Data Mining For Bioinformatics

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Data Mining for Bioinformatics

Author : Sumeet Dua,Pradeep Chowriappa
Publisher : CRC Press
Page : 351 pages
File Size : 54,8 Mb
Release : 2012-11-06
Category : Computers
ISBN : 9780849328015

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Data Mining for Bioinformatics by Sumeet Dua,Pradeep Chowriappa Pdf

Covering theory, algorithms, and methodologies, as well as data mining technologies, Data Mining for Bioinformatics provides a comprehensive discussion of data-intensive computations used in data mining with applications in bioinformatics. It supplies a broad, yet in-depth, overview of the application domains of data mining for bioinformatics to help readers from both biology and computer science backgrounds gain an enhanced understanding of this cross-disciplinary field. The book offers authoritative coverage of data mining techniques, technologies, and frameworks used for storing, analyzing, and extracting knowledge from large databases in the bioinformatics domains, including genomics and proteomics. It begins by describing the evolution of bioinformatics and highlighting the challenges that can be addressed using data mining techniques. Introducing the various data mining techniques that can be employed in biological databases, the text is organized into four sections: Supplies a complete overview of the evolution of the field and its intersection with computational learning Describes the role of data mining in analyzing large biological databases—explaining the breath of the various feature selection and feature extraction techniques that data mining has to offer Focuses on concepts of unsupervised learning using clustering techniques and its application to large biological data Covers supervised learning using classification techniques most commonly used in bioinformatics—addressing the need for validation and benchmarking of inferences derived using either clustering or classification The book describes the various biological databases prominently referred to in bioinformatics and includes a detailed list of the applications of advanced clustering algorithms used in bioinformatics. Highlighting the challenges encountered during the application of classification on biological databases, it considers systems of both single and ensemble classifiers and shares effort-saving tips for model selection and performance estimation strategies.

Data Mining for Bioinformatics

Author : Sumeet Dua,Pradeep Chowriappa
Publisher : CRC Press
Page : 351 pages
File Size : 47,8 Mb
Release : 2012-11-06
Category : Computers
ISBN : 9781466588660

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Data Mining for Bioinformatics by Sumeet Dua,Pradeep Chowriappa Pdf

Covering theory, algorithms, and methodologies, as well as data mining technologies, Data Mining for Bioinformatics provides a comprehensive discussion of data-intensive computations used in data mining with applications in bioinformatics. It supplies a broad, yet in-depth, overview of the application domains of data mining for bioinformatics to he

Data Mining in Bioinformatics

Author : Jason T. L. Wang,Mohammed J. Zaki,Hannu Toivonen,Dennis Shasha
Publisher : Springer Science & Business Media
Page : 340 pages
File Size : 43,9 Mb
Release : 2006-03-30
Category : Computers
ISBN : 9781846280597

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Data Mining in Bioinformatics by Jason T. L. Wang,Mohammed J. Zaki,Hannu Toivonen,Dennis Shasha Pdf

Written especially for computer scientists, all necessary biology is explained. Presents new techniques on gene expression data mining, gene mapping for disease detection, and phylogenetic knowledge discovery.

Data Mining for Bioinformatics Applications

Author : He Zengyou
Publisher : Woodhead Publishing
Page : 100 pages
File Size : 41,9 Mb
Release : 2015-06-09
Category : Computers
ISBN : 9780081001073

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Data Mining for Bioinformatics Applications by He Zengyou Pdf

Data Mining for Bioinformatics Applications provides valuable information on the data mining methods have been widely used for solving real bioinformatics problems, including problem definition, data collection, data preprocessing, modeling, and validation. The text uses an example-based method to illustrate how to apply data mining techniques to solve real bioinformatics problems, containing 45 bioinformatics problems that have been investigated in recent research. For each example, the entire data mining process is described, ranging from data preprocessing to modeling and result validation. Provides valuable information on the data mining methods have been widely used for solving real bioinformatics problems Uses an example-based method to illustrate how to apply data mining techniques to solve real bioinformatics problems Contains 45 bioinformatics problems that have been investigated in recent research

Data Mining in Bioinformatics

Author : Jason T. L. Wang
Publisher : Springer Science & Business Media
Page : 356 pages
File Size : 45,9 Mb
Release : 2005
Category : Computers
ISBN : 1852336714

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Data Mining in Bioinformatics by Jason T. L. Wang Pdf

Written especially for computer scientists, all necessary biology is explained. Presents new techniques on gene expression data mining, gene mapping for disease detection, and phylogenetic knowledge discovery.

Advanced Data Mining Technologies in Bioinformatics

Author : Hui-Huang Hsu
Publisher : IGI Global
Page : 343 pages
File Size : 50,8 Mb
Release : 2006-01-01
Category : Computers
ISBN : 9781591408635

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Advanced Data Mining Technologies in Bioinformatics by Hui-Huang Hsu Pdf

"This book covers research topics of data mining on bioinformatics presenting the basics and problems of bioinformatics and applications of data mining technologies pertaining to the field"--Provided by publisher.

Data Mining

Author : Sushmita Mitra,Tinku Acharya
Publisher : John Wiley & Sons
Page : 423 pages
File Size : 52,9 Mb
Release : 2005-01-21
Category : Computers
ISBN : 9780471474883

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Data Mining by Sushmita Mitra,Tinku Acharya Pdf

First title to ever present soft computing approaches and their application in data mining, along with the traditional hard-computing approaches Addresses the principles of multimedia data compression techniques (for image, video, text) and their role in data mining Discusses principles and classical algorithms on string matching and their role in data mining

Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics

Author : Elena Marchiori
Publisher : Springer Science & Business Media
Page : 311 pages
File Size : 45,8 Mb
Release : 2007-04-02
Category : Computers
ISBN : 9783540717829

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Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics by Elena Marchiori Pdf

This book constitutes the refereed proceedings of the 5th European Conference on Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics, EvoBIO 2007, held in Valencia, Spain, April 2007. Coverage brings together experts in computer science with experts in bioinformatics and the biological sciences. It presents contributions on fundamental and theoretical issues along with papers dealing with different applications areas.

Biological Data Mining

Author : Jake Y. Chen,Stefano Lonardi
Publisher : CRC Press
Page : 736 pages
File Size : 48,7 Mb
Release : 2009-09-01
Category : Computers
ISBN : 9781420086850

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Biological Data Mining by Jake Y. Chen,Stefano Lonardi Pdf

Like a data-guzzling turbo engine, advanced data mining has been powering post-genome biological studies for two decades. Reflecting this growth, Biological Data Mining presents comprehensive data mining concepts, theories, and applications in current biological and medical research. Each chapter is written by a distinguished team of interdisciplin

Data Mining for Bioinformatics

Author : Sumeet Dua,Pradeep Chowriappa
Publisher : Unknown
Page : 348 pages
File Size : 50,7 Mb
Release : 2012
Category : Electronic
ISBN : OCLC:1136887187

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Data Mining for Bioinformatics by Sumeet Dua,Pradeep Chowriappa Pdf

Covering theory, algorithms, and methodologies, as well as data mining technologies, Data Mining for Bioinformatics provides a comprehensive discussion of data-intensive computations used in data mining with applications in bioinformatics. It supplies a broad, yet in-depth, overview of the application domains of data mining for bioinformatics to he.

Sequence Data Mining

Author : Guozhu Dong,Jian Pei
Publisher : Springer Science & Business Media
Page : 160 pages
File Size : 42,6 Mb
Release : 2007-10-31
Category : Computers
ISBN : 9780387699370

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Sequence Data Mining by Guozhu Dong,Jian Pei Pdf

Understanding sequence data, and the ability to utilize this hidden knowledge, will create a significant impact on many aspects of our society. Examples of sequence data include DNA, protein, customer purchase history, web surfing history, and more. This book provides thorough coverage of the existing results on sequence data mining as well as pattern types and associated pattern mining methods. It offers balanced coverage on data mining and sequence data analysis, allowing readers to access the state-of-the-art results in one place.

Biological Data Mining in Protein Interaction Networks

Author : Li, Xiao-Li,Ng, See-Kiong
Publisher : IGI Global
Page : 450 pages
File Size : 55,7 Mb
Release : 2009-05-31
Category : Technology & Engineering
ISBN : 9781605663999

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Biological Data Mining in Protein Interaction Networks by Li, Xiao-Li,Ng, See-Kiong Pdf

"The goal of this book is to disseminate research results and best practices from cross-disciplinary researchers and practitioners interested in, and working on bioinformatics, data mining, and proteomics"--Provided by publisher.

Introduction to Data Mining for the Life Sciences

Author : Rob Sullivan
Publisher : Springer Science & Business Media
Page : 644 pages
File Size : 47,9 Mb
Release : 2012-01-07
Category : Science
ISBN : 9781597452908

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Introduction to Data Mining for the Life Sciences by Rob Sullivan Pdf

Data mining provides a set of new techniques to integrate, synthesize, and analyze tdata, uncovering the hidden patterns that exist within. Traditionally, techniques such as kernel learning methods, pattern recognition, and data mining, have been the domain of researchers in areas such as artificial intelligence, but leveraging these tools, techniques, and concepts against your data asset to identify problems early, understand interactions that exist and highlight previously unrealized relationships through the combination of these different disciplines can provide significant value for the investigator and her organization.

Fundamentals of Data Mining in Genomics and Proteomics

Author : Werner Dubitzky,Martin Granzow,Daniel P. Berrar
Publisher : Springer Science & Business Media
Page : 300 pages
File Size : 45,9 Mb
Release : 2007-04-13
Category : Science
ISBN : 9780387475097

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Fundamentals of Data Mining in Genomics and Proteomics by Werner Dubitzky,Martin Granzow,Daniel P. Berrar Pdf

This book presents state-of-the-art analytical methods from statistics and data mining for the analysis of high-throughput data from genomics and proteomics. It adopts an approach focusing on concepts and applications and presents key analytical techniques for the analysis of genomics and proteomics data by detailing their underlying principles, merits and limitations.

Data Analytics in Bioinformatics

Author : Rabinarayan Satpathy,Tanupriya Choudhury,Suneeta Satpathy,Sachi Nandan Mohanty,Xiaobo Zhang
Publisher : John Wiley & Sons
Page : 433 pages
File Size : 52,6 Mb
Release : 2021-01-20
Category : Computers
ISBN : 9781119785606

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Data Analytics in Bioinformatics by Rabinarayan Satpathy,Tanupriya Choudhury,Suneeta Satpathy,Sachi Nandan Mohanty,Xiaobo Zhang Pdf

Machine learning techniques are increasingly being used to address problems in computational biology and bioinformatics. Novel machine learning computational techniques to analyze high throughput data in the form of sequences, gene and protein expressions, pathways, and images are becoming vital for understanding diseases and future drug discovery. Machine learning techniques such as Markov models, support vector machines, neural networks, and graphical models have been successful in analyzing life science data because of their capabilities in handling randomness and uncertainty of data noise and in generalization. Machine Learning in Bioinformatics compiles recent approaches in machine learning methods and their applications in addressing contemporary problems in bioinformatics approximating classification and prediction of disease, feature selection, dimensionality reduction, gene selection and classification of microarray data and many more.