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Document type:
Bachelorarbeit
Author(s):
Martin Klapacz
Title:
Multifidelity Gaussian Processes for Uncertainty Quantification
Translated title:
Multifidelity Gauß Prozesse zur Quantifizierung von Unsicherheit
Abstract:
Forward uncertainty quantification is used to obtain useful insight of many physical models. However, it is a challenge to get accurate results for a given amount of computational resources, when dealing with complex models. There are different methods to tackle such problems. In this work we combine two of such techniques namely, polynomial chaos expansion and multi-fidelity to create an efficient method to solve forward UQ problems. Firstly, we develop multi-fidelity Gaussian process regressio...     »
Supervisor:
Bungartz, Hans-Joachim
Advisor:
Tobias Neckel; Kislaya Ravi
Year:
2021
Quarter:
1. Quartal
Year / month:
2021-03
Month:
Mar
Language:
en
University:
Technical University of Munich
Faculty:
Fakultät für Informatik
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