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Detecting determinism from point processes

Academic Article
Publication Date:
2014
abstract:
The detection of a nonrandom structure from experimental data can be crucial for the classification, understanding, and interpretation of the generating process. We here introduce a rank-based nonlinear predictability score to detect determinism from point process data. Thanks to its modular nature, this approach can be adapted to whatever signature in the data one considers indicative of deterministic structure. After validating our approach using point process signals from deterministic and stochastic model dynamics, we show an application to neuronal spike trains recorded in the brain of an epilepsy patient. While we illustrate our approach in the context of temporal point processes, it can be readily applied to spatial point processes as well.
Iris type:
01.01 Articolo in rivista
Keywords:
Determinism; Time series analysis; Spike train analysis
List of contributors:
Kreuz, Thomas
Authors of the University:
KREUZ THOMAS
Handle:
https://iris.cnr.it/handle/20.500.14243/285541
Published in:
PHYSICAL REVIEW E, STATISTICAL, NONLINEAR, AND SOFT MATTER PHYSICS
Journal
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URL

http://journals.aps.org/pre/abstract/10.1103/PhysRevE.90.062906
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