An edition of Outlier Analysis (2013)

Outlier Analysis

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Last edited by MARC Bot
September 12, 2024 | History
An edition of Outlier Analysis (2013)

Outlier Analysis

  • 2 Want to read

With the increasing advances in hardware technology for data collection, and advances in software technology (databases) for data organization, computer scientists have increasingly participated in the latest advancements of the outlier analysis field. Computer scientists, specifically, approach this field based on their practical experiences in managing large amounts of data, and with far fewer assumptions– the data can be of any type, structured or unstructured, and may be extremely large. Outlier Analysis is a comprehensive exposition, as understood by data mining experts, statisticians and computer scientists. The book has been organized carefully, and emphasis was placed on simplifying the content, so that students and practitioners can also benefit. Chapters will typically cover one of three areas: methods and techniques commonly used in outlier analysis, such as linear methods, proximity-based methods, subspace methods, and supervised methods; data domains, such as, text, categorical, mixed-attribute, time-series, streaming, discrete sequence, spatial and network data; and key applications of these methods as applied to diverse domains such as credit card fraud detection, intrusion detection, medical diagnosis, earth science, web log analytics, and social network analysis are covered.

Publish Date
Language
English
Pages
446

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Previews available in: English

Edition Availability
Cover of: Outlier Analysis
Outlier Analysis
May 09, 2018, Springer
paperback
Cover of: Outlier Analysis
Outlier Analysis
2017, Springer
Hardcover in English - Second Edition
Cover of: Outlier Analysis
Outlier Analysis
2013, Springer New York, Imprint: Springer
electronic resource / in English
Cover of: Outlier Analysis
Outlier Analysis
Jan 11, 2013, Springer, Brand: Springer
hardcover
Cover of: Outlier Analysis
Outlier Analysis
Jan 11, 2013, Springer
paperback

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Book Details


Table of Contents

An Introduction to Outlier Analysis
Probabilistic and Statistical Models for Outlier Detection
Linear Models for Outlier Detection
Proximity-based Outlier Detection
High-Dimensional Outlier Detection: The Subspace Method
Supervised Outlier Detection
Outlier Detection in Categorical, Text and Mixed Attribute Data
Time Series and Multidimensional Streaming Outlier Detection
Outlier Detection in Discrete Sequences
Spatial Outlier Detection
Outlier Detection in Graphs and Networks
Applications of Outlier Analysis.

Edition Notes

Published in
New York, NY

Classifications

Dewey Decimal Class
006.312
Library of Congress
QA76.9.D343, QA276 .A34 2013, QA75.5-76.95

The Physical Object

Format
[electronic resource] /
Pagination
XV, 446 p. 49 illus., 10 illus. in color.
Number of pages
446

ID Numbers

Open Library
OL27079474M
Internet Archive
outlieranalysis00agga
ISBN 13
9781461463962
LCCN
2012956186

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History

Download catalog record: RDF / JSON / OPDS | Wikipedia citation
September 12, 2024 Edited by MARC Bot import existing book
January 28, 2022 Edited by ImportBot import existing book
November 13, 2020 Edited by MARC Bot import existing book
July 6, 2019 Created by MARC Bot Imported from Internet Archive item record