IP Library Granted Patent US 12,052,393
Granted Patent B2
US 12,052,393 · App. 18/454,890 · Granted Jul 30, 2024

Conferencing device with beamforming and echo cancellation

Inventors: Ashutosh Pandey (Irvine, CA); Darrin T. Thurston (Liberty, UT); David K. Lambert (South Jordan, UT); Tracy A. Bathurst (South Jordan, UT)
Assignee: ClearOne, Inc.
H04M9/082G10L21/0208G10L21/0232G10L21/0264H04M3/568H04R1/406H04R3/005H04R29/007G10L2021/02082G10L2021/02166H04R2201/401H04R2201/403H04R2203/12H04R2430/20H04R2430/23H04R2499/11
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,052,393
App. No.
18/454,890
Granted
Jul 30, 2024
Kind
B2
Abstract

This disclosure describes a conferencing device with beamforming and echo cancellation that includes: a microphone array that further comprises a plurality of microphones oriented to develop a corresponding plurality of microphone signals; a processor configured to execute the following steps: (1) performing a beamforming operation; (2) performing an acoustic echo cancellation operation; (3) post processing; (4) selecting one or more of the post processed signals for transmission to the far end where a signal selector uses the far end signal as information to inhibit the signal selector from changing the selection of the post processed signals while only the far end signal is active.

Claims (59)

1. A conferencing apparatus, comprising:

a microphone array that further comprises a plurality of microphones where each microphone is configured to sense acoustic waves and the plurality of microphones are oriented to develop a corresponding plurality of microphone signals; and

a processor, memory, and storage operably coupled to the microphone array, the processor configured to execute the following steps:

performing a beamforming operation to combine the plurality of microphone signals from the microphone array into a plurality of combined signals that is greater in number than one and less in number than the plurality of microphone signals, each of the plurality of combined signals corresponding to a different fixed beam;

performing an acoustic echo cancellation operation on the plurality of combined signals to generate a plurality of combined echo cancelled signals;

post processing the plurality of combined echo cancelled signals by performing at least one additional signal processing process that includes nonlinear processing, adaptive level control, and noise suppression; and

selecting one or more of the post processed signals for transmission to the far end where a signal selector uses the far end signal as information to inhibit the signal selector from changing the selection of the post processed signals while only the far end signal is active among the far end signal and the combined echo cancelled signals.

2. The claim according to claim 1 where a voice activity detector uses the far end signal as the input and provides the output to the signal selector to inhibit changing the selected beam while the far end signal is active or the post processed signals are below a threshold.

3. The claim according to claim 1 where the processor is further configured to enhance a direction of arrival determination with a voice activity detector.

4. The claim according to claim 1 where the processor is further configured to perform a direction of arrival determination on the plurality of microphone signals and to select one of the post processed signals in response.

5. The claim according to claim 1 where the processor is further configured to perform a partial acoustic echo cancellation operation on a subset of microphone signals which is greater than one and less than the plurality of microphone signals where the partial acoustic echo cancellation operation is used to determine that the microphone array is in a receive only state.

6. The claim according to claim 1 where performing the beamforming operation includes applying beamforming weights to the signals from each microphone to achieve a desired pickup pattern that includes a main lobe and sidelobes together with nulls for each fixed beam where one or more of either the main lobe width, the sidelobe levels, or the position of one or more nulls can be controlled to attenuate noise in one particular direction while focusing the beamforming in other directions.

7. A method to manufacture a conferencing apparatus, comprising:

providing a microphone array that further comprises a plurality of microphones where each microphone is configured to sense acoustic waves and the plurality of microphones are oriented to develop a corresponding plurality of microphone signals; and

operably coupling a processor, memory, and storage to the microphone array, the processor configured to execute the following steps:

performing a beamforming operation to combine the plurality of microphone signals from the microphone array into a plurality of combined signals that is greater in number than one and less in number than the plurality of microphone signals, each of the plurality of combined signals corresponding to a different fixed beam; performing an acoustic echo cancellation operation on the plurality of combined signals to generate a plurality of combined echo cancelled signals;

post processing the plurality of combined echo cancelled signals by performing at least one additional signal processing process that includes nonlinear processing, adaptive level control, and noise suppression; and

selecting one or more of the post processed signals for transmission to the far end where a signal selector uses the far end signal as information to inhibit the signal selector from changing the selection of the post processed signals while only the far end signal is active among the far end signal and the combined echo cancelled signals.

8. The claim according to claim 7 where a voice activity detector uses the far end signal as the input and provides the output to the signal selector to inhibit changing the selected beam while the far end signal is active or the post processed signals are below a threshold.

9. The claim according to claim 7 where the processor is further configured to enhance a direction of arrival determination with a voice activity detector.

10. The claim according to claim 7 where the processor is further configured to perform a direction of arrival determination on the plurality of microphone signals and to select one of the post processed signals in response.

11. The claim according to claim 7 where the processor is further configured to perform a partial acoustic echo cancellation operation on a subset of microphone signals which is greater than one and less than the plurality of microphone signals where the partial acoustic echo cancellation operation is used to determine that the microphone array is in a receive only state.

12. The claim according to claim 7 where performing the beamforming operation includes applying beamforming weights to the signals from each microphone to achieve a desired pickup pattern that includes a main lobe and sidelobes together with nulls for each fixed beam where one or more of either the main lobe width, the sidelobe levels, or the position of one or more nulls can be controlled to attenuate noise in one particular direction while focusing the beamforming in other directions.

13. A method to use a conferencing apparatus, comprising:

sensing acoustic waves with a microphone array that further comprises a plurality of microphones where the plurality of microphones are oriented to develop a corresponding plurality of microphone signals; and

providing a processor, memory, and storage operably coupled to the microphone array, the processor configured to execute the following steps:

performing a beamforming operation to combine the plurality of microphone signals from the microphone array into a plurality of combined signals that is greater in number than one and less in number than the plurality of microphone signals, each of the plurality of combined signals corresponding to a different fixed beam;

performing an acoustic echo cancellation operation on the plurality of combined signals to generate a plurality of combined echo cancelled signals;

post processing the plurality of combined echo cancelled signals by performing at least one additional signal processing process that includes nonlinear processing, adaptive level control, and noise suppression; and

selecting one or more of the post processed signals for transmission to the far end where a signal selector uses the far end signal as information to inhibit the signal selector from changing the selection of the post processed signals while only the far end signal is active among the far end signal and the combined echo cancelled signals.

14. The claim according to claim 13 where a voice activity detector uses the far end signal as the input and provides the output to the signal selector to inhibit changing the selected beam while the far end signal is active or the post processed signals are below a threshold.

15. The claim according to claim 13 where the processor is further configured to enhance a direction of arrival determination with a voice activity detector.

16. The claim according to claim 13 where the processor is further configured to perform a direction of arrival determination on the plurality of microphone signals and to select one of the post processed signals in response.

17. The claim according to claim 13 where the processor is further configured to perform a partial acoustic echo cancellation operation on a subset of microphone signals which is greater than one and less than the plurality of microphone signals where the partial acoustic echo cancellation operation is used to determine that the microphone array is in a receive only state.

18. The claim according to claim 13 where performing the beamforming operation includes applying beamforming weights to the signals from each microphone to achieve a desired pickup pattern that includes a main lobe and sidelobes together with nulls for each fixed beam where one or more of either the main lobe width, the sidelobe levels, or the position of one or more nulls can be controlled to attenuate noise in one particular direction while focusing the beamforming in other directions.

19. A non-transitory program storage device readable by a computing device that tangibly embodies a program of instructions executable by the computing device to perform a method to use a conferencing apparatus, comprising:

sensing acoustic waves with a microphone array that further comprises a plurality of microphones where the plurality of microphones are oriented to develop a corresponding plurality of microphone signals; and

providing a processor, memory, and storage operably coupled to the microphone array, the processor configured to execute the following steps:

performing a beamforming operation to combine the plurality of microphone signals from the microphone array to a plurality of combined signals that is greater in number than one and less in number than the plurality of microphone signals, each of the plurality of combined signals corresponding to a different fixed beam;

performing an acoustic echo cancellation operation on the plurality of combined signals to generate a plurality of combined echo cancelled signals;

post processing the plurality of combined echo cancelled signals by performing at least one additional signal processing process that includes nonlinear processing, adaptive level control, and noise suppression; and

selecting one of the post processed signals for transmission to the far end where a signal selector uses the far end signal as information to inhibit the signal selector from changing the selection of the post processed signals while only the far end signal is active among the far end signal and the combined echo cancelled signals.

20. The claim according to claim 19 where a voice activity detector uses the far end signal as the input and provides the output to the signal selector to inhibit changing the selected beam while the far end signal is active or the post processed signals are below a threshold.

21. The claim according to claim 19 where the processor is further configured to enhance a direction of arrival determination with a voice activity detector.

22. The claim according to claim 19 where the processor is further configured to perform a direction of arrival determination on the plurality of microphone signals and to select one of the post processed signals in response.

23. The claim according to claim 19 where the processor is further configured to perform a partial acoustic echo cancellation operation on a subset of microphone signals which is greater than one and less than the plurality of microphone signals where the partial acoustic echo cancellation operation is used to determine that the microphone array is in a receive only state.

24. The claim according to claim 19 where performing the beamforming operation includes applying beamforming weights to the signals from each microphone to achieve a desired pickup pattern that includes a main lobe and sidelobes together with nulls for each fixed beam where one or more of either the main lobe width, the sidelobe levels, or the position of one or more nulls can be controlled to attenuate noise in one particular direction while focusing the beamforming in other directions.

25. A conferencing apparatus, comprising:

means for sensing acoustic waves with a microphone array that further comprises a plurality of microphones where the plurality of microphones are oriented to develop a corresponding plurality of microphone signals; and

a processor, memory, and storage operably coupled to the microphone array, the processor configured to execute the following steps:

performing a beamforming operation to combine the plurality of microphone signals from the microphone array into a plurality of combined signals that is greater in number than one and less in number than the plurality of microphone signals, each of the plurality of combined signals corresponding to a different fixed beam;

performing an acoustic echo cancellation operation on the plurality of combined signals to generate a plurality of combined echo cancelled signals;

post processing the plurality of combined echo cancelled signals by performing at least one additional signal processing process that includes nonlinear processing, adaptive level control, and noise suppression; and

selecting one or more of the post processed signals for transmission to the far end where a signal selector uses the far end signal as information to inhibit the signal selector from changing the selection of the post processed signals while only the far end signal is active among the far end signal and the combined echo cancelled signals.

26. The claim according to claim 25 where a voice activity detector uses the far end signal as the input and provides the output to the signal selector to inhibit changing the selected beam while the far end signal is active or the post processed signals are below a threshold.

27. The claim according to claim 25 where the processor is further configured to enhance a direction of arrival determination with a voice activity detector.

28. The claim according to claim 25 where the processor is further configured to perform a direction of arrival determination on the plurality of microphone signals and to select one of the post processed signals in response.

29. The claim according to claim 25 where the processor is further configured to perform a partial acoustic echo cancellation operation on a subset of microphone signals which is greater than one and less than the plurality of microphone signals where the partial acoustic echo cancellation operation is used to determine that the microphone array is in a receive only state.

30. The claim according to claim 25 where performing the beamforming operation includes applying beamforming weights to the signals from each microphone to achieve a desired pickup pattern that includes a main lobe and sidelobes together with nulls for each fixed beam where one or more of either the main lobe width, the sidelobe levels, or the position of one or more nulls can be controlled to attenuate noise in one particular direction while focusing the beamforming in other directions.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2025
From: CLEARONE HOLDING, LLC
To: BIAMP SYSTEMS, LLC
Reel/Frame 072737/0439 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 25, 2023
From: PANDEY, ASHUTOSH; THURSTON, DARRIN T.; LAMBERT, DAVID K.; BATHURST, TRACY A.
To: CLEARONE COMMUNICATIONS, INC.
Reel/Frame 064703/0257 →
CHANGE OF NAME Recorded Aug 25, 2023
From: CLEARONE COMMUNICATIONS INC.
To: CLEARONE INC.
Reel/Frame 064727/0587 →
Continuity (9)
Continuation 18057991 · Nov 22, 2022
Continuation 17187830 · Feb 28, 2021
Continuation 15190414 · Jun 23, 2016
Continuation 15040135 · Feb 10, 2016
Continuation 13493921 · Jun 11, 2012
Provisional Application 61495961 · Jun 11, 2011
Provisional Application 61495968 · Jun 11, 2011
Provisional Application 61495971 · Jun 11, 2011
Related Publication 20240022668A1 · Jan 18, 2024
Cited By (1)
US 12,621,389