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2001
Conference Paper
Title

Image browsing with PCA-assisted user-interaction

Abstract
User interfaces for sophisticated search engines must offer users quick and easy access to the objects to be visualized. We present a browsing tool which arranges images with respect to the user search intention in a continuous and intuitive manner in real time. Since the capacity of the visual human system is higher for spatial information, we prefer a virtual 3D space for the visualization. Because our image features are described in terms of very high-dimensional MPEG-7 descriptors, we have to reduce them to only three dimensions for visual presentation. The dimension reduction is realized by an appropriate weighting of the high-dimensional descriptor components corresponding to a modification of the covariance-matrix used for principal component analysis (PCA). In addition, this modification allows us to overcome a problem arising from equally sized eigenvalues and provides varying eigenspaces nearly continuously. The technique introduced is a general approach, which can be combined with other relevance feedback methods.
Author(s)
Keller, I.
Meiers, T.
Ellerbrock, T.
Sikora, T.
Mainwork
IEEE Workshop on Content-Based Access of Image and Video Libraries, CBAIVL 2001. Proceedings  
Conference
Workshop on Content Based Access of Image and Video Libraries (CBAIVL) 2001  
DOI
10.1109/IVL.2001.990863
Language
English
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Keyword(s)
  • data visualisation

  • eigenvalues and eigenfunctions

  • image retrieval

  • principal component analysis

  • real-time systems

  • relevance feedback

  • search engines

  • user interfaces

  • image browsing

  • pca-assisted user-interaction

  • sophisticated search engines

  • browsing tool

  • user search intention

  • real time systems

  • visual human system

  • spatial information

  • virtual 3d space

  • image features

  • very high-dimensional mpeg-7 descriptors

  • visual presentation

  • high-dimensional descriptor components

  • covariance-matrix

  • eigenvalues

  • eigenspaces

  • relevance feedback methods

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