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Titel:

Statistical Topological Data Analysis - a Kernel Perspective

Dokumenttyp:
Konferenzbeitrag
Autor(en):
Kwitt, Roland; Huber, Stefan; Niethammer, Marc; Lin, Weili; Bauer, Ulrich
Abstract:
We consider the problem of statistical computations with persistence diagrams, a summary representation of topological features in data. These diagrams encode persistent homology, a widely used invariant in topological data analysis. While several avenues towards a statistical treatment of the diagrams have been explored recently, we follow an alternative route that is motivated by the success of methods based on the embedding of probability measures into reproducing kernel Hilbert spaces. In fa...     »
Kongress- / Buchtitel:
Proceedings of the 28th International Conference on Neural Information Processing Systems - Volume 2
Verlag / Institution:
MIT Press
Verlagsort:
Cambridge, MA, USA
Publikationsdatum:
07.12.2015
Jahr:
2015
Seiten:
3070–3078
Serientitel:
NIPS'15
WWW:
https://proceedings.neurips.cc/paper_files/paper/2015/file/74563ba21a90da13dacf2a73e3ddefa7-Paper.pdf
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