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Regression of Fluctuating System Properties: Baryonic Tully–Fisher Scaling in Disk Galaxies

  • Geert Verdoolaege
  • University of Ghent

Onderzoeksoutput: Hoofdstuk in Boek/Rapport/CongresprocedureConferentiebijdragepeer review

1 Citaat (Scopus)

Samenvatting

In various interesting physical systems, important properties or dynamics display a strongly fluctuating behavior that can best be described using probability distributions. Examples are fluid turbulence, plasma instabilities, textured images, porous media and cosmological structure. In order to quantitatively compare such phenomena, a similarity measure between distributions is needed, such as the Rao geodesic distance on the corresponding probabilistic manifold. This can form the basis for validation of theoretical models against experimental data and classification of regimes, but also for regression between fluctuating properties. This is the primary motivation for geodesic least squares (GLS) as a robust regression technique, with general applicability. In this contribution, we further clarify this motivation and we apply GLS to Tully–Fisher scaling of baryonic mass vs. rotation velocity in disk galaxies. We show that GLS is well suited to estimate the coefficients and tightness of the scaling. This is relevant for constraining galaxy formation models and for testing alternatives to the Lambda cold dark matter cosmological model.

Originele taal-2Engels
TitelBayesian Inference and Maximum Entropy Methods in Science and Engineering - MaxEnt 37, 2017
RedacteurenFrancisco Louzada, Julio Stern, Hellinton Takada, Adriano Polpo, Rafael Izbicki
UitgeverijSpringer New York LLC
Pagina's77-87
Aantal pagina's11
ISBN van geprinte versie9783319911427
DOI's
StatusGepubliceerd - 2018
Evenement37th International Workshop on Bayesian Inference and Maximum Entropy Methods in Science and Engineering, MaxEnt 2017 - Jarinu, Brazilië
Duur: 9 jul. 201714 jul. 2017

Publicatie series

NaamSpringer Proceedings in Mathematics and Statistics
Volume239
ISSN van geprinte versie2194-1009
ISSN van elektronische versie2194-1017

Congres

Congres37th International Workshop on Bayesian Inference and Maximum Entropy Methods in Science and Engineering, MaxEnt 2017
Land/RegioBrazilië
StadJarinu
Periode9/07/1714/07/17

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