9781447167341-1447167341-Machine Learning for Audio, Image and Video Analysis: Theory and Applications (Advanced Information and Knowledge Processing)

Machine Learning for Audio, Image and Video Analysis: Theory and Applications (Advanced Information and Knowledge Processing)

ISBN-13: 9781447167341
ISBN-10: 1447167341
Edition: 2nd ed. 2015
Author: Alessandro Vinciarelli, Francesco Camastra
Publication date: 2015
Publisher: Springer
Format: Hardcover 577 pages
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Book details

ISBN-13: 9781447167341
ISBN-10: 1447167341
Edition: 2nd ed. 2015
Author: Alessandro Vinciarelli, Francesco Camastra
Publication date: 2015
Publisher: Springer
Format: Hardcover 577 pages

Summary

Machine Learning for Audio, Image and Video Analysis: Theory and Applications (Advanced Information and Knowledge Processing) (ISBN-13: 9781447167341 and ISBN-10: 1447167341), written by authors Alessandro Vinciarelli, Francesco Camastra, was published by Springer in 2015. With an overall rating of 4.0 stars, it's a notable title among other AI & Machine Learning (Graphics & Design, Graphics & Multimedia, Programming, Software Design, Testing & Engineering, Web Design, Web Development & Design, Computer Science) books. You can easily purchase or rent Machine Learning for Audio, Image and Video Analysis: Theory and Applications (Advanced Information and Knowledge Processing) (Hardcover) from BooksRun, along with many other new and used AI & Machine Learning books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $0.3.

Description

This second edition focuses on audio, image and video data, the three main types of input that machines deal with when interacting with the real world. A set of appendices provides the reader with self-contained introductions to the mathematical background necessary to read the book.
Divided into three main parts, From Perception to Computation introduces methodologies aimed at representing the data in forms suitable for computer processing, especially when it comes to audio and images. Whilst the second part, Machine Learning includes an extensive overview of statistical techniques aimed at addressing three main problems, namely classification (automatically assigning a data sample to one of the classes belonging to a predefined set), clustering (automatically grouping data samples according to the similarity of their properties) and sequence analysis (automatically mapping a sequence of observations into a sequence of human-understandable symbols). The third part Applications shows how the abstract problems defined in the second part underlie technologies capable to perform complex tasks such as the recognition of hand gestures or the transcription of handwritten data.

Machine Learning for Audio, Image and Video Analysis is suitable for students to acquire a solid background in machine learning as well as for practitioners to deepen their knowledge of the state-of-the-art. All application chapters are based on publicly available data and free software packages, thus allowing readers to replicate the experiments.

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