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Temporal Interval Pattern Languages to Characterize Time Flow

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2014

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Höppner, Frank

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Wiley Interdisciplinary Reviews : Data Mining and Knowledge Discovery. 2014, 4(3), pp. 196-212. ISSN 1942-4787. eISSN 1942-4795. Available under: doi: 10.1002/widm.1122

Zusammenfassung

Knowledge discovery from temporal data (e.g., time series) is among the most challenging problems in data mining. Compared to static representations like rules or decision trees, the temporal component greatly increases the pattern diversity. It is important to keep the human perception of time flow in mind when representing temporal patterns, otherwise we open the floodgates to misinterpretation and misconception. This article gives an overview of temporal interval patterns, which are considered as being a well-suited mechanism of knowledge representation, and focusses on the various pattern representation languages. Four typical phenomena in temporal data, and how the pattern languages can cope with them, are discussed. Given the domain knowledge, this provides the reader some guidance on which pattern language may be best-suited for a given application.

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ISO 690HÖPPNER, Frank, Sebastian PETER, 2014. Temporal Interval Pattern Languages to Characterize Time Flow. In: Wiley Interdisciplinary Reviews : Data Mining and Knowledge Discovery. 2014, 4(3), pp. 196-212. ISSN 1942-4787. eISSN 1942-4795. Available under: doi: 10.1002/widm.1122
BibTex
@article{Hoppner2014Tempo-30357,
  year={2014},
  doi={10.1002/widm.1122},
  title={Temporal Interval Pattern Languages to Characterize Time Flow},
  number={3},
  volume={4},
  issn={1942-4787},
  journal={Wiley Interdisciplinary Reviews : Data Mining and Knowledge Discovery},
  pages={196--212},
  author={Höppner, Frank and Peter, Sebastian}
}
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