Recent Advances in Time-Series Classification-Methodology and Applications

£139.50

Recent Advances in Time-Series Classification-Methodology and Applications

Automatic control engineering Databases Artificial intelligence

Authors: Zoltan Geller, Vladimir Kurbalija, Milos Radovanovic, Mirjana Ivanovic

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Collection: Intelligent Systems Reference Library

Language: English

Published by: Springer

Published on: 26th April 2025

Format: LCP-protected ePub

ISBN: 9783031775277


Impact of Constraints on Elastic Time-Series Similarity Measures

This book examines the impact of such constraints on elastic time-series similarity measures and provides guidance on selecting suitable measures. Time-series classification frequently relies on selecting an appropriate similarity or distance measure to compare time series effectively, often using dynamic programming techniques for more robust results. However, these techniques can be computationally demanding, which results in the usage of global constraints to reduce the search area in the dynamic programming matrix. While these constraints cut computation time significantly (by up to three orders of magnitude), they may also affect classification accuracy.

Importance of Classifiers in Time-Series Classification

Additionally, the importance of the nearest neighbor classifier (1NN) is emphasized for its strong performance in time-series classification, alongside the kNN classifier which offers stable results. This book further explores the weighted kNN classifier, which gives closer neighbors more influence, showing how it merges accuracy and stability for improved classification outcomes.

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