Clustering in Bioinformatics and Drug Discovery

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Publisher : CRC Press
ISBN 13 : 1439816794
Total Pages : 235 pages
Book Rating : 4.4/5 (398 download)

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Book Synopsis Clustering in Bioinformatics and Drug Discovery by : John David MacCuish

Download or read book Clustering in Bioinformatics and Drug Discovery written by John David MacCuish and published by CRC Press. This book was released on 2010-11-15 with total page 235 pages. Available in PDF, EPUB and Kindle. Book excerpt: With a DVD of color figures, Clustering in Bioinformatics and Drug Discovery provides an expert guide on extracting the most pertinent information from pharmaceutical and biomedical data. It offers a concise overview of common and recent clustering methods used in bioinformatics and drug discovery.Setting the stage for subsequent material, the firs

Clustering in Bioinformatics and Drug Discovery

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Author :
Publisher : CRC Press
ISBN 13 : 9781138374232
Total Pages : 244 pages
Book Rating : 4.3/5 (742 download)

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Book Synopsis Clustering in Bioinformatics and Drug Discovery by : JOHN DAVID. MACCUISH MACCUISH (NORAH E.)

Download or read book Clustering in Bioinformatics and Drug Discovery written by JOHN DAVID. MACCUISH MACCUISH (NORAH E.) and published by CRC Press. This book was released on 2019-07-02 with total page 244 pages. Available in PDF, EPUB and Kindle. Book excerpt: With a DVD of color figures, Clustering in Bioinformatics and Drug Discovery provides an expert guide on extracting the most pertinent information from pharmaceutical and biomedical data. It offers a concise overview of common and recent clustering methods used in bioinformatics and drug discovery. Setting the stage for subsequent material, the first three chapters of the book introduce statistical learning theory, exploratory data analysis, clustering algorithms, different types of data, graph theory, and various clustering forms. In the following chapters on partitional, cluster sampling, and hierarchical algorithms, the book provides readers with enough detail to obtain a basic understanding of cluster analysis for bioinformatics and drug discovery. The remaining chapters cover more advanced methods, such as hybrid and parallel algorithms, as well as details related to specific types of data, including asymmetry, ambiguity, validation measures, and visualization. This book explores the application of cluster analysis in the areas of bioinformatics and cheminformatics as they relate to drug discovery. Clarifying the use and misuse of clustering methods, it helps readers understand the relative merits of these methods and evaluate results so that useful hypotheses can be developed and tested.

Integrative Cluster Analysis in Bioinformatics

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Publisher : John Wiley & Sons
ISBN 13 : 1118906535
Total Pages : 451 pages
Book Rating : 4.1/5 (189 download)

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Book Synopsis Integrative Cluster Analysis in Bioinformatics by : Basel Abu-Jamous

Download or read book Integrative Cluster Analysis in Bioinformatics written by Basel Abu-Jamous and published by John Wiley & Sons. This book was released on 2015-06-15 with total page 451 pages. Available in PDF, EPUB and Kindle. Book excerpt: Clustering techniques are increasingly being put to use in the analysis of high-throughput biological datasets. Novel computational techniques to analyse 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. This book details the complete pathway of cluster analysis, from the basics of molecular biology to the generation of biological knowledge. The book also presents the latest clustering methods and clustering validation, thereby offering the reader a comprehensive review of clustering analysis in bioinformatics from the fundamentals through to state-of-the-art techniques and applications. Key Features: Offers a contemporary review of clustering methods and applications in the field of bioinformatics, with particular emphasis on gene expression analysis Provides an excellent introduction to molecular biology with computer scientists and information engineering researchers in mind, laying out the basic biological knowledge behind the application of clustering analysis techniques in bioinformatics Explains the structure and properties of many types of high-throughput datasets commonly found in biological studies Discusses how clustering methods and their possible successors would be used to enhance the pace of biological discoveries in the future Includes a companion website hosting a selected collection of codes and links to publicly available datasets

Integrative Cluster Analysis in Bioinformatics

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Publisher :
ISBN 13 : 9781118906545
Total Pages : pages
Book Rating : 4.9/5 (65 download)

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Book Synopsis Integrative Cluster Analysis in Bioinformatics by : Basel Abu Jamous

Download or read book Integrative Cluster Analysis in Bioinformatics written by Basel Abu Jamous and published by . This book was released on 2015 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Clustering Challenges In Biological Networks

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Publisher : World Scientific
ISBN 13 : 9814474193
Total Pages : 347 pages
Book Rating : 4.8/5 (144 download)

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Book Synopsis Clustering Challenges In Biological Networks by : W Art Chaovalitwongse

Download or read book Clustering Challenges In Biological Networks written by W Art Chaovalitwongse and published by World Scientific. This book was released on 2009-02-11 with total page 347 pages. Available in PDF, EPUB and Kindle. Book excerpt: This volume presents a collection of papers dealing with various aspects of clustering in biological networks and other related problems in computational biology. It consists of two parts, with the first part containing surveys of selected topics and the second part presenting original research contributions. This book will be a valuable source of material to faculty, students, and researchers in mathematical programming, data analysis and data mining, as well as people working in bioinformatics, computer science, engineering, and applied mathematics. In addition, the book can be used as a supplement to any course in data mining or computational/systems biology.

Bioinformatics and Drug Discovery

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Publisher :
ISBN 13 : 9781617799655
Total Pages : 374 pages
Book Rating : 4.7/5 (996 download)

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Book Synopsis Bioinformatics and Drug Discovery by : Richard S. Larson

Download or read book Bioinformatics and Drug Discovery written by Richard S. Larson and published by . This book was released on 2012 with total page 374 pages. Available in PDF, EPUB and Kindle. Book excerpt: Recent advances in drug discovery have been rapid. The second edition of Bioinformatics and Drug Discovery has been completely updated to include topics that range from new technologies in target identification, genomic analysis, cheminformatics, protein analysis, and network or pathway analysis. Each chapter provides an extended introduction that describes the theory and application of the technology. In the second part of each chapter, detailed procedures related to the use of these technologies and software have been incorporated. Written in the highly successful Methods in Molecular Biology series format, the chapters include the kind of detailed description and implementation advice that is crucial for getting optimal results in the laboratory. Thorough and intuitive, Bioinformatics and Drug Discovery, Second Edition seeks to aid scientists in the further study of the rapidly expanding field of drug discovery.

Similarity-Based Clustering

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Publisher : Springer
ISBN 13 : 364201805X
Total Pages : 211 pages
Book Rating : 4.6/5 (42 download)

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Book Synopsis Similarity-Based Clustering by : Thomas Villmann

Download or read book Similarity-Based Clustering written by Thomas Villmann and published by Springer. This book was released on 2009-05-14 with total page 211 pages. Available in PDF, EPUB and Kindle. Book excerpt: Similarity-based learning methods have a great potential as an intuitive and ?exible toolbox for mining, visualization,and inspection of largedata sets. They combine simple and human-understandable principles, such as distance-based classi?cation, prototypes, or Hebbian learning, with a large variety of di?erent, problem-adapted design choices, such as a data-optimum topology, similarity measure, or learning mode. In medicine, biology, and medical bioinformatics, more and more data arise from clinical measurements such as EEG or fMRI studies for monitoring brain activity, mass spectrometry data for the detection of proteins, peptides and composites, or microarray pro?les for the analysis of gene expressions. Typically, data are high-dimensional, noisy, and very hard to inspect using classic (e. g. , symbolic or linear) methods. At the same time, new technologies ranging from the possibility of a very high resolution of spectra to high-throughput screening for microarray data are rapidly developing and carry thepromiseofane?cient,cheap,andautomaticgatheringoftonsofhigh-quality data with large information potential. Thus, there is a need for appropriate - chine learning methods which help to automatically extract and interpret the relevant parts of this information and which, eventually, help to enable und- standingofbiologicalsystems,reliablediagnosisoffaults,andtherapyofdiseases such as cancer based on this information. Moreover, these application scenarios pose fundamental and qualitatively new challenges to the learning systems - cause of the speci?cs of the data and learning tasks. Since these characteristics are particularly pronounced within the medical domain, but not limited to it and of principled interest, this research topic opens the way toward important new directions of algorithmic design and accompanying theory.

Pharmaceutical Data Mining

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Publisher : John Wiley & Sons
ISBN 13 : 0470567619
Total Pages : 584 pages
Book Rating : 4.4/5 (75 download)

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Book Synopsis Pharmaceutical Data Mining by : Konstantin V. Balakin

Download or read book Pharmaceutical Data Mining written by Konstantin V. Balakin and published by John Wiley & Sons. This book was released on 2009-11-19 with total page 584 pages. Available in PDF, EPUB and Kindle. Book excerpt: Leading experts illustrate how sophisticated computational data mining techniques can impact contemporary drug discovery and development In the era of post-genomic drug development, extracting and applying knowledge from chemical, biological, and clinical data is one of the greatest challenges facing the pharmaceutical industry. Pharmaceutical Data Mining brings together contributions from leading academic and industrial scientists, who address both the implementation of new data mining technologies and application issues in the industry. This accessible, comprehensive collection discusses important theoretical and practical aspects of pharmaceutical data mining, focusing on diverse approaches for drug discovery—including chemogenomics, toxicogenomics, and individual drug response prediction. The five main sections of this volume cover: A general overview of the discipline, from its foundations to contemporary industrial applications Chemoinformatics-based applications Bioinformatics-based applications Data mining methods in clinical development Data mining algorithms, technologies, and software tools, with emphasis on advanced algorithms and software that are currently used in the industry or represent promising approaches In one concentrated reference, Pharmaceutical Data Mining reveals the role and possibilities of these sophisticated techniques in contemporary drug discovery and development. It is ideal for graduate-level courses covering pharmaceutical science, computational chemistry, and bioinformatics. In addition, it provides insight to pharmaceutical scientists, principal investigators, principal scientists, research directors, and all scientists working in the field of drug discovery and development and associated industries.

Industrial Clusters in Biotechnology

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Publisher : Imperial College Press
ISBN 13 : 9781860946073
Total Pages : 254 pages
Book Rating : 4.9/5 (46 download)

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Book Synopsis Industrial Clusters in Biotechnology by : Chiesa Vittorio Chiaroni Davide

Download or read book Industrial Clusters in Biotechnology written by Chiesa Vittorio Chiaroni Davide and published by Imperial College Press. This book was released on 2005 with total page 254 pages. Available in PDF, EPUB and Kindle. Book excerpt: Annotation - the preconditions for a cluster to grow (scientific base and/or industrial base, innovative financing, etc.); - the driving forces for cluster growth and development, i.e. the key factors of development (new company creation, IP rules, acceptance of biotech products, services and infrastructures, etc.); - best practices in cluster management (barrier removal, network creation, marketing, technology transfer, etc.).

Bioinformatics and Computational Biology in Drug Discovery and Development

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Publisher : Cambridge University Press
ISBN 13 : 1316538818
Total Pages : 255 pages
Book Rating : 4.3/5 (165 download)

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Book Synopsis Bioinformatics and Computational Biology in Drug Discovery and Development by : William T. Loging

Download or read book Bioinformatics and Computational Biology in Drug Discovery and Development written by William T. Loging and published by Cambridge University Press. This book was released on 2016-03-17 with total page 255 pages. Available in PDF, EPUB and Kindle. Book excerpt: Computational biology drives discovery through its use of high-throughput informatics approaches. This book provides a road map of the current drug development process and how computational biology approaches play a critical role across the entire drug discovery pipeline. Through the use of previously unpublished, real-life case studies the impact of a range of computational approaches are discussed at various phases of the pipeline. Additionally, a focus section provides innovative visualisation approaches, from both the drug discovery process as well as from other fields that utilise large datasets, recognising the increasing use of such technology. Serving the needs of early career and more experienced scientists, this up-to-date reference provides an essential introduction to the process and background of drug discovery, highlighting how computational researchers can contribute to that pipeline.

Data Clustering: Theory, Algorithms, and Applications, Second Edition

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Publisher : SIAM
ISBN 13 : 1611976332
Total Pages : 430 pages
Book Rating : 4.6/5 (119 download)

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Book Synopsis Data Clustering: Theory, Algorithms, and Applications, Second Edition by : Guojun Gan

Download or read book Data Clustering: Theory, Algorithms, and Applications, Second Edition written by Guojun Gan and published by SIAM. This book was released on 2020-11-10 with total page 430 pages. Available in PDF, EPUB and Kindle. Book excerpt: Data clustering, also known as cluster analysis, is an unsupervised process that divides a set of objects into homogeneous groups. Since the publication of the first edition of this monograph in 2007, development in the area has exploded, especially in clustering algorithms for big data and open-source software for cluster analysis. This second edition reflects these new developments, covers the basics of data clustering, includes a list of popular clustering algorithms, and provides program code that helps users implement clustering algorithms. Data Clustering: Theory, Algorithms and Applications, Second Edition will be of interest to researchers, practitioners, and data scientists as well as undergraduate and graduate students.

Applied Biclustering Methods for Big and High-Dimensional Data Using R

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Publisher : CRC Press
ISBN 13 : 1482208245
Total Pages : 428 pages
Book Rating : 4.4/5 (822 download)

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Book Synopsis Applied Biclustering Methods for Big and High-Dimensional Data Using R by : Adetayo Kasim

Download or read book Applied Biclustering Methods for Big and High-Dimensional Data Using R written by Adetayo Kasim and published by CRC Press. This book was released on 2016-10-03 with total page 428 pages. Available in PDF, EPUB and Kindle. Book excerpt: Proven Methods for Big Data Analysis As big data has become standard in many application areas, challenges have arisen related to methodology and software development, including how to discover meaningful patterns in the vast amounts of data. Addressing these problems, Applied Biclustering Methods for Big and High-Dimensional Data Using R shows how to apply biclustering methods to find local patterns in a big data matrix. The book presents an overview of data analysis using biclustering methods from a practical point of view. Real case studies in drug discovery, genetics, marketing research, biology, toxicity, and sports illustrate the use of several biclustering methods. References to technical details of the methods are provided for readers who wish to investigate the full theoretical background. All the methods are accompanied with R examples that show how to conduct the analyses. The examples, software, and other materials are available on a supplementary website.

Advances in Bioinformatics

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Publisher : Springer Nature
ISBN 13 : 9813361913
Total Pages : 446 pages
Book Rating : 4.8/5 (133 download)

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Book Synopsis Advances in Bioinformatics by : Vijai Singh

Download or read book Advances in Bioinformatics written by Vijai Singh and published by Springer Nature. This book was released on 2021-07-31 with total page 446 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book presents the latest developments in bioinformatics, highlighting the importance of bioinformatics in genomics, transcriptomics, metabolism and cheminformatics analysis, as well as in drug discovery and development. It covers tools, data mining and analysis, protein analysis, computational vaccine, and drug design. Covering cheminformatics, computational evolutionary biology and the role of next-generation sequencing and neural network analysis, it also discusses the use of bioinformatics tools in the development of precision medicine. This book offers a valuable source of information for not only beginners in bioinformatics, but also for students, researchers, scientists, clinicians, practitioners, policymakers, and stakeholders who are interested in harnessing the potential of bioinformatics in many areas.

Structural Bioinformatics: Applications in Preclinical Drug Discovery Process

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Publisher : Springer
ISBN 13 : 3030052826
Total Pages : 406 pages
Book Rating : 4.0/5 (3 download)

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Book Synopsis Structural Bioinformatics: Applications in Preclinical Drug Discovery Process by : C. Gopi Mohan

Download or read book Structural Bioinformatics: Applications in Preclinical Drug Discovery Process written by C. Gopi Mohan and published by Springer. This book was released on 2019-01-10 with total page 406 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book reviews the advances and challenges of structure-based drug design in the preclinical drug discovery process, addressing various diseases, including malaria, tuberculosis and cancer. Written by internationally recognized researchers, this edited book discusses how the application of the various in-silico techniques, such as molecular docking, virtual screening, pharmacophore modeling, molecular dynamics simulations, and residue interaction networks offers insights into pharmacologically active novel molecular entities. It presents a clear concept of the molecular mechanism of different drug targets and explores methods to help understand drug resistance. In addition, it includes chapters dedicated to natural-product- derived medicines, combinatorial drug discovery, the CryoEM technique for structure-based drug design and big data in drug discovery. The book offers an invaluable resource for graduate and postgraduate students, as well as for researchers in academic and industrial laboratories working in the areas of chemoinformatics, medicinal and pharmaceutical chemistry and pharmacoinformatics.

Data Analytics in Bioinformatics

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Publisher : John Wiley & Sons
ISBN 13 : 111978560X
Total Pages : 433 pages
Book Rating : 4.1/5 (197 download)

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Book Synopsis Data Analytics in Bioinformatics by : Rabinarayan Satpathy

Download or read book Data Analytics in Bioinformatics written by Rabinarayan Satpathy and published by John Wiley & Sons. This book was released on 2021-01-20 with total page 433 pages. Available in PDF, EPUB and Kindle. Book excerpt: 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.

Data Clustering

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Publisher : CRC Press
ISBN 13 : 1315360411
Total Pages : 654 pages
Book Rating : 4.3/5 (153 download)

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Book Synopsis Data Clustering by : Charu C. Aggarwal

Download or read book Data Clustering written by Charu C. Aggarwal and published by CRC Press. This book was released on 2018-09-03 with total page 654 pages. Available in PDF, EPUB and Kindle. Book excerpt: Research on the problem of clustering tends to be fragmented across the pattern recognition, database, data mining, and machine learning communities. Addressing this problem in a unified way, Data Clustering: Algorithms and Applications provides complete coverage of the entire area of clustering, from basic methods to more refined and complex data clustering approaches. It pays special attention to recent issues in graphs, social networks, and other domains. The book focuses on three primary aspects of data clustering: Methods, describing key techniques commonly used for clustering, such as feature selection, agglomerative clustering, partitional clustering, density-based clustering, probabilistic clustering, grid-based clustering, spectral clustering, and nonnegative matrix factorization Domains, covering methods used for different domains of data, such as categorical data, text data, multimedia data, graph data, biological data, stream data, uncertain data, time series clustering, high-dimensional clustering, and big data Variations and Insights, discussing important variations of the clustering process, such as semisupervised clustering, interactive clustering, multiview clustering, cluster ensembles, and cluster validation In this book, top researchers from around the world explore the characteristics of clustering problems in a variety of application areas. They also explain how to glean detailed insight from the clustering process—including how to verify the quality of the underlying clusters—through supervision, human intervention, or the automated generation of alternative clusters.

Data Mining in Drug Discovery

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Publisher : John Wiley & Sons
ISBN 13 : 3527656006
Total Pages : 322 pages
Book Rating : 4.5/5 (276 download)

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Book Synopsis Data Mining in Drug Discovery by : Rémy D. Hoffmann

Download or read book Data Mining in Drug Discovery written by Rémy D. Hoffmann and published by John Wiley & Sons. This book was released on 2013-09-25 with total page 322 pages. Available in PDF, EPUB and Kindle. Book excerpt: Written for drug developers rather than computer scientists, this monograph adopts a systematic approach to mining scientifi c data sources, covering all key steps in rational drug discovery, from compound screening to lead compound selection and personalized medicine. Clearly divided into four sections, the first part discusses the different data sources available, both commercial and non-commercial, while the next section looks at the role and value of data mining in drug discovery. The third part compares the most common applications and strategies for polypharmacology, where data mining can substantially enhance the research effort. The final section of the book is devoted to systems biology approaches for compound testing. Throughout the book, industrial and academic drug discovery strategies are addressed, with contributors coming from both areas, enabling an informed decision on when and which data mining tools to use for one's own drug discovery project.