Kernel Methods In Chemo And Bioinformatics

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Kernel Methods in Chemo- and Bioinformatics

Author : Holger Fröhlich
Publisher : Logos Verlag Berlin
Page : 0 pages
File Size : 40,5 Mb
Release : 2006
Category : Bioinformatics
ISBN : 3832514392

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Kernel Methods in Chemo- and Bioinformatics by Holger Fröhlich Pdf

This thesis is devoted to the finding of possible solutions for some machine learning related problems in modern chemo- and bioinformatics by means of so-called kernel methods. They are a special family of learning algorithms that have attracted a growing interest during the last years due to their good theoretical foundation and many successful practical applications in various disciplines. At the core of all kernel methods is the usage of a kernel function, which can be thought of as a special similarity measure between arbitrary objects. At the beginning of this thesis fundamentals and principles of kernel machines are reviewed. Afterwards a novel algorithm for model selection for Support Vector Machines (SVMs) in classification and regression is proposed, which is based on ideas from global optimization theory. It does not make any assumptions about special properties of the kernel function, like differentiability, and is highly efficient. Experimental comparisons to existing algorithms yield good results. After this we turn our point of interest to applications of kernel methods in chemo- and bioinformatics: For the ADME in silico prediction problem in modern drug discovery descriptor and graph-based representations of molecules are investigated. A descriptor selection algorithm is proposed, which can improve the statistical stability of an existing method. Furthermore, a novel class of specialized kernel functions is introduced that allows the comparison of a pair of molecules on a graph-based level. Various combinations of graph and descriptor-based representations are investigated, which on one hand allow the incorporation of expert domain knowledge and on the other hand the integration of different notions of molecular similarity in one SVM model. Furthermore, a reduced graph representation for molecular structures is proposed, in which certain structural elements are condensed in one node of the graph. Our experiments indicate that with our method improvements of the prediction performance compared to state-of-the-art modelling approaches can be achieved. At the same time our method is computationally rather cheap, unified and highly flexible. Another question, that is examined in the content of this thesis, is, which features of the membrane potentiel (MP) determine the generation of action potentials (APs) in cortical neurons in vivo. SVMs are trained to predict the occurrence of an AP before its onset based on several extracted features of the MP. A specialized feature selection algorithm is then used to select the most important features simultaneously in several in vivo recordings. In conclusion we find that the occurrence of an AP not only depends on the value of the MP shortly before AP onset, but also on the MP rate of change, the increase of the membrane potential several ms before AP onset, and the long range mean MP. Our findings systematically extend investigations by other researchers and are partially also confirmed by their results. As a last application of kernel methods in this thesis, we deal with the problem of clustering genes with regard to their function based on their Gene Ontology (GO) annotation. For this purpose specialized kernel functions are developed, which measure the similarity between gene products with respect to the structure of the GO graph. Using several clustering algorithms, like kernel k-means, spectral clustering and average linkage, we can detect meaningful clusters with our method. Applications to other ontologies or taxonomies in principle are possible.

Kernel Methods in Computational Biology

Author : Bernhard Schölkopf,Koji Tsuda,Jean-Philippe Vert
Publisher : MIT Press
Page : 428 pages
File Size : 50,6 Mb
Release : 2004
Category : Computers
ISBN : 0262195097

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Kernel Methods in Computational Biology by Bernhard Schölkopf,Koji Tsuda,Jean-Philippe Vert Pdf

A detailed overview of current research in kernel methods and their application to computational biology.

Chemoinformatics and Advanced Machine Learning Perspectives: Complex Computational Methods and Collaborative Techniques

Author : Lodhi, Huma,Yamanishi, Yoshihiro
Publisher : IGI Global
Page : 418 pages
File Size : 50,9 Mb
Release : 2010-07-31
Category : Computers
ISBN : 9781615209125

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Chemoinformatics and Advanced Machine Learning Perspectives: Complex Computational Methods and Collaborative Techniques by Lodhi, Huma,Yamanishi, Yoshihiro Pdf

"This book is a timely compendium of key elements that are crucial for the study of machine learning in chemoinformatics, giving an overview of current research in machine learning and their applications to chemoinformatics tasks"--Provided by publisher.

Handbook of Chemoinformatics Algorithms

Author : Jean-Loup Faulon,Andreas Bender
Publisher : CRC Press
Page : 454 pages
File Size : 52,5 Mb
Release : 2010-04-21
Category : Science
ISBN : 142008299X

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Handbook of Chemoinformatics Algorithms by Jean-Loup Faulon,Andreas Bender Pdf

Unlike in the related area of bioinformatics, few books currently exist that document the techniques, tools, and algorithms of chemoinformatics. Bringing together worldwide experts in the field, the Handbook of Chemoinformatics Algorithms provides an overview of the most common chemoinformatics algorithms in a single source.After a historical persp

Machine Learning under Resource Constraints - Fundamentals

Author : Katharina Morik,Peter Marwedel
Publisher : Walter de Gruyter GmbH & Co KG
Page : 542 pages
File Size : 48,9 Mb
Release : 2022-12-31
Category : Science
ISBN : 9783110786125

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Machine Learning under Resource Constraints - Fundamentals by Katharina Morik,Peter Marwedel Pdf

Machine Learning under Resource Constraints addresses novel machine learning algorithms that are challenged by high-throughput data, by high dimensions, or by complex structures of the data in three volumes. Resource constraints are given by the relation between the demands for processing the data and the capacity of the computing machinery. The resources are runtime, memory, communication, and energy. Hence, modern computer architectures play a significant role. Novel machine learning algorithms are optimized with regard to minimal resource consumption. Moreover, learned predictions are executed on diverse architectures to save resources. It provides a comprehensive overview of the novel approaches to machine learning research that consider resource constraints, as well as the application of the described methods in various domains of science and engineering. Volume 1 establishes the foundations of this new field. It goes through all the steps from data collection, their summary and clustering, to the different aspects of resource-aware learning, i.e., hardware, memory, energy, and communication awareness. Several machine learning methods are inspected with respect to their resource requirements and how to enhance their scalability on diverse computing architectures ranging from embedded systems to large computing clusters.

Agriculture as a Metaphor for Creativity in All Human Endeavors

Author : Robert S. Anderssen,Philip Broadbridge,Yasuhide Fukumoto,Kenji Kajiwara,Matthew Simpson,Ian Turner
Publisher : Springer
Page : 174 pages
File Size : 47,9 Mb
Release : 2018-03-13
Category : Technology & Engineering
ISBN : 9789811078118

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Agriculture as a Metaphor for Creativity in All Human Endeavors by Robert S. Anderssen,Philip Broadbridge,Yasuhide Fukumoto,Kenji Kajiwara,Matthew Simpson,Ian Turner Pdf

This book is a collection of papers presented at the 'Forum "Math-for-Industry" 2016 ' (FMfl2016), held at Queensland University of Technology, Brisbane, Australia, on November 21–23, 2016. The theme for this unique and important event was “Agriculture as a Metaphor for Creativity in All Human Endeavors”, and it brought together leading international mathematicians and active researchers from universities and industry to discuss current challenging topics and to promote interactive collaborations between mathematics and industry. The success of agricultural practice relies fundamentally on its interconnections with and dependence on biology and the environment. Both play essential roles, including the biological adaption to cope with environmental challenges of biotic and abiotic stress and global warming. The book highlights the development of mathematics within this framework that successful agricultural practice depends upon and exploits.

Artificial Intelligence and Heuristic Methods in Bioinformatics

Author : Paolo Frasconi,Ron Shamir
Publisher : Unknown
Page : 264 pages
File Size : 42,7 Mb
Release : 2003
Category : Computers
ISBN : UOM:39015058787329

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Artificial Intelligence and Heuristic Methods in Bioinformatics by Paolo Frasconi,Ron Shamir Pdf

The 14 papers consider how various methods in artificial intelligence are applied to problems in bioinformatics. Among the topics are statistical learning and kernel methods in bioinformatics, new machine learning methods for predicting protein topologies, multiple sequence alignments information in structure and function prediction, pattern discovery and the algorithms of surprise, the computational identification of regulatory sites in DNA sequences, computer system gene discovery for promoter structure analysis, and data acquisition and analysis in near-genome-wide expressions screening of tumor suppressor pathways using model cell lines with inducible transcription factors. There is no subject index. Annotation : 2004 Book News, Inc., Portland, OR (booknews.com).

Advanced AI Techniques and Applications in Bioinformatics

Author : Loveleen Gaur,Arun Solanki,Samuel Fosso Wamba,Noor Zaman Jhanjhi
Publisher : CRC Press
Page : 220 pages
File Size : 44,7 Mb
Release : 2021-10-17
Category : Technology & Engineering
ISBN : 9781000463019

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Advanced AI Techniques and Applications in Bioinformatics by Loveleen Gaur,Arun Solanki,Samuel Fosso Wamba,Noor Zaman Jhanjhi Pdf

The advanced AI techniques are essential for resolving various problematic aspects emerging in the field of bioinformatics. This book covers the recent approaches in artificial intelligence and machine learning methods and their applications in Genome and Gene editing, cancer drug discovery classification, and the protein folding algorithms among others. Deep learning, which is widely used in image processing, is also applicable in bioinformatics as one of the most popular artificial intelligence approaches. The wide range of applications discussed in this book are an indispensable resource for computer scientists, engineers, biologists, mathematicians, physicians, and medical informaticists. Features: Focusses on the cross-disciplinary relation between computer science and biology and the role of machine learning methods in resolving complex problems in bioinformatics Provides a comprehensive and balanced blend of topics and applications using various advanced algorithms Presents cutting-edge research methodologies in the area of AI methods when applied to bioinformatics and innovative solutions Discusses the AI/ML techniques, their use, and their potential for use in common and future bioinformatics applications Includes recent achievements in AI and bioinformatics contributed by a global team of researchers

Computational Systems Biology of Cancer

Author : Emmanuel Barillot,Laurence Calzone,Philippe Hupe,Jean-Philippe Vert,Andrei Zinovyev
Publisher : CRC Press
Page : 463 pages
File Size : 44,9 Mb
Release : 2012-08-25
Category : Science
ISBN : 9781439831441

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Computational Systems Biology of Cancer by Emmanuel Barillot,Laurence Calzone,Philippe Hupe,Jean-Philippe Vert,Andrei Zinovyev Pdf

The future of cancer research and the development of new therapeutic strategies rely on our ability to convert biological and clinical questions into mathematical models—integrating our knowledge of tumour progression mechanisms with the tsunami of information brought by high-throughput technologies such as microarrays and next-generation sequencing. Offering promising insights on how to defeat cancer, the emerging field of systems biology captures the complexity of biological phenomena using mathematical and computational tools. Novel Approaches to Fighting Cancer Drawn from the authors’ decade-long work in the cancer computational systems biology laboratory at Institut Curie (Paris, France), Computational Systems Biology of Cancer explains how to apply computational systems biology approaches to cancer research. The authors provide proven techniques and tools for cancer bioinformatics and systems biology research. Effectively Use Algorithmic Methods and Bioinformatics Tools in Real Biological Applications Suitable for readers in both the computational and life sciences, this self-contained guide assumes very limited background in biology, mathematics, and computer science. It explores how computational systems biology can help fight cancer in three essential aspects: Categorising tumours Finding new targets Designing improved and tailored therapeutic strategies Each chapter introduces a problem, presents applicable concepts and state-of-the-art methods, describes existing tools, illustrates applications using real cases, lists publically available data and software, and includes references to further reading. Some chapters also contain exercises. Figures from the text and scripts/data for reproducing a breast cancer data analysis are available at www.cancer-systems-biology.net.

Bioinformatics and Human Genomics Research

Author : Diego A. Forero
Publisher : CRC Press
Page : 374 pages
File Size : 45,5 Mb
Release : 2021-12-22
Category : Science
ISBN : 9781000405675

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Bioinformatics and Human Genomics Research by Diego A. Forero Pdf

Advances in high-throughput biological methods have led to the publication of a large number of genome-wide studies in human and animal models. In this context, recent tools from bioinformatics and computational biology have been fundamental for the analysis of these genomic studies. The book Bioinformatics and Human Genomics Research provides updated and comprehensive information about multiple approaches of the application of bioinformatic tools to research in human genomics. It covers strategies analysis of genome-wide association studies, genome-wide expression studies and genome-wide DNA methylation, among other topics. It provides interesting strategies for data mining in human genomics, network analysis, prediction of binding sites for miRNAs and transcription factors, among other themes. Experts from all around the world in bioinformatics and human genomics have contributed chapters in this book. Readers will find this book as quite useful for their in silico explorations, which would contribute to a better and deeper understanding of multiple biological processes and of pathophysiology of many human diseases.

Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics

Author : Clara Pizzuti,Marylyn D. Ritchie,Mario Giacobini
Publisher : Springer Science & Business Media
Page : 193 pages
File Size : 43,7 Mb
Release : 2011-04-19
Category : Computers
ISBN : 9783642203886

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Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics by Clara Pizzuti,Marylyn D. Ritchie,Mario Giacobini Pdf

This book constitutes the refereed proceedings of the 9th European Conference on Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics, EvoBIO 2011, held in Torino, Italy, in April 2011 co-located with the Evo* 2011 events. The 12 revised full papers presented together with 7 poster papers were carefully reviewed and selected from numerous submissions. All papers included topics of interest such as biomarker discovery, cell simulation and modeling, ecological modeling, fluxomics, gene networks, biotechnology, metabolomics, microarray analysis, phylogenetics, protein interactions, proteomics, sequence analysis and alignment, and systems biology.

Advanced Applications of Computational Mathematics

Author : Akshay Kumar,Mangey Ram,Hari Mohan Srivastava
Publisher : CRC Press
Page : 272 pages
File Size : 49,9 Mb
Release : 2022-09-01
Category : Mathematics
ISBN : 9781000793208

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Advanced Applications of Computational Mathematics by Akshay Kumar,Mangey Ram,Hari Mohan Srivastava Pdf

This book “Advanced Applications of Computational Mathematics” covers multidisciplinary studies containing advanced research in the field of computational and applied mathematics. The book includes research methodology, techniques, applications, and algorithms. The book will be very useful to advanced students, researchers and practitioners who are involved in the areas of computational and applied mathematics and engineering.

Quantitative Analysis of Ecological Networks

Author : Mark R. T. Dale,Marie-Josée Fortin
Publisher : Cambridge University Press
Page : 233 pages
File Size : 49,7 Mb
Release : 2021-04-15
Category : Language Arts & Disciplines
ISBN : 9781108491846

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Quantitative Analysis of Ecological Networks by Mark R. T. Dale,Marie-Josée Fortin Pdf

Displays the broad range of quantitative approaches to analysing ecological networks, providing clear examples and guidance for researchers.

Omics Data Integration towards Mining of Phenotype Specific Biomarkers in Cancer - Volume II

Author : Liang Cheng,Lei Deng,Chuan-Xing Li,Yan Zhang,Mingxiang Teng
Publisher : Frontiers Media SA
Page : 793 pages
File Size : 50,6 Mb
Release : 2022-11-29
Category : Science
ISBN : 9782832507384

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Omics Data Integration towards Mining of Phenotype Specific Biomarkers in Cancer - Volume II by Liang Cheng,Lei Deng,Chuan-Xing Li,Yan Zhang,Mingxiang Teng Pdf

Computational Intelligence Methods for Bioinformatics and Biostatistics

Author : Elia Biganzoli,Alfredo Vellido,Federico Ambrogi,Roberto Tagliaferri
Publisher : Springer Science & Business Media
Page : 281 pages
File Size : 50,8 Mb
Release : 2012-12-11
Category : Computers
ISBN : 9783642356865

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Computational Intelligence Methods for Bioinformatics and Biostatistics by Elia Biganzoli,Alfredo Vellido,Federico Ambrogi,Roberto Tagliaferri Pdf

This book constitutes the thoroughly refereed post-proceedings of the 8th International Meeting on Computational Intelligence Methods for Bioinformatics and Biostatistics, CIBB 2011, held in Gargnano del Garda, Italy, in June/July 2011. The 19 papers, presented together with 2 keynote speeches, were carefully reviewed and selected from 24 submissions. The papers are organized in topical sections on statistical learning, genomics, computational intelligence for health at the edge, proteomics, intelligent clinical decision support systems (i-CDSS), bioinformatics, and data clustering.