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Document type:
Nicht veröffentlichter Vortrag
Author(s):
Felix Dietrich
Title:
Approximating Linear Operators for Machine Learning
Abstract:
Linear operators on function spaces appear in several branches of mathematics: In differential geometry, the Laplace-Beltrami operator captures the shape of manifolds. In dynamical systems theory, the Koopman operator globally linearizes systems that act non-linearly on their state. In scientific computing, matrices can be used to approximate solutions to partial differential equations. In machine learning, linear operators can be used to extract information from data sets. In particular, spect...     »
Event:
Workshop on Computational Mathematics and Machine Learning
Organization:
Lorentz Center
Date of publication:
04.11.2021
Year:
2021
Month:
Nov
Language:
en
WWW:
https://www.lorentzcenter.nl/computational-mathematics-and-machine-learning.html
TUM Institution:
Department of Informatics, Technical University of Munich
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