Successes and New Directions in Data Mining

Successes and New Directions in Data Mining PDF Author: Florent Masseglia
Publisher: IGI Global
ISBN: 1599046458
Category : Computers
Languages : en
Pages : 386

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Book Description
"This book addresses existing solutions for data mining, with particular emphasis on potential real-world applications. It captures defining research on topics such as fuzzy set theory, clustering algorithms, semi-supervised clustering, modeling and managing data mining patterns, and sequence motif mining"--Provided by publisher.

Successes and New Directions in Data Mining

Successes and New Directions in Data Mining PDF Author: Florent Masseglia
Publisher: IGI Global
ISBN: 1599046458
Category : Computers
Languages : en
Pages : 386

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Book Description
"This book addresses existing solutions for data mining, with particular emphasis on potential real-world applications. It captures defining research on topics such as fuzzy set theory, clustering algorithms, semi-supervised clustering, modeling and managing data mining patterns, and sequence motif mining"--Provided by publisher.

Data Mining

Data Mining PDF Author: Hillol Kargupta
Publisher:
ISBN:
Category : Computers
Languages : en
Pages : 582

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Book Description
A state-of-the-art survey of recent advances in data mining or knowledge discovery.

Active Mining

Active Mining PDF Author: Hiroshi Motoda
Publisher: IOS Press
ISBN: 9781586032647
Category : Computers
Languages : en
Pages : 306

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Book Description
Focusing on data mining, this work is a joint effort from researchers in Japan, and includes a report on the forefront of data collection, user-centred mining and user interaction/reaction. It offers an overview of modern solutions with real-world applications, sharing hard-learned experiences.

Foundations and new directions in data mining

Foundations and new directions in data mining PDF Author: Tsau Y. Lin
Publisher:
ISBN:
Category : Data mining
Languages : en
Pages : 250

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Book Description


Data Mining

Data Mining PDF Author: Mehmed Kantardzic
Publisher: John Wiley & Sons
ISBN: 111951598X
Category : Computers
Languages : en
Pages : 672

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Book Description
Presents the latest techniques for analyzing and extracting information from large amounts of data in high-dimensional data spaces The revised and updated third edition of Data Mining contains in one volume an introduction to a systematic approach to the analysis of large data sets that integrates results from disciplines such as statistics, artificial intelligence, data bases, pattern recognition, and computer visualization. Advances in deep learning technology have opened an entire new spectrum of applications. The author—a noted expert on the topic—explains the basic concepts, models, and methodologies that have been developed in recent years. This new edition introduces and expands on many topics, as well as providing revised sections on software tools and data mining applications. Additional changes include an updated list of references for further study, and an extended list of problems and questions that relate to each chapter.This third edition presents new and expanded information that: • Explores big data and cloud computing • Examines deep learning • Includes information on convolutional neural networks (CNN) • Offers reinforcement learning • Contains semi-supervised learning and S3VM • Reviews model evaluation for unbalanced data Written for graduate students in computer science, computer engineers, and computer information systems professionals, the updated third edition of Data Mining continues to provide an essential guide to the basic principles of the technology and the most recent developments in the field.

Spectral Feature Selection for Data Mining (Open Access)

Spectral Feature Selection for Data Mining (Open Access) PDF Author: Zheng Alan Zhao
Publisher: CRC Press
ISBN: 1439862109
Category : Business & Economics
Languages : en
Pages : 224

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Book Description
Spectral Feature Selection for Data Mining introduces a novel feature selection technique that establishes a general platform for studying existing feature selection algorithms and developing new algorithms for emerging problems in real-world applications. This technique represents a unified framework for supervised, unsupervised, and semisupervise

Data Mining: Next Generation Challenges And Future Directions

Data Mining: Next Generation Challenges And Future Directions PDF Author: Hillol Kargupta
Publisher:
ISBN: 9788120327948
Category : Data mining
Languages : en
Pages : 576

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Book Description


Scientific Data Mining and Knowledge Discovery

Scientific Data Mining and Knowledge Discovery PDF Author: Mohamed Medhat Gaber
Publisher: Springer Science & Business Media
ISBN: 3642027881
Category : Computers
Languages : en
Pages : 398

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Book Description
Mohamed Medhat Gaber “It is not my aim to surprise or shock you – but the simplest way I can summarise is to say that there are now in the world machines that think, that learn and that create. Moreover, their ability to do these things is going to increase rapidly until – in a visible future – the range of problems they can handle will be coextensive with the range to which the human mind has been applied” by Herbert A. Simon (1916-2001) 1Overview This book suits both graduate students and researchers with a focus on discovering knowledge from scienti c data. The use of computational power for data analysis and knowledge discovery in scienti c disciplines has found its roots with the re- lution of high-performance computing systems. Computational science in physics, chemistry, and biology represents the rst step towards automation of data analysis tasks. The rational behind the developmentof computationalscience in different - eas was automating mathematical operations performed in those areas. There was no attention paid to the scienti c discovery process. Automated Scienti c Disc- ery (ASD) [1–3] represents the second natural step. ASD attempted to automate the process of theory discovery supported by studies in philosophy of science and cognitive sciences. Although early research articles have shown great successes, the area has not evolved due to many reasons. The most important reason was the lack of interaction between scientists and the automating systems.

Web Data Mining and the Development of Knowledge-Based Decision Support Systems

Web Data Mining and the Development of Knowledge-Based Decision Support Systems PDF Author: Sreedhar, G.
Publisher: IGI Global
ISBN: 1522518789
Category : Computers
Languages : en
Pages : 427

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Book Description
Websites are a central part of today’s business world; however, with the vast amount of information that constantly changes and the frequency of required updates, this can come at a high cost to modern businesses. Web Data Mining and the Development of Knowledge-Based Decision Support Systems is a key reference source on decision support systems in view of end user accessibility and identifies methods for extraction and analysis of useful information from web documents. Featuring extensive coverage across a range of relevant perspectives and topics, such as semantic web, machine learning, and expert systems, this book is ideally designed for web developers, internet users, online application developers, researchers, and faculty.

Foundations and Advances in Data Mining

Foundations and Advances in Data Mining PDF Author: Wesley Chu
Publisher: Springer Science & Business Media
ISBN: 9783540250579
Category : Computers
Languages : en
Pages : 360

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Book Description
With the growing use of information technology and the recent advances in web systems, the amount of data available to users has increased exponentially. Thus, there is a critical need to understand the content of the data. As a result, data-mining has become a popular research topic in recent years for the treatment of the "data rich and information poor" syndrome. In this carefully edited volume a theoretical foundation as well as important new directions for data-mining research are presented. It brings together a set of well respected data mining theoreticians and researchers with practical data mining experiences. The presented theories will give data mining practitioners a scientific perspective in data mining and thus provide more insight into their problems, and the provided new data mining topics can be expected to stimulate further research in these important directions.