• DocumentCode
    1092781
  • Title

    Effects of transmission errors on the mean-squared error performance of transform coding systems

  • Author

    Zelinski, Rainer

  • Author_Institution
    AEG Telefunken, Ulm, Germany
  • Volume
    27
  • Issue
    5
  • fYear
    1979
  • fDate
    10/1/1979 12:00:00 AM
  • Firstpage
    531
  • Lastpage
    537
  • Abstract
    This study presents an analysis of the effects of statistically independent channel transmission errors on the mean-squared error performance of transform coding (TC) systems. A comparison with performance of corresponding PCM systems is given also taking into consideration the bounds on performance improvement if additional error-protection schemes are implemented. The probability density functions of the quantizer input signals are described by different model density functions which are of importance for speech and picture encoding systems. The natural binary code, the Gray code, the folded binary code, and the minimum distance code are investigated as binary representations of the quantizer reconstruction values. In addition to the analysis, simulation results for transform coding of speech signals are presented. The results show a close agreement with the theoretical performance predicted from the analysis. The main results of this study, which are valid for most cases of practical interest, can be stated as follows: TC systems are no more sensitive to channel errors than PCM systems when operating without error protection, i.e., both systems yield nearly the same value of channel error variance. The performance of a TC system is, however, significantly superior to that of a PCM system, if the code words of both systems are error-protected similarly. The channel error variance of the TC system is by a gain factor GTCsmaller than that of a corresponding PCM system in the most favorable case. The gain GTCis the factor by which the quantization distortion in a TC system is reduced relative to PCM.
  • Keywords
    Analytical models; Binary codes; Density functional theory; Performance analysis; Phase change materials; Probability density function; Reflective binary codes; Signal analysis; Speech analysis; Transform coding;
  • fLanguage
    English
  • Journal_Title
    Acoustics, Speech and Signal Processing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0096-3518
  • Type

    jour

  • DOI
    10.1109/TASSP.1979.1163280
  • Filename
    1163280