EP2249587B1

Frequency translation by high-frequency spectral envelope warping in hearing assistance devices

Abstract

This record has no abstract on file.

EP2249587B1, drawing sheet 1
Sheet 1 of 17

Term

3.6 yearsleft in the term

Expires 6 May 2030.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

15 claims: 2 independent, 13 dependent

  1. 1
    A method for processing an input audio signal received by a hearing assistance device, comprising:high-pass filtering the input audio signal to generate a high frequency filtered signal, the filtering performed at a splitting frequency;transposing at least a portion of the audio spectrum of the filtered signal to a lower frequency range by a transposition process to produce a transposed audio signal;and summing the transposed audio signal with the unprocessed input audio signal to generate an output signal, wherein the transposition process includes: estimating an all-pole spectral envelope of the filtered signal from a plurality of line spectral frequencies;applying a warping function to the all-pole spectral envelope of the filtered signal to translate the poles above a specified knee frequency to lower frequencies, thereby producing a warped spectral envelope, the knee frequency being higher than the splitting frequency;exciting the warped spectral envelope with an excitation signal to synthesize the transposed audio signal, wherein the excitation signal is a prediction error signal, produced by filtering the high-pass signal with an inverse of the estimated all-pole spectral envelope;and processing the excitation signal using a phase randomization process.
  2. 15
    A hearing aid comprising a digital signal processor (120) adapted to process an input audio signal received by the hearing aid using machine readable instructions adapted to:high-pass filter the input audio signal to generate a high frequency filtered signal, the filtering performed at a splitting frequency;transpose at least a portion of an audio spectrum of the filtered signal to a lower frequency range by a transposition process to produce a transposed audio signal;and sum the transposed audio signal with the unprocessed input audio signal to generate an output signal, wherein the transposition process includes: estimating an all-pole spectral envelope of the filtered signal from a plurality of line spectral frequencies;applying a warping function to the all-pole spectral envelope of the filtered signal to translate the poles above a specified knee frequency to lower frequencies, thereby producing a warped spectral envelope, the knee frequency being higher than the splitting frequency;exciting the warped spectral envelope with an excitation signal to synthesize the transposed audio signal, wherein the excitation signal is a prediction error signal, produced by filtering the high-pass signal with an inverse of the estimated all-pole spectral envelope;and processing the excitation signal using a phase randomization process.