Hearing device with suppression of sound impulses
US-2017188160-A1 · Jun 29, 2017 · US
US10492007B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10492007-B2 |
| Application number | US-201715628747-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 21, 2017 |
| Priority date | Jun 21, 2017 |
| Publication date | Nov 26, 2019 |
| Grant date | Nov 26, 2019 |
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Techniques for addressing impulse sounds in an auditory prosthesis. The auditory prosthesis comprises a sound processor that is configured to convert received sound signals into output signals for use in generating stimulation for delivery to a recipient of the auditory prosthesis. The sound processor comprises an impulse-aware gain system that is configured to generate a time-variable gain for the application to the audio signal. The time-variable gain applied to the audio signal is dependent on both a level of the audio signal and the presence or absence of impulse sounds in the audio signal.
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What is claimed is: 1. A method, comprising: receiving an audio signal at a sound input of an auditory prosthesis; detecting the presence of an impulse sound in a portion of the audio signal; generating, by one or more gain systems, a time-variable gain for application to the portion of the audio signal that includes the impulse sound, wherein the time-variable gain is decoupled from a level of the impulse sound; and applying, at a gain application module, the time-variable gain to the portion of the audio signal that includes the impulse sound to generate a compressed audio signal. 2. The method of claim 1 , wherein generating the time-variable gain for application to the portion of the audio signal that includes the impulse sound comprises: generating the time-variable gain based on a level of the audio signal prior to detection of the impulse sound. 3. The method of claim 2 , further comprising: holding the time-variable gain at a constant level for a duration of the impulse sound so that the impulse sound passes through to a loudness growth function (LGF) with only application of a gain that is based on the level of the audio signal prior to the detection of the impulse sound. 4. The method of claim 1 , wherein generating the time-variable gain for application to the portion of the audio signal that includes the impulse sound comprises: forwarding the audio signal along both a first and a second processing path, where the first processing path includes the gain application module and the second processing includes at least one gain function; without affecting the audio signal in the first processing path, actively attenuating the impulse sound in the audio signal within the second processing path before the audio signal reaches the at least one gain function. 5. The method of claim 1 , further comprising: generating a plurality of channel signals from the compressed audio signal; generating envelope signals from the channel signals; applying a loudness growth function (LGF) to the envelope signals to produce channel magnitude signals, wherein a level of an impulse sound in a channel signal is reduced to a magnitude level that corresponds to a saturation level of the LGF. 6. The method of claim 1 , wherein detecting the presence of an impulse sound in the audio signal comprises: generating, with a signal smoothing module, a smoothed sample of the audio signal over a period of time; determining, with a comparison module, a difference between the smoothed sample of the audio signal over the period of time and the audio signal; and determining, at the comparison module, whether the difference exceeds a predetermined threshold, wherein an impulse sound is detected only when the difference exceeds the predetermined threshold. 7. The method of claim 6 , further comprising: receiving, at the comparison module, a level signal representing a level of the audio signal; and determining, at the comparison module, whether level of the audio signal exceeds a predetermined level threshold, wherein an impulse sound is detected when the difference and the level of the audio signal jointly exceed the predetermined difference and level thresholds. 8. The method of claim claim 3 , wherein holding the time-variable gain at a constant level for a duration of the impulse sound comprises: temporarily suspending one or more operations of the one or more gain systems for the duration of the impulse sound. 9. An auditory prosthesis, comprising: one or more sound input elements configured to receive an audio signal; and a sound processor configured to convert the audio signal into one or more output signals for use in delivering electrical stimulation to a recipient, wherein the sound processor comprises at least one impulse-aware gain system configured to detect an impulse sound within the audio signal and to apply a time-variable gain to the audio signal, where the time-variable gain is decoupled from energy forming part of the impulse sound. 10. The auditory prosthesis of claim 9 , wherein the at least one impulse-aware gain system is configured to generate the time-variable gain based on a level of the audio signal prior to detection of the impulse sound. 11. The auditory prosthesis of claim 10 , wherein the at least one impulse-aware gain system comprises a level detector configured to determine a level of the audio signal, an impulse detector configured to detect the presence of the impulse sound in the audio signal, and an impulse-aware gain function configured to generate a constant gain that is applied to audio signal for the duration of the impulse sound. 12. The auditory prosthesis of claim 11 , wherein the impulse-aware gain function is configured to operate in first and second modes of operation, wherein in the first mode of operation the impulse-aware gain function generates a time-variable gain for application to the audio signal and in the second mode of operation the impulse-aware gain function generates the constant gain that is applied to audio signal for the duration of the impulse sound, and wherein the second mode is activated in response to detection of the impulse sound. 13. The auditory prosthesis of claim 9 , wherein the at least one impulse-aware gain system is configured to forward the audio signal along both a first and a second processing path, where the first processing path includes a gain application module configured to apply the time-variable gain to the audio signal and the second processing includes an impulse-unaware gain function, and wherein the at least one impulse-aware gain system is configured to attenuate the impulse sound in the audio signal within the second processing path before the audio signal reaches the impulse-unaware gain function. 14. The auditory prosthesis of claim 13 , wherein the second processing path includes: a transient noise reduction module configured to generate a transient noise reduction gain configured to attenuate the impulse sound; and a secondary gain application module configured to apply the transient noise reduction gain to the audio signal in the second processing path before the audio signal reaches the impulse-unaware gain function. 15. The auditory prosthesis of claim 9 , wherein the at least one impulse-aware gain system converts the audio signal into a compressed audio signal and wherein the sound processor further comprises: a filterbank configured to generate a plurality of channel signals from the compressed audio signal; an envelope detector configured to generate envelope signals from the channel signals; and a loudness growth function (LGF) configured to produce channel magnitude signals from the envelope signals, wherein a level of an impulse sound in a channel signal is reduced to a magnitude level that corresponds to a saturation level of the LGF. 16. The auditory prosthesis of claim 9 , wherein the at least one impulse-aware gain system comprises at least one impulse detector comprising: a signal smoothing module configured to generate a smoothed sample of the audio signal over a period of time; and a comparison module configured to determine a difference between the smoothed sample of the audio signal over the period of time and the audio signal and to determine whether the difference exceeds a predetermined threshold, wherein an impulse sound is detected only when the difference exceeds the predetermined threshold. 17. The auditory prosthesis of claim 16 , wherein the comparison module is further configured to receive a level signal representing a level of the audio s
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