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Gaussian Processes for Machine Learning
  • Language: en
  • Pages: 266

Gaussian Processes for Machine Learning

  • Type: Book
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  • Published: 2005-11-23
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  • Publisher: MIT Press

A comprehensive and self-contained introduction to Gaussian processes, which provide a principled, practical, probabilistic approach to learning in kernel machines. Gaussian processes (GPs) provide a principled, practical, probabilistic approach to learning in kernel machines. GPs have received increased attention in the machine-learning community over the past decade, and this book provides a long-needed systematic and unified treatment of theoretical and practical aspects of GPs in machine learning. The treatment is comprehensive and self-contained, targeted at researchers and students in machine learning and applied statistics. The book deals with the supervised-learning problem for both ...

Efficient Reinforcement Learning Using Gaussian Processes
  • Language: en
  • Pages: 226

Efficient Reinforcement Learning Using Gaussian Processes

This book examines Gaussian processes in both model-based reinforcement learning (RL) and inference in nonlinear dynamic systems.First, we introduce PILCO, a fully Bayesian approach for efficient RL in continuous-valued state and action spaces when no expert knowledge is available. PILCO takes model uncertainties consistently into account during long-term planning to reduce model bias. Second, we propose principled algorithms for robust filtering and smoothing in GP dynamic systems.

Advanced Lectures on Machine Learning
  • Language: en
  • Pages: 249

Advanced Lectures on Machine Learning

  • Type: Book
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  • Published: 2011-03-22
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  • Publisher: Springer

Machine Learning has become a key enabling technology for many engineering applications, investigating scientific questions and theoretical problems alike. To stimulate discussions and to disseminate new results, a summer school series was started in February 2002, the documentation of which is published as LNAI 2600. This book presents revised lectures of two subsequent summer schools held in 2003 in Canberra, Australia, and in Tübingen, Germany. The tutorial lectures included are devoted to statistical learning theory, unsupervised learning, Bayesian inference, and applications in pattern recognition; they provide in-depth overviews of exciting new developments and contain a large number of references. Graduate students, lecturers, researchers and professionals alike will find this book a useful resource in learning and teaching machine learning.

Large-scale Kernel Machines
  • Language: en
  • Pages: 409

Large-scale Kernel Machines

  • Type: Book
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  • Published: 2007
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  • Publisher: MIT Press

Solutions for learning from large scale datasets, including kernel learning algorithms that scale linearly with the volume of the data and experiments carried out on realistically large datasets. Pervasive and networked computers have dramatically reduced the cost of collecting and distributing large datasets. In this context, machine learning algorithms that scale poorly could simply become irrelevant. We need learning algorithms that scale linearly with the volume of the data while maintaining enough statistical efficiency to outperform algorithms that simply process a random subset of the data. This volume offers researchers and engineers practical solutions for learning from large scale ...

Pattern Recognition
  • Language: en
  • Pages: 596

Pattern Recognition

  • Type: Book
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  • Published: 2004-08-10
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  • Publisher: Springer

This book constitutes the refereed proceedings of the 26th Symposium of the German Association for Pattern Recognition, DAGM 2004, held in Tbingen, Germany in August/September 2004. The 22 revised papers and 48 revised poster papers presented were carefully reviewed and selected from 146 submissions. The papers are organized in topical sections on learning, Bayesian approaches, vision and faces, vision and motion, biologically motivated approaches, segmentation, object recognition, and object recognition and synthesis.

Probabilistic Machine Learning
  • Language: en
  • Pages: 858

Probabilistic Machine Learning

  • Type: Book
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  • Published: 2022-03-01
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  • Publisher: MIT Press

A detailed and up-to-date introduction to machine learning, presented through the unifying lens of probabilistic modeling and Bayesian decision theory. This book offers a detailed and up-to-date introduction to machine learning (including deep learning) through the unifying lens of probabilistic modeling and Bayesian decision theory. The book covers mathematical background (including linear algebra and optimization), basic supervised learning (including linear and logistic regression and deep neural networks), as well as more advanced topics (including transfer learning and unsupervised learning). End-of-chapter exercises allow students to apply what they have learned, and an appendix covers...

Zondervan Atlas of the Bible
  • Language: en
  • Pages: 304

Zondervan Atlas of the Bible

  • Type: Book
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  • Published: 2014-09-30
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  • Publisher: Zondervan

Explore the lands of the Bible and the history of scripture with unprecedented clarity. This major revision of the Gold Medallion Award-winning Zondervan NIV Atlas of the Bible is a visual feast that will help you experience the geography and history of Scripture with unprecedented clarity. The first section of the Atlas introduces the "playing board" of biblical history. The next section, arranged historically, begins with Eden and traces the historical progression of the Old and New Testaments. It concludes with chapters on the history of Jerusalem, the disciplines of historical geography, and the most complete and accurate listing and discussion of place-names found in any atlas. Unique features include: Stunning multidimensional and three-dimensional maps Over 100 new relevant-to-topic images Revised engaging text Innovative chronological charts and graphics A complete geographical dictionary and index available for in-depth studies The Zondervan Atlas of the Bible is destined to become a favorite guide to biblical geography for students of the Bible. This accessible and complete resource will assist you as you enter into the world of the Bible as never before.

Machine Learning
  • Language: en

Machine Learning

  • Type: Book
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  • Published: 2022
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  • Publisher: Unknown

"This book introduces machine learning for readers with some background in basic linear algebra, statistics, probability, and programming. In a coherent statistical framework it covers a selection of supervised machine learning methods, from the most fundamental (k-NN, decision trees, linear and logistic regression) to more advanced methods (deep neural networks, support vector machines, Gaussian processes, random forests and boosting), plus commonly-used unsupervised methods (generative modeling, k-means, PCA, autoencoders and generative adversarial networks). Careful explanations and pseudo-code are presented for all methods. The authors maintain a focus on the fundamentals by drawing connections between methods and discussing general concepts such as loss functions, maximum likelihood, the bias-variance decomposition, ensemble averaging, kernels and the Bayesian approach along with generally useful tools such as regularization, cross validation, evaluation metrics and optimization methods. The final chapters offer practical advice for solving real-world supervised machine learning problems and on ethical aspects of modern machine learning"--

Rapid Cycle Real-Time PCR
  • Language: en
  • Pages: 390

Rapid Cycle Real-Time PCR

The first comprehensive treatise on Rapid Cycle Real-Time PCR. With amplification times of 15-30 minutes of on-line detection and analysis, nucleic acid quantification of mutation analysis finally becomes a routine, powerful and rapid method. Focusing primarily on the LightCycler, an instrument that combines Rapid Cycle PCR with fluorescent monitoring, this technology provides convenient analysis by melting temperatures. PCR products can be identified by product Tm, and single base mismatches can easily be genotyped by probe Tm. Methods chapters detail the theory behind quantification of mutation analysis; the design of synthesis of fluorescent hybridization probes of the preparation of template DNA. Application chapters apply nucleid acid quantification to infectious organisms of intracellular messengers and mutation detection to somatic of acquired mutations.

Bandit Algorithms
  • Language: en
  • Pages: 537

Bandit Algorithms

A comprehensive and rigorous introduction for graduate students and researchers, with applications in sequential decision-making problems.