Data Mining in Time Series Databases

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Overview

This book covers the state-of-the-art methodology for mining time series databases. The novel data mining methods presented in the book include techniques for efficient segmentation, indexing, and classification of noisy and dynamic time series. A graph-based method for anomaly detection in time series is described and the book also studies the implications of a novel and potentially useful representation of time series as strings. The problem of detecting changes in data mining models that are induced from temporal databases is additionally discussed.
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Product Details

Table of Contents

Ch. 1 Segmenting time series : a survey and novel approach 1
Ch. 2 A survey of recent methods for efficient retrieval of similar time sequences 23
Ch. 3 Indexing of compressed time series 43
Ch. 4 Indexing time-series under conditions of noise 65
Ch. 5 Change detection in classification models induced from time series data 99
Ch. 6 Classification and detection of abnormal events in time series of graphs 123
Ch. 7 Boosting interval-based literals : variable length and early classification 145
Ch. 8 Median strings : a review 167
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