Machine Learning for Signal Processing: Data Science, Algorithms, and Computational Statistics, Max A. Little (Professor of Mathematics, Professor of Mathematics, Aston University, Birmingham) (9780198714934) — Readings Books
Machine Learning for Signal Processing: Data Science, Algorithms, and Computational Statistics
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Machine Learning for Signal Processing: Data Science, Algorithms, and Computational Statistics

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This book describes in detail the fundamental mathematics and algorithms of machine learning (an example of artificial intelligence) and signal processing, two of the most important and exciting technologies in the modern information economy. Taking a gradual approach, it builds up concepts in a solid, step-by-step fashion so that the ideas and algorithms can be implemented in practical software applications. Digital signal processing (DSP) is one of the ‘foundational’ engineering topics of the modern world, without which technologies such the mobile phone, television, CD and MP3 players, WiFi and radar, would not be possible. A relative newcomer by comparison, statistical machine learning is the theoretical backbone of exciting technologies such as automatic techniques for car registration plate recognition, speech recognition, stock market prediction, defect detection on assembly lines, robot guidance, and autonomous car navigation. Statistical machine learning exploits the analogy between intelligent information processing in biological brains and sophisticated statistical modelling and inference. This book gives a solid mathematical foundation to, and details the key concepts and algorithms in this important topic.

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Format
Hardback
Publisher
Oxford University Press
Country
United Kingdom
Date
27 August 2019
Pages
384
ISBN
9780198714934

This book describes in detail the fundamental mathematics and algorithms of machine learning (an example of artificial intelligence) and signal processing, two of the most important and exciting technologies in the modern information economy. Taking a gradual approach, it builds up concepts in a solid, step-by-step fashion so that the ideas and algorithms can be implemented in practical software applications. Digital signal processing (DSP) is one of the ‘foundational’ engineering topics of the modern world, without which technologies such the mobile phone, television, CD and MP3 players, WiFi and radar, would not be possible. A relative newcomer by comparison, statistical machine learning is the theoretical backbone of exciting technologies such as automatic techniques for car registration plate recognition, speech recognition, stock market prediction, defect detection on assembly lines, robot guidance, and autonomous car navigation. Statistical machine learning exploits the analogy between intelligent information processing in biological brains and sophisticated statistical modelling and inference. This book gives a solid mathematical foundation to, and details the key concepts and algorithms in this important topic.

Read More
Format
Hardback
Publisher
Oxford University Press
Country
United Kingdom
Date
27 August 2019
Pages
384
ISBN
9780198714934