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MARC Record from marc_openlibraries_sanfranciscopubliclibrary

Record ID marc_openlibraries_sanfranciscopubliclibrary/sfpl_chq_2018_12_24_run04.mrc:364879897:4663
Source marc_openlibraries_sanfranciscopubliclibrary
Download Link /show-records/marc_openlibraries_sanfranciscopubliclibrary/sfpl_chq_2018_12_24_run04.mrc:364879897:4663?format=raw

LEADER: 04663cam a2200625 a 4500
001 985679594
003 OCoLC
005 20151005112315.0
008 120315s2012 maua b 001 0 eng
010 $a2012004558
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020 $a9780262018029 (hardcover : alk. paper)
020 $a0262018020 (hardcover : alk. paper)
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035 $a(OCoLC)781277861
037 $aBRO-copy20130917-153
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050 00 $aQ325.5$b.M87 2012
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100 1 $aMurphy, Kevin P.,$d1970-
245 10 $aMachine learning :$ba probabilistic perspective /$cKevin P. Murphy.
260 $aCambridge, MA :$bMIT Press,$cc2012.
300 $axxix, 1067 p. :$bill. (some col.) ;$c24 cm.
336 $atext$btxt$2rdacontent
337 $aunmediated$bn$2rdamedia
338 $avolume$bnc$2rdacarrier
490 1 $aAdaptive computation and machine learning series
504 $aIncludes bibliographical references (p. [1015]-1045) and indexes.
505 0 $aProbability -- Generative models for discrete data -- Gaussian models -- Bayesian statistics -- Frequentist statistics -- Linear regression -- Logistic regression -- Generalized linear models and the exponential family -- Directed graphical models (Bayes nets) -- Mixture models and the EM algorithm -- Latent linear models -- Sparse linear models -- Kernels -- Gaussian processes -- Adaptive basis function models -- Markov and hidden Markov models -- State space models -- Undirected graphical models (Markov random fields) -- Exact inference for graphical models -- Variational inference -- More variational inference -- Monte Carlo inference -- Markov chain Monte Carlo (MCMC) inference -- Clustering -- Graphical model structure learning -- Latent variable models for discrete data -- Deep learning -- Notation.
520 $a"This textbook offers a comprehensive and self-contained introduction to the field of machine learning, based on a unified, probabilistic approach. The coverage combines breadth and depth, offering necessary background material on such topics as probability, optimization, and linear algebra as well as discussion of recent developments in the field, including conditional random fields, L1 regularization, and deep learning. The book is written in an informal, accessible style, complete with pseudo-code for the most important algorithms. All topics are copiously illustrated with color images and worked examples drawn from such application domains as biology, text processing, computer vision, and robotics. Rather than providing a cookbook of different heuristic methods, the book stresses a principled model-based approach, often using the language of graphical models to specify models in a concise and intuitive way. Almost all the models described have been implemented in a MATLAB software package--PMTK (probabilistic modeling toolkit)--that is freely available online"--Back cover.
650 0 $aMachine learning.
650 0 $aProbabilities.
776 1 $cElectronic resource$z9780262306164
830 0 $aAdaptive computation and machine learning.
856 41 $uhttp://mitpress-ebooks.mit.edu/product/machine-learning
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