Music Data Mining: Chapman & Hall/CRC Data Mining and Knowledge Discovery Series
Editat de Tao Li, Mitsunori Ogihara, George Tzanetakisen Limba Engleză Hardback – 12 iul 2011
The book first covers music data mining tasks and algorithms and audio feature extraction, providing a framework for subsequent chapters. With a focus on data classification, it then describes a computational approach inspired by human auditory perception and examines instrument recognition, the effects of music on moods and emotions, and the connections between power laws and music aesthetics. Given the importance of social aspects in understanding music, the text addresses the use of the Web and peer-to-peer networks for both music data mining and evaluating music mining tasks and algorithms. It also discusses indexing with tags and explains how data can be collected using online human computation games. The final chapters offer a balanced exploration of hit song science as well as a look at symbolic musicology and data mining.
The multifaceted nature of music information often requires algorithms and systems using sophisticated signal processing and machine learning techniques to better extract useful information. An excellent introduction to the field, this volume presents state-of-the-art techniques in music data mining and information retrieval to create novel ways of interacting with large music collections.
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Specificații
ISBN-13: 9781439835524
ISBN-10: 1439835527
Pagini: 384
Ilustrații: 64 b/w images, 42 tables and 200+ 7/11 - disclaimer fixed and in ARCHIVE
Dimensiuni: 156 x 234 x 24 mm
Greutate: 0.66 kg
Ediția:New.
Editura: CRC Press
Colecția CRC Press
Seria Chapman & Hall/CRC Data Mining and Knowledge Discovery Series
ISBN-10: 1439835527
Pagini: 384
Ilustrații: 64 b/w images, 42 tables and 200+ 7/11 - disclaimer fixed and in ARCHIVE
Dimensiuni: 156 x 234 x 24 mm
Greutate: 0.66 kg
Ediția:New.
Editura: CRC Press
Colecția CRC Press
Seria Chapman & Hall/CRC Data Mining and Knowledge Discovery Series
Public țintă
Researchers and graduate students in data mining, machine learning, music, acoustics, and electrical engineering.Cuprins
FUNDAMENTAL TOPICS: Music Data Mining: An Introduction. Audio Feature Extraction. CLASSIFICATION: Auditory Sparse Coding. Instrument Recognition. Mood and Emotional Classification. Zipf’s Law, Power Laws and Music Aesthetics. SOCIAL ASPECTS OF MUSIC DATA MINING: Web- and Community-Based Music Information Extraction. Indexing Music with Tags. Human Computation for Music Classification. ADVANCED TOPICS: Hit Song Science. Symbolic Data Mining in Musicology. Index.
Recenzii
"… a useful survey for the reader specifically interested in MIR."
—Statistical Papers (2013) 54
"This book, as a collection of papers, brings together some of the leading scholars of the field to tackle a number of data mining techniques aiming mainly at data classification."
—Joonas Kauppinen, International Statistical Review, 2012
—Statistical Papers (2013) 54
"This book, as a collection of papers, brings together some of the leading scholars of the field to tackle a number of data mining techniques aiming mainly at data classification."
—Joonas Kauppinen, International Statistical Review, 2012
Notă biografică
Tao Li, Mitsunori Ogihara, George Tzanetakis
Descriere
Advances in digital music technology have created challenges for effectively accessing and interacting with large collections of music and associated data. This book explores how data mining addresses these challenges by mining useful information and using it to create novel ways of interacting with large music collections. Leading experts in data mining, machine learning, and music science examine fundamental issues of classification and audio signal processing and discuss social aspects of music mining. They also present new research in instrument recognition, mood and emotion classification, and hit song prediction science.