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January 1, 1980IEEE Transactions on Communications7,225 citations

An Algorithm for Vector Quantizer Design

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YLY. LindeABA. BuzoRGRobert M. Gray

Key Points

  • The aim is to present an efficient algorithm for designing vector quantizers based on probabilistic models or training data.
  • The algorithm allows for general distortion measures and long blocklengths.
  • Examples are provided to illustrate the design of parameter vector quantizers, particularly for ten-dimensional vectors in LPC speech compression.
  • The algorithm effectively handles complicated distortion measures not solely dependent on the error vector.
  • Demonstrated through various examples supporting its efficiency and applicability.

Abstract

An efficient and intuitive algorithm is presented for the design of vector quantizers based either on a known probabilistic model or on a long training sequence of data. The basic properties of the algorithm are discussed and demonstrated by examples. Quite general distortion measures and long blocklengths are allowed, as exemplified by the design of parameter vector quantizers of ten-dimensional vectors arising in Linear Predictive Coded (LPC) speech compression with a complicated distortion measure arising in LPC analysis that does not depend only on the error vector.

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Cite This Study

Linde et al. (1980) studied this question.

synapsesocial.com/papers/69d87f3518b0ca7f91d17fb9https://doi.org/10.1109/tcom.1980.1094577
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