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ICANN
2009
Springer

Simbed: Similarity-Based Embedding

14 years 7 months ago
Simbed: Similarity-Based Embedding
Simbed, standing for similarity-based embedding, is a new method of embedding high-dimensional data. It relies on the preservation of pairwise similarities rather than distances. In this respect, Simbed can be related to other techniques such as stochastic neighbor embedding and its variants. A connection with curvilinear component analysis is also pointed out. Simbed differs from these methods by the way similarities are defined and compared in both the data and embedding spaces. In particular, similarities in Simbed can account for the phenomenon of norm concentration that occurs in high-dimensional spaces. This feature is shown to reinforce the advantage of Simbed over other embedding techniques in experiments with a face database.
John Aldo Lee, Michel Verleysen
Added 26 May 2010
Updated 26 May 2010
Type Conference
Year 2009
Where ICANN
Authors John Aldo Lee, Michel Verleysen
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