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Author: Muhammad Marwan Muhammad Fuad

Affiliation: The University of Tromsø - The Arctic University of Norway, Norway

Keyword(s): Adaptive Sampling, Classification, Clustering, Data Mining, Time Series.

Related Ontology Subjects/Areas/Topics: Classification ; Feature Selection and Extraction ; Pattern Recognition ; Theory and Methods

Abstract: Adaptive sampling is a dimensionality reduction technique of time series data inspired by the dynamic programming piecewise linear approximation. This dimensionality reduction technique yields a suboptimal solution of the problem of polygonal curve approximation by limiting the search space. In this paper, we conduct extensive experiments to evaluate the performance of adaptive sampling in 1-NN classification and k-means clustering tasks. The experiments we conducted show that adaptive sampling gives satisfactory results in the aforementioned tasks even for relatively high compression ratios.

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Paper citation in several formats:
Fuad, M. (2016). An Experimental Evaluation of the Adaptive Sampling Method for Time Series Classification and Clustering. In Proceedings of the 5th International Conference on Pattern Recognition Applications and Methods - ICPRAM; ISBN 978-989-758-173-1; ISSN 2184-4313, SciTePress, pages 48-54. DOI: 10.5220/0005694600480054

@conference{icpram16,
author={Muhammad Marwan Muhammad Fuad.},
title={An Experimental Evaluation of the Adaptive Sampling Method for Time Series Classification and Clustering},
booktitle={Proceedings of the 5th International Conference on Pattern Recognition Applications and Methods - ICPRAM},
year={2016},
pages={48-54},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0005694600480054},
isbn={978-989-758-173-1},
issn={2184-4313},
}

TY - CONF

JO - Proceedings of the 5th International Conference on Pattern Recognition Applications and Methods - ICPRAM
TI - An Experimental Evaluation of the Adaptive Sampling Method for Time Series Classification and Clustering
SN - 978-989-758-173-1
IS - 2184-4313
AU - Fuad, M.
PY - 2016
SP - 48
EP - 54
DO - 10.5220/0005694600480054
PB - SciTePress