USER VOICE DETECTOR DEVICE AND METHOD USING IN-EAR MICROPHONE SIGNAL OF OCCLUDED EAR
20230012052 · 2023-01-12
Inventors
Cpc classification
International classification
Abstract
A device and a method for detecting voice of a user of an intra-aural device. The intra-aural device has an in-ear microphone adapted to be in fluid communication with an outer-ear ear canal of the user occluded from an environment outside the ear. A signal provided by the in-ear microphone is obtained to determine an acquired voice indicator signal, and a voice produced by the user is detecting by comparing the acquired voice indicator signal with a corresponding threshold value, upon the acquired voice indicator signal being larger than the corresponding threshold value. Although the method also reduces any voice interference coming from a non-user, the results are improved when the non-user voice is captured from an outer-ear microphone of the intra-aural device.
Claims
1. A method for detecting voice of a user of an intra-aural device, the intra-aural device having an in-ear microphone adapted to be in fluid communication with an outer-ear ear canal of the user occluded from an environment outside the ear, the method comprising the steps of: obtaining a signal provided by the in-ear microphone to determine an acquired voice indicator signal; detecting voice produced by the user by comparing the acquired voice indicator signal with a corresponding threshold value, upon the acquired voice indicator signal being larger than the corresponding threshold value, while reducing any voice interference coming from a non-user.
2. The method of claim 1, wherein the acquired voice indicator signal is an in-ear microphone voice indicator signal (IVIS) and the corresponding threshold value is an in-ear microphone threshold value (ITV).
3. The method of claim 2, wherein the step of obtaining includes processing the signal provided by the in-ear microphone using a voice detector algorithm to determine the acquired voice indicator signal.
4. The method of claim 2 or 3, wherein the step of obtaining includes the step of: averaging the in-ear microphone voice indicator signal (IVIS) over a predetermined time period.
5. The method of any one of claims 1 to 4, wherein the signal provided by the in-ear microphone is filtered over a predetermined frequency range.
6. The method of claim 1, wherein the intra-aural device has an outer-ear microphone adapted to be in fluid communication with the environment outside the ear, the method further comprising the step of obtaining a signal provided by the outer-ear microphone; and wherein the acquired voice indicator signal is a ratio of an in-ear microphone voice indicator signal (IVIS) over an outer-ear microphone voice indicator signal (OVIS), and the corresponding threshold value is a ratio threshold value (RTV), upon the outer-ear microphone voice indicator signal (OVIS) being larger than a predetermined floor level (PFL), and wherein the step of detecting voice produced by the user further removes any voice interference coming from a non-user.
7. The method of claim 6, wherein the step of obtaining a signal provided by the outer-ear microphone includes processing the signal provided by the outer-ear microphone using the voice detector algorithm to determine the acquired voice indicator signal.
8. The method of claim 6 or 7, wherein the step of obtaining includes the step of: averaging the in-ear microphone voice indicator signal (IVIS) and the outer-ear microphone voice indicator signal (OVIS) over a predetermined time period.
9. The method of any one of claims 6 to 8, wherein the signal provided by the in-ear microphone and the signal provided by the outer-ear microphone are filtered over a predetermined frequency range.
10. A voice detector device for detecting voice of a user of an intra-aural device, the voice detector device comprising: an in-ear microphone adapted to be in fluid communication with an outer ear canal of an ear of the user occluded from an environment outside the ear; and a processing unit operatively connected to the in-ear microphone to receive an internal signal therefrom and to the outer-ear microphone to receive an external signal therefrom, the processing unit being configured so as to: execute the method of any one of claims 1 to 5 for detecting voice of the user of the intra-aural device.
11. The device of claim 10, further including: an outer-ear microphone adapted to be in fluid communication with the environment outside the ear; and wherein the processing unit operatively connects to the outer-ear microphone to receive an external signal therefrom, the processing unit being configured so as to: further execute the method of any one of claims 6 to 9.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] Embodiments of the disclosure will be described by way of examples only with reference to the accompanying Figures, with similar references referring to similar components, in which:
[0035]
[0036]
DETAILED DESCRIPTION
[0037] Generally stated, the non-limitative illustrative embodiments of the present disclosure provide a device and method for detecting the presence of voice of a user of an intra-aural device having an in-ear microphone in fluid communication with an outer ear canal of a user's ear occluded from an environment outside the ear. It is to be understood that although the present disclosure relates mainly to a device and method for detecting the presence of voice of a user, the technique disclosed can also be used in conjunction with improving the quality of any of the signals from the in-ear microphone such as speech, and biosignals, including breath, heartbeat, etc., via adaptive filtering and bandwidth extension.
[0038] More specifically, this is performed, in real time, using an in-ear microphone located inside an occluded ear and, optionally, an outer-ear microphone.
[0039] Referring now to
[0040] The device 10, typically connects to a communication device 16, via wires and/or wireless, to at least provide a signal thereto when the presence of voice or speech from the user is detected. Upon such a detection, the communication device 16 may communicate, preferably both ways (transmit and receive) via a communication interface 18 connected thereto, with any other device (not shown).
[0041] Optionally, to either improve the detection of the presence of a user's voice or to allow in further processing the signal captured by the IEM 22, the device 10 further includes an outer-ear microphone (OEM) 30 adapted to be in fluid communication with the environment outside the ear 12, and the processing unit 24 also operatively connects to the outer-ear microphone 30 to receive an external signal (OEM signal) therefrom.
[0042] Upon communication of the device 10 with the communication device 16, the device 10 typically further includes a speaker 32 in fluid communication with the outer-ear canal 14 to transmit sound signals received from the communication device 16 to the user.
[0043] Now referring more specifically to
[0044] Typically, the acquired voice indicator signal is an in-ear microphone voice indicator signal (IVIS) and the corresponding threshold value is an in-ear microphone threshold value (ITV). The in-ear microphone voice indicator signal (IVIS) is typically represented as a signal such as the “R2” signal as detailed in reference [1], but could also be any similar factor signal. For example, such “R2” factor takes into consideration averaging and filtering of the signal provided by the in-ear microphone 22.
[0045] As represented in a stippled line rectangle in
[0046] Typically, the step of obtaining includes processing the signal provided by the in-ear microphone 22 using a voice detector algorithm to determine the acquired voice indicator signal, or the in-ear microphone voice indicator signal (IVIS).
[0047] Additionally, signal filtering is typically embedded in the averaging process of the signal provided by the in-ear microphone 22.
[0048] Preferably, as illustrated with stippled line arrows in
[0049] Similarly to the above method embodiment with only the IEM 22, the step of obtaining a signal provided by the outer-ear microphone includes averaging the in-ear microphone voice indicator signal (IVIS) and the outer-ear microphone voice indicator signal (OVIS) over the predetermined time period. In addition, the step includes processing the signal provided by the outer-ear microphone 30 using the voice detector algorithm to determine the acquired voice indicator signal, based on both the in-ear microphone (IVIS) and the outer-ear microphone (OVIS) voice indicator signals.
[0050] Furthermore, signal filtering could also be embedded in the averaging process of the signal provided by the outer-ear microphone 30.
[0051] Although the present disclosure has been described with a certain degree of particularity and by way of an illustrative embodiment and examples thereof, it is to be understood that the present disclosure is not limited to the features of the embodiments described and illustrated herein, but includes all variations and modifications within the scope and spirit of the disclosure as hereinafter claimed.
LIST OF REFERENCES
[0052] [1] Lezzoum, N., Gagnon, G., and Voix, J., “Voice Activity Detection System for Smart Earphones”, IEEE Transactions on Consumer Electronics, Vol. 60, No. 4, pp 737-744, November 2014.