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Vorträge und Posterpräsentationen (mit Tagungsband-Eintrag):

R. Fischer, C. Sippel, N. Görtz:
"VAMP with Vector-Valued Diagonalization";
Vortrag: 2020 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP), Barcelona Spain (virtual); 04.05.2020 - 08.05.2020; in: "2020 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)", IEEE, (2020), ISBN: 978-1-5090-6631-5; S. 9110 - 9114.



Kurzfassung deutsch:
Vector approximate message passing is studied where vectorvalued diagonalization instead of a uniform one is employed. Thereby,individualvariancesare tracked within the algorithm instead of an average one. Straightforward application based on the expectation-consistent approximate inference framework does not give satisfactory results. The main reason for this is that the precision parameters may become negative during the iterations. In this contribution, improved versions for the update equation ("Onsager correction") are derived from basic estimation principles. Numerical simulations cover the superiority of the new variants.

Kurzfassung englisch:
Vector approximate message passing is studied where vectorvalued diagonalization instead of a uniform one is employed. Thereby,individualvariancesare tracked within the algorithm instead of an average one. Straightforward application based on the expectation-consistent approximate inference framework does not give satisfactory results. The main reason for this is that the precision parameters may become negative during the iterations. In this contribution, improved versions for the update equation ("Onsager correction") are derived from basic estimation principles. Numerical simulations cover the superiority of the new variants.

Schlagworte:
Signal Processing, Compressed Sensing, Approximate Message Passing


"Offizielle" elektronische Version der Publikation (entsprechend ihrem Digital Object Identifier - DOI)
http://dx.doi.org/10.1109/ICASSP40776.2020.9053763


Erstellt aus der Publikationsdatenbank der Technischen Universität Wien.