infrastructures for next-generation big data and fast data analytics.
Comprehensively covering a diverse range of computer systems and proven techniques for high-performance big-data analytics, the book also presents case studies, practical guidelines, and best practices for enabling decision-making toward implementing the appropriate computer systems and approaches.
Topics and features:
Includes case studies and learning activities throughout the book, and self-study exercises at the end of every chapter
Presents detailed case studies on social media analytics for intelligent businesses, and on big data analytics in the healthcare sector
Describes the network infrastructure requirements for effective transfer of big data, and the storage infrastructurerequirements of applications which generate big data
Examines real-time analytics solutions, such as machine data analytics and operational analytics
Introduces in-database processing and in-memory analytics techniques for data mining
Discusses the use of mainframes for handling real-time big data, and the latest types of data management systems for big and fast data analytics
Provides information on the use of cluster, grid and cloud computing systems for big data analytics and data-intensive processing
Reviews the peer-to-peer techniques and tools, and the common information visualization techniques, used in bigdata analytics
Software engineers, cloud professionals and big data scientists will find this book to be an informative and inspiring read, highlighting the indispensable role data analytics will play in shaping a smart future.
This book presents a detailed review of high-performance computing infrastructures for next-generation big data and fast data analytics. Features: includes case studies and learning activities throughout the book and self-study exercises in every chapter; presents detailed case studies on social media analytics for intelligent businesses and on big data analytics (BDA) in the healthcare sector; describes the network infrastructure requirements for effective transfer of big data, and the storage infrastructurerequirements of applications which generate big data; examines real-time analytics solutions; introduces in-database processing and in-memory analytics techniques for data mining; discusses the use of mainframes for handling real-time big data and the latest types of data management systems for BDA; provides information on the use of cluster, grid and cloud computing systems for BDA; reviews the peer-to-peer techniques and tools and the common information visualization techniques, used in BDA. Vividly illustrates the benefits of using high-performance infrastructures for next-generation data analytics Provides numerous and varied case studies and examples of best practice Includes learning activities throughout the book and self-study exercises at the end of every chapter