Könyv Machine Learning Murphy

Machine Learning

Szerző: Murphy
Nyelv: Angol
Kötés: Kemény kötésű
Kiadó: MIT Press Ltd
Elérhetőség: Beszállítói készleten alacsony példányszámban
Küldés 11-15 napon belül
54 277 Ft
Today's Web-enabled deluge of electronic data calls for automated methods of data analysis. Machine...

Információk a könyvről

Szerző
Nyelv
Angol
Kötés
Könyv - Kemény kötésű
Kiadva
2012
oldal
1104
EAN
9780262018029
ISBN
0262018020
Enbook ID
01200097
Kiadó
Súly
1940
Méretek
207 x 237 x 44

Teljes leírás

Today's Web-enabled deluge of electronic data calls for automated methods of data analysis. Machine learning provides these, developing methods that can automatically detect patterns in data and then use the uncovered patterns to predict future data. 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. The book is suitable for upper-level undergraduates with an introductory-level college math background and beginning graduate students.

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