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 [BibTeX] [Marc21]
Dichotomy Between Clustering Performance and Minimum Distortion in Piecewise-Dependent-Data (PDD) Clustering
Type of publication: Journal paper
Citation: lapidot-rr-02-48b
Journal: to be published in IEEE Signal Processing Letters
Year: 2003
Note: IDIAP-RR 02-48
Crossref: lapidot-rr02-48:
Abstract: In many signal such speech, bio-signals, protein chains, etc. there is a dependency between consecutive vectors. As the dependency is limited in duration such data can be called as Piecewise-Dependent- Data (PDD). In clustering it is frequently needed to minimize a given distance function. In this paper we will show that in PDD clustering there is a contradiction between the desire for high resolution (short segments and low distance) and high accuracy (long segments and high distortion,',','), i.e. meaningful clustering.
Userfields: ipdmembership={speech}, language={English},
Keywords:
Projects Idiap
Authors Lapidot, I.
Guterman, H.
Added by: [UNK]
Total mark: 0
Attachments
  • rr02-48.pdf
  • rr02-48.ps.gz
Notes