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Matching models across abstraction levels with Gaussian processes

Caravagna, Giulio
•
BORTOLUSSI, LUCA
•
Sanguinetti, Guido
2016
  • conference object

Periodico
LECTURE NOTES IN COMPUTER SCIENCE
Abstract
Biological systems are often modelled at different levels of abstraction depending on the particular aims/resources of a study. Such different models often provide qualitatively concordant predictions over specific parametrisations, but it is generally unclear whether model predictions are quantitatively in agreement, and whether such agreement holds for different parametrisations. Here we present a generally applicable statistical machine learning methodology to automatically reconcile the predictions of different models across abstraction levels. Our approach is based on defining a correction map, a random function which modifies the output of a model in order to match the statistics of the output of a different model of the same system. We use two biological examples to give a proof-of-principle demonstration of the methodology, and discuss its advantages and potential further applications.
DOI
10.1007/978-3-319-45177-0_4
WOS
WOS:000460685100004
Archivio
http://hdl.handle.net/11368/2882806
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-84988461415
http://link.springer.com/chapter/10.1007%2F978-3-319-45177-0_4
Diritti
closed access
license:digital rights management non definito
FVG url
https://arts.units.it/request-item?handle=11368/2882806
Soggetti
  • Computational abstrac...

  • Emulation

  • Gaussian Processe

  • Heteroschedasticity

  • Theoretical Computer ...

  • Computer Science (all...

Scopus© citazioni
1
Data di acquisizione
Jun 7, 2022
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Web of Science© citazioni
0
Data di acquisizione
Mar 24, 2024
Visualizzazioni
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Data di acquisizione
Apr 19, 2024
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