High Performance Data Mining

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High Performance Data Mining

Author : Yike Guo,R.L. Grossman
Publisher : Springer Science & Business Media
Page : 109 pages
File Size : 52,9 Mb
Release : 2007-05-08
Category : Computers
ISBN : 9780306470110

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High Performance Data Mining by Yike Guo,R.L. Grossman Pdf

High Performance Data Mining: Scaling Algorithms, Applications and Systems brings together in one place important contributions and up-to-date research results in this fast moving area. High Performance Data Mining: Scaling Algorithms, Applications and Systems serves as an excellent reference, providing insight into some of the most challenging research issues in the field.

High Performance Data Mining and Big Data Analytics

Author : Khosrow Hassibi
Publisher : Createspace Independent Pub
Page : 294 pages
File Size : 48,7 Mb
Release : 2014-10-07
Category : Technology & Engineering
ISBN : 1495301079

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High Performance Data Mining and Big Data Analytics by Khosrow Hassibi Pdf

The use of machine learning and data mining to create value from corporate or public data is nothing new. It is not the first time that these technologies are in the spotlight. Many remember the late '80s and the early '90s when machine learning techniques—in particular neural networks—had become very popular. Data mining was at a rise. There were talks everywhere about advanced analysis of data for decision making. Even the popular android character in “Star Trek: The Next Generation” had been named appropriately as “Data.” Data mining science has been the cornerstone of many data products and applications for more than two decades, e.g., in finance and retail. Credit scores have been in use for decades to assess credit worthiness of people when applying for credit or loan. Sophisticated real-time fraud scores based on individual's transaction spending patterns have been used since early '90s to protect credit card holders from a variety of fraud schemes. However, the popularity of web products from the likes of Google, Linked-in, Amazon, and Facebook has helped analytics become a household name. While a decade ago, the masses did not know how their detailed data were being used by corporations for decision making, today they are fully aware of that fact. Many people, especially the millennial generation, voluntarily provide detailed information about themselves. Today people know that any mouse click they generate, any comment they write, any transaction they perform, and any location they go to, may be captured and analyzed for some business purpose. Every new technology comes with lots of hype and many new buzzwords. Often, fact and fiction get mixed-up making it impossible for outsiders to assess the technology's true relevance. I wrote this book to provide an objective view of analytics trends today. I have written it in complete independence, and solely as a personal passion. As a result, the views expressed in this book are those of the author and do not necessarily represent the views of, and should not be attributed to, any vendor or employer.Due to the exponential growth of data, today there is an ever increasing need to process and analyze big data. High-performance computing architectures have been devised to address the need for handling big data, not only from a transaction processing standpoint but also from a tactical and strategic analytics viewpoint. The success of big data analytics in large web companies has created a rush toward understanding the impact of new big data technologies in classic analytics environments that already employ a multitude of legacy analytics technologies. There is a wide variety of readings about big data, high-performance computing for analytics, massively parallel processing (MPP) databases, Hadoop and its ecosystem, algorithms for big data, in-memory databases, implementation of machine learning algorithms for big data platforms, and big data analytics. However, none of these readings provides an overview of these topics in a single document. The objective of this book is to provide a historical and comprehensive view of the recent trend toward high-performance computing technologies, especially as it relates to big data analytics and high-performance data mining. The book also emphasizes the impact of big data on requiring a rethinking of every aspect of the analytics life cycle, from data management, to data mining and analysis, to deployment.As a result of interactions with different stakeholders in classic organizations, I realized there was a need for a more holistic view of big data analytics' impact across classic organizations, and also the impact of high-performance computing techniques on legacy data mining. Whether you are an executive, manager, data scientist, analyst, sales or IT staff, the holistic and broad overview provided in the book will help in grasping the important topics in big data analytics and its potential impact in your organizations.

High Performance Data Mining

Author : Yike Guo,R. L. Grossman
Publisher : Unknown
Page : 112 pages
File Size : 49,8 Mb
Release : 2014-01-15
Category : Electronic
ISBN : 1475784147

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High Performance Data Mining by Yike Guo,R. L. Grossman Pdf

Scalable High Performance Computing for Knowledge Discovery and Data Mining

Author : Paul Stolorz,Ron Musick
Publisher : Springer Science & Business Media
Page : 101 pages
File Size : 53,9 Mb
Release : 2012-12-06
Category : Computers
ISBN : 9781461556695

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Scalable High Performance Computing for Knowledge Discovery and Data Mining by Paul Stolorz,Ron Musick Pdf

Scalable High Performance Computing for Knowledge Discovery and Data Mining brings together in one place important contributions and up-to-date research results in this fast moving area. Scalable High Performance Computing for Knowledge Discovery and Data Mining serves as an excellent reference, providing insight into some of the most challenging research issues in the field.

High-Performance Parallel Database Processing and Grid Databases

Author : David Taniar,Clement H. C. Leung,Wenny Rahayu,Sushant Goel
Publisher : John Wiley & Sons
Page : 575 pages
File Size : 48,6 Mb
Release : 2008-09-17
Category : Computers
ISBN : 9780470391358

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High-Performance Parallel Database Processing and Grid Databases by David Taniar,Clement H. C. Leung,Wenny Rahayu,Sushant Goel Pdf

The latest techniques and principles of parallel and grid database processing The growth in grid databases, coupled with the utility of parallel query processing, presents an important opportunity to understand and utilize high-performance parallel database processing within a major database management system (DBMS). This important new book provides readers with a fundamental understanding of parallelism in data-intensive applications, and demonstrates how to develop faster capabilities to support them. It presents a balanced treatment of the theoretical and practical aspects of high-performance databases to demonstrate how parallel query is executed in a DBMS, including concepts, algorithms, analytical models, and grid transactions. High-Performance Parallel Database Processing and Grid Databases serves as a valuable resource for researchers working in parallel databases and for practitioners interested in building a high-performance database. It is also a much-needed, self-contained textbook for database courses at the advanced undergraduate and graduate levels.

Big Data, Data Mining, and Machine Learning

Author : Jared Dean
Publisher : John Wiley & Sons
Page : 293 pages
File Size : 53,9 Mb
Release : 2014-05-27
Category : Computers
ISBN : 9781118618042

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Big Data, Data Mining, and Machine Learning by Jared Dean Pdf

With big data analytics comes big insights into profitability Big data is big business. But having the data and the computational power to process it isn't nearly enough to produce meaningful results. Big Data, Data Mining, and Machine Learning: Value Creation for Business Leaders and Practitioners is a complete resource for technology and marketing executives looking to cut through the hype and produce real results that hit the bottom line. Providing an engaging, thorough overview of the current state of big data analytics and the growing trend toward high performance computing architectures, the book is a detail-driven look into how big data analytics can be leveraged to foster positive change and drive efficiency. With continued exponential growth in data and ever more competitive markets, businesses must adapt quickly to gain every competitive advantage available. Big data analytics can serve as the linchpin for initiatives that drive business, but only if the underlying technology and analysis is fully understood and appreciated by engaged stakeholders. This book provides a view into the topic that executives, managers, and practitioners require, and includes: A complete overview of big data and its notable characteristics Details on high performance computing architectures for analytics, massively parallel processing (MPP), and in-memory databases Comprehensive coverage of data mining, text analytics, and machine learning algorithms A discussion of explanatory and predictive modeling, and how they can be applied to decision-making processes Big Data, Data Mining, and Machine Learning provides technology and marketing executives with the complete resource that has been notably absent from the veritable libraries of published books on the topic. Take control of your organization's big data analytics to produce real results with a resource that is comprehensive in scope and light on hyperbole.

High Performance Computing for Computational Science - VECPAR 2002

Author : José M.L.M. Palma,Jack Dongarra,Vicente Hernández,A. Augusto Sousa,Marina Waldén
Publisher : Springer
Page : 738 pages
File Size : 46,5 Mb
Release : 2003-08-03
Category : Computers
ISBN : 9783540365693

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High Performance Computing for Computational Science - VECPAR 2002 by José M.L.M. Palma,Jack Dongarra,Vicente Hernández,A. Augusto Sousa,Marina Waldén Pdf

The 5th edition of the VECPAR series of conferences marked a change of the conference title. The full conference title now reads VECPAR 2002 — 5th Int- national Conference on High Performance Computing for Computational S- ence. This re?ects more accurately what has been the main emphasis of the conference since its early days in 1993 – the use of computers for solving pr- lems in science and engineering. The present postconference book includes the best papers and invited talks presented during the three days of the conference, held at the Faculty of Engineering of the University of Porto (Portugal), June 26–28 2002. The book is organized into 8 chapters, which as a whole appeal to a wide research community, from those involved in the engineering applications to those interested in the actual details of the hardware or software implementation, in line with what, in these days, tends to be considered as Computational Science and Engineering (CSE). The book comprises a total of 49 papers, with a prominent position reserved for the four invited talks and the two ?rst prizes of the best student paper competition.

High-Performance Big-Data Analytics

Author : Pethuru Raj,Anupama Raman,Dhivya Nagaraj,Siddhartha Duggirala
Publisher : Springer
Page : 428 pages
File Size : 46,5 Mb
Release : 2015-10-16
Category : Computers
ISBN : 9783319207445

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High-Performance Big-Data Analytics by Pethuru Raj,Anupama Raman,Dhivya Nagaraj,Siddhartha Duggirala Pdf

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 infrastructure requirements 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.

Proceedings of the Fifth SIAM International Conference on Data Mining

Author : Hillol Kargupta
Publisher : SIAM
Page : 670 pages
File Size : 50,6 Mb
Release : 2005-04-01
Category : Mathematics
ISBN : 0898715938

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Proceedings of the Fifth SIAM International Conference on Data Mining by Hillol Kargupta Pdf

The Fifth SIAM International Conference on Data Mining continues the tradition of providing an open forum for the presentation and discussion of innovative algorithms as well as novel applications of data mining. Advances in information technology and data collection methods have led to the availability of large data sets in commercial enterprises and in a wide variety of scientific and engineering disciplines. The field of data mining draws upon extensive work in areas such as statistics, machine learning, pattern recognition, databases, and high performance computing to discover interesting and previously unknown information in data. This conference results in data mining, including applications, algorithms, software, and systems.

High-Performance Computing and Networking

Author : Peter Sloot,Marian Bubak,Alfons Hoekstra,Bob Hertzberger
Publisher : Springer Science & Business Media
Page : 1348 pages
File Size : 49,6 Mb
Release : 1999-03-30
Category : Computers
ISBN : 3540658211

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High-Performance Computing and Networking by Peter Sloot,Marian Bubak,Alfons Hoekstra,Bob Hertzberger Pdf

This book constitutes the refereed proceedings of the 7th International Conference on High-Performance Computing and Networking, HPCN Europe 1999, held in Amsterdam, The Netherlands in April 1999. The 115 revised full papers presented were carefully selected from a total of close to 200 conference submissions as well as from submissions for various topical workshops. Also included are 40 selected poster presentations. The conference papers are organized in three tracks: end-user applications of HPCN, computational science, and computer science; additionally there are six sections corresponding to topical workshops.

High Performance Computing - HiPC 2007

Author : Srinivas Aluru,Manish Parashar,Ramamurthy Badrinath,Viktor K. Prasanna
Publisher : Springer Science & Business Media
Page : 687 pages
File Size : 43,7 Mb
Release : 2007-11-29
Category : Computers
ISBN : 9783540772194

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High Performance Computing - HiPC 2007 by Srinivas Aluru,Manish Parashar,Ramamurthy Badrinath,Viktor K. Prasanna Pdf

This book constitutes the refereed proceedings of the 14th International Conference on High-Performance Computing, HiPC 2007, held in Goa, India, in December 2007. The 53 revised full papers presented together with the abstracts of five keynote talks were carefully reviewed and selected from 253 submissions. The papers are organized in topical sections on a broad range of applications including I/O and FPGAs, and microarchitecture and multiprocessor architecture.

Introduction to Data Mining and Its Applications

Author : S. Sumathi,S.N. Sivanandam
Publisher : Springer Science & Business Media
Page : 836 pages
File Size : 45,7 Mb
Release : 2006-09-26
Category : Computers
ISBN : 9783540343509

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Introduction to Data Mining and Its Applications by S. Sumathi,S.N. Sivanandam Pdf

This book explores the concepts of data mining and data warehousing, a promising and flourishing frontier in data base systems and new data base applications and is also designed to give a broad, yet in-depth overview of the field of data mining. Data mining is a multidisciplinary field, drawing work from areas including database technology, AI, machine learning, NN, statistics, pattern recognition, knowledge based systems, knowledge acquisition, information retrieval, high performance computing and data visualization. This book is intended for a wide audience of readers who are not necessarily experts in data warehousing and data mining, but are interested in receiving a general introduction to these areas and their many practical applications. Since data mining technology has become a hot topic not only among academic students but also for decision makers, it provides valuable hidden business and scientific intelligence from a large amount of historical data. It is also written for technical managers and executives as well as for technologists interested in learning about data mining.

High Performance Computing for Big Data

Author : Chao Wang
Publisher : CRC Press
Page : 430 pages
File Size : 40,5 Mb
Release : 2017-10-16
Category : Computers
ISBN : 9781351651578

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High Performance Computing for Big Data by Chao Wang Pdf

High-Performance Computing for Big Data: Methodologies and Applications explores emerging high-performance architectures for data-intensive applications, novel efficient analytical strategies to boost data processing, and cutting-edge applications in diverse fields, such as machine learning, life science, neural networks, and neuromorphic engineering. The book is organized into two main sections. The first section covers Big Data architectures, including cloud computing systems, and heterogeneous accelerators. It also covers emerging 3D IC design principles for memory architectures and devices. The second section of the book illustrates emerging and practical applications of Big Data across several domains, including bioinformatics, deep learning, and neuromorphic engineering. Features Covers a wide range of Big Data architectures, including distributed systems like Hadoop/Spark Includes accelerator-based approaches for big data applications such as GPU-based acceleration techniques, and hardware acceleration such as FPGA/CGRA/ASICs Presents emerging memory architectures and devices such as NVM, STT- RAM, 3D IC design principles Describes advanced algorithms for different big data application domains Illustrates novel analytics techniques for Big Data applications, scheduling, mapping, and partitioning methodologies Featuring contributions from leading experts, this book presents state-of-the-art research on the methodologies and applications of high-performance computing for big data applications. About the Editor Dr. Chao Wang is an Associate Professor in the School of Computer Science at the University of Science and Technology of China. He is the Associate Editor of ACM Transactions on Design Automations for Electronics Systems (TODAES), Applied Soft Computing, Microprocessors and Microsystems, IET Computers & Digital Techniques, and International Journal of Electronics. Dr. Chao Wang was the recipient of Youth Innovation Promotion Association, CAS, ACM China Rising Star Honorable Mention (2016), and best IP nomination of DATE 2015. He is now on the CCF Technical Committee on Computer Architecture, CCF Task Force on Formal Methods. He is a Senior Member of IEEE, Senior Member of CCF, and a Senior Member of ACM.

High Performance Computing Systems and Applications

Author : Douglas J. K. Mewhort,Natalie M. Cann,Gary W. Slater,Thomas J. Naughton
Publisher : Springer
Page : 418 pages
File Size : 41,7 Mb
Release : 2010-04-20
Category : Computers
ISBN : 9783642126598

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High Performance Computing Systems and Applications by Douglas J. K. Mewhort,Natalie M. Cann,Gary W. Slater,Thomas J. Naughton Pdf

This book constitutes the thoroughly refereed post-conference proceedings of the 23rd International Symposium on High Performance Computing Systems and Applications, HPCS 2009, held in Kingston, Canada, in June 2009. The 29 revised full papers presented - fully revised to incorporate reviewers' comments and discussions at the symposium - were carefully selected for inclusion in the book. The papers are organized in topical sections on turbulence, materials and life sciences, bringing HPC to industry, computing science, mathematics, and statistics, as well as HPC systems and methods.

Large-Scale Parallel Data Mining

Author : Mohammed J. Zaki,Ching-Tien Ho
Publisher : Springer
Page : 260 pages
File Size : 50,7 Mb
Release : 2003-07-31
Category : Computers
ISBN : 9783540465027

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Large-Scale Parallel Data Mining by Mohammed J. Zaki,Ching-Tien Ho Pdf

With the unprecedented growth-rate at which data is being collected and stored electronically today in almost all fields of human endeavor, the efficient extraction of useful information from the data available is becoming an increasing scientific challenge and a massive economic need. This book presents thoroughly reviewed and revised full versions of papers presented at a workshop on the topic held during KDD'99 in San Diego, California, USA in August 1999 complemented by several invited chapters and a detailed introductory survey in order to provide complete coverage of the relevant issues. The contributions presented cover all major tasks in data mining including parallel and distributed mining frameworks, associations, sequences, clustering, and classification. All in all, the volume presents the state of the art in the young and dynamic field of parallel and distributed data mining methods. It will be a valuable source of reference for researchers and professionals.