Algorithm Development of a Telephone Signal Conditioner for the Wideband Integrated Network.

Abstract

During this program a full-scale testbed simulation of the interfacing of a telephone to the wideband integrated network was completed. This simulation includes the use of different types of echo cancelling algorithms and an LPC vocoder, and allows for other studies to be carried on. Echo cancelling algorithms were studied with a number of interesting conclusions. Because of the non-stationarity of the speech signals, made more so by the vocoder, standard LMS algorithms and lattice techniques are not adequate because of their convergence properties. With the vocoder in the loop, convergence must be faster than without the vocoder, because synthetic speech signals are not so rich in components as are the actual speech signals. An unconstrained frequency domain adaptive filter algorithm was the most effective. The echo cancelling is limited by the nonlinearities of the system. It was found that a nonlinear adaptive filter could reduce the signal-to-noise ratio by a few more dB when used with a stationary system (the hybrid and line characteristics remain fixed). The possible use of an AGC in the system was studied, and it was concluded that the AGC would cause more problems than it would help.

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Document Details

Document Type
Technical Report
Publication Date
Dec 31, 1981
Accession Number
ADA112604

Entities

People

  • A. H. Gray Jr.
  • D. Mansour

Tags

Communities of Interest

  • Energy and Power Technologies
  • Ground and Sea Platforms
  • Space

DTIC Thesaurus Topics

  • Adaptive Filters
  • Algorithms
  • Artificial Satellites
  • Automatic Gain Control
  • Computational Science
  • Computer Simulations
  • Detectors
  • Differential Equations
  • Dynamic Range
  • Filtration
  • Frequency Domain
  • Information Theory
  • Nonlinear Systems
  • Signal Processing
  • Speech Quality
  • Telephone Lines
  • Test Beds

Fields of Study

  • Engineering

Readers

  • Aerospace Test and Evaluation
  • Phased Array Antenna Design.
  • Speech Processing/Speech Recognition.