Information theory and inference, taught together in this exciting textbook, lie at the heart of many important areas of modern technology - communication, signal processing, data mining, machine learning, pattern recognition, computational neuroscience, bioinformatics and cryptography. The book introduces theory in tandem with applications. Information theory is taught alongside practical communication systems such as arithmetic coding for data compression and sparse-graph codes for error-correction. Inference techniques, including message-passing algorithms, Monte Carlo methods and variational approximations, are developed alongside applications to clustering, convolutional codes, independent component analysis, and neural networks. Uniquely, the book covers state-of-the-art error-correcting codes, including low-density-parity-check codes, turbo codes, and digital fountain codes - the twenty-first-century standards for satellite communications, disk drives, and data broadcast. Richly illustrated, filled with worked examples and over 400 exercises, some with detailed solutions, the book is ideal for self-learning, and for undergraduate or graduate courses. It also provides an unparalleled entry point for professionals in areas as diverse as computational biology, financial engineering and machine learning.
##好书????圈粉
评分##http://videolectures.net/course_information_theory_pattern_recognition/ http://www.inference.phy.cam.ac.uk/itprnn_lectures/
评分##: G201/M153
评分##有谁一起学习这本书吗?一起讨论吧QQ:63583981
评分##: G201/M153
评分##机器学习领域中的 Feynman。
评分##作者Mackay,要记住的。买了一本中文的,要中英文对照着读。这本书是真是练习内功呀。
评分##Shannon真的是我男神。很美妙的一套体系,日常查阅必备。有空可以深入读读,会对一些看似莫名其妙的 log 们有更深的体会。
评分##(读过部分章节)与很多教材不同的是,把很多东西放在一起讨论,很有意思。 适合做个补充类读物。要是学信息论或者机器学习还是以其他教材为主吧
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