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Document type:
IDP-Arbeit
Author(s):
Dmitrij Boschko
Title:
Generalization and Parallelization of Sherman-Morrison System Matrix Updates for Sparse Grid Density Estimation
Abstract:
Sherman-Morrison rank-one updates have been used successfully for adaptive sparse grid density estimation. This allowed for regularization and adaptivity, but until now, this has only been possible in the offline/online splitting context using an orthogonal decomposition, such as tridiagonal. The new approach studied in this paper generalizes the old version of the Sherman-Morrison formula based sparse grid density estimation by using the Sherman-Morrison-Woodbury (SMW) formula. This allows for...     »
Keywords:
Data Mining; Sparse Grids; SG++
Supervisor:
Bungartz, Hans-Joachim
Advisor:
Röhner, Kilian; Obersteiner, Michael
Year:
2019
Quarter:
4. Quartal
Year / month:
2019-11
Month:
Nov
Language:
en
University:
Technical University of Munich
Faculty:
Fakultät für Mathematik
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