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  • af Mark Girolami
    1.563,95 kr.

    Independent Component Analysis (ICA) is a fast developing area of intense research interest. Following on from Self-Organising Neural Networks: Independent Component Analysis and Blind Signal Separation, this book reviews the significant developments of the past year.It covers topics such as the use of hidden Markov methods, the independence assumption, and topographic ICA, and includes tutorial chapters on Bayesian and variational approaches. It also provides the latest approaches to ICA problems, including an investigation into certain "e;hard problems"e; for the very first time.Comprising contributions from the most respected and innovative researchers in the field, this volume will be of interest to students and researchers in computer science and electrical engineering; research and development personnel in disciplines such as statistical modelling and data analysis; bio-informatic workers; and physicists and chemists requiring novel data analysis methods.

  • - 4th IAPR International Conference, PRIB 2009, Sheffield, UK, September 7-9, 2009, Proceedings
    af Visakan Kadirkamanathan
    587,95 kr.

  • af Simon Rogers & Mark Girolami
    791,95 kr.

    "e;A First Course in Machine Learning by Simon Rogers and Mark Girolami is the best introductory book for ML currently available. It combines rigor and precision with accessibility, starts from a detailed explanation of the basic foundations of Bayesian analysis in the simplest of settings, and goes all the way to the frontiers of the subject such as infinite mixture models, GPs, and MCMC."e;-Devdatt Dubhashi, Professor, Department of Computer Science and Engineering, Chalmers University, Sweden"e;This textbook manages to be easier to read than other comparable books in the subject while retaining all the rigorous treatment needed. The new chapters put it at the forefront of the field by covering topics that have become mainstream in machine learning over the last decade."e;-Daniel Barbara, George Mason University, Fairfax, Virginia, USA"e;The new edition of A First Course in Machine Learning by Rogers and Girolami is an excellent introduction to the use of statistical methods in machine learning. The book introduces concepts such as mathematical modeling, inference, and prediction, providing 'just in time' the essential background on linear algebra, calculus, and probability theory that the reader needs to understand these concepts."e;-Daniel Ortiz-Arroyo, Associate Professor, Aalborg University Esbjerg, Denmark"e;I was impressed by how closely the material aligns with the needs of an introductory course on machine learning, which is its greatest strengthOverall, this is a pragmatic and helpful book, which is well-aligned to the needs of an introductory course and one that I will be looking at for my own students in coming months."e;-David Clifton, University of Oxford, UK"e;The first edition of this book was already an excellent introductory text on machine learning for an advanced undergraduate or taught masters level course, or indeed for anybody who wants to learn about an interesting and important field of computer science. The additional chapters of advanced material on Gaussian process, MCMC and mixture modeling provide an ideal basis for practical projects, without disturbing the very clear and readable exposition of the basics contained in the first part of the book."e;a -Gavin Cawley, Senior Lecturer, School of Computing Sciences, University of East Anglia, UK"e;This book could be used for junior/senior undergraduate students or first-year graduate students, as well as individuals who want to explore the field of machine learningThe book introduces not only the concepts but the underlying ideas on algorithm implementation from a critical thinking perspective."e;-Guangzhi Qu, Oakland University, Rochester, Michigan, USA

  • - Independent Component Analysis and Blind Source Separation
    af Mark Girolami
    1.265,95 kr.

    The conception of fresh ideas and the development of new techniques for Blind Source Separation and Independent Component Analysis have been rapid in recent years.

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