IP Library › Granted Patent US 12,293,750
Granted Patent B2
US 12,293,750 · App. 18/019,211 · Granted May 6, 2025

Occupancy based active noise cancellation systems

Inventors: Kevin J. Bastyr (Franklin, MI); Antonio Gomez (Hazel Park, MI)
Assignee: HARMAN INTERNATIONAL INDUSTRIES, INCORPORATED
G10K11/17813G10K11/17879G10K2210/1282
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Quick Facts
Patent No.
US 12,293,750
App. No.
18/019,211
Granted
May 6, 2025
Kind
B2
Abstract

An active noise cancellation (ANC) system is provided with at least one loudspeaker to project anti-noise sound within a passenger cabin of a vehicle in response to receiving an anti-noise signal. At least one microphone provides an error signal indicative of noise and the anti-noise sound within the passenger cabin. An occupancy controller is programmed to modify a transfer function between the at least one microphone and at least one virtual microphone based on an occupancy signal indicative of occupant presence within the passenger cabin. An adaptive filter controller is programmed to filter the error signal using the transfer function to obtain an estimated virtual microphone error signal. A controllable filter generates the anti-noise signal based on the estimated virtual microphone error signal.

Claims (60)

1. An active noise cancellation (ANC) system comprising:

at least one loudspeaker to project anti-noise sound within a passenger cabin of a vehicle in response to receiving an anti-noise signal;

at least one microphone to provide an error signal indicative of noise and the anti-noise sound within the passenger cabin;

an occupancy controller programmed to:

modify a transfer function between the at least one microphone and at least one virtual microphone based on an occupancy signal indicative of occupant presence within the passenger cabin, and

increase a gain associated with the at least one virtual microphone in response to an occupant being proximate to the at least one virtual microphone;

an adaptive filter controller programmed to filter the error signal using the transfer function to obtain an estimated virtual microphone error signal; and

a controllable filter to generate the anti-noise signal based on the estimated virtual microphone error signal.

2. The ANC system of claim 1 , wherein the at least one microphone comprises at least two microphones, and wherein the adaptive filter controller is further programmed to:

select one of the at least two microphones based on the occupancy signal; and

filter the error signal from the selected microphone using the transfer function to obtain the estimated virtual microphone error signal.

3. The ANC system of claim 1 , wherein the at least one loudspeaker comprises at least two loudspeakers, and wherein the adaptive filter controller is further programmed to:

select one of the at least two loudspeakers based on the occupancy signal; and

generate the anti-noise signal to be radiated from the selected loudspeaker within the vehicle based on the estimated virtual microphone error signal.

4. The ANC system of claim 1 , wherein the adaptive filter controller is further programmed to determine a location of the at least one virtual microphone using a head tracking technique.

5. The ANC system of claim 1 wherein the adaptive filter controller is further programmed to determine a location of the at least one virtual microphone based on a seat position.

6. The ANC system of claim 1 further comprising:

at least one sensor to provide a non-acoustic noise signal;

a second secondary path filter configured to filter the non-acoustic noise signal to obtain a filtered noise signal, the second secondary path filter defined by a stored transfer characteristic that estimates a secondary path between the loudspeaker and the microphone; and

wherein the adaptive filter controller is further programmed to control the controllable filter based on the filtered noise signal and the estimated virtual microphone error signal.

7. The ANC system of claim 6 , wherein the at least one sensor comprises at least two sensors, and wherein the adaptive filter controller is further programmed to:

select one of the at least two sensors based on a coherence of the sensor with at least one of the at least one microphone and the at least one virtual microphone; and

wherein the second secondary path filter is further configured to filter the non-acoustic noise signal from the selected sensor to obtain a filtered noise signal.

8. The ANC system of claim 1 , wherein the at least one virtual microphone further comprises a first virtual microphone and a second virtual microphone, and wherein the occupancy controller can increase a second gain associated with the second virtual microphone in response to an occupant being proximate to the second virtual microphone, without any change in a first gain associated with the first virtual microphone.

9. A method for controlling a virtual microphone (VM) active noise cancellation (ANC) system, the method comprising:

receiving an error signal from a microphone indicative of noise and anti-noise within a vehicle;

receiving an occupancy signal from an occupancy detector indicative of occupant presence within the vehicle;

modifying a transfer function between the microphone and at least one virtual microphone based on the occupancy signal;

increasing a gain associated with the at least one virtual microphone based on occupant presence proximate to the at least one virtual microphone;

filtering the error signal using the transfer function to obtain an estimated virtual microphone error signal; and

generating an anti-noise signal to be radiated from a loudspeaker within the vehicle based on the estimated virtual microphone error signal.

10. The method of claim 9 , wherein the microphone further comprises at least two microphones, and wherein the method further comprises:

selecting one of the at least two microphones based on the occupancy signal; and

filtering the error signal from the selected microphone using the secondary path filter to obtain the estimated virtual microphone error signal.

11. The method of claim 9 , wherein the loudspeaker further comprises at least two loudspeakers, and wherein the method further comprises:

selecting one of the at least two loudspeakers based on the occupancy signal; and

generating the anti-noise signal to be radiated from the selected loudspeaker within the vehicle based on the estimated virtual microphone error signal.

12. The method of claim 9 further comprising determining a location of the virtual microphone using a head tracking technique.

13. The method of claim 9 further comprising determining a location of the virtual microphone based on a seat position.

14. The method of claim 9 , further comprising:

comparing the occupancy signal to a previously stored occupancy configuration to determine any changes between the previously stored occupancy configuration and the occupancy signal.

15. An active noise cancellation (ANC) system comprising:

an occupancy controller configured to modify a transfer function between at least one microphone and at least one virtual microphone based on occupant presence within a passenger cabin of a vehicle;

an adaptive filter controller configured to:

filter an error signal indicative of noise and anti-noise sound within the passenger cabin using the transfer function to obtain an estimated virtual microphone error signal, and

increase a gain associated with the at least one virtual microphone in response to an occupant being proximate to the at least one virtual microphone; and

a controllable filter to generate an anti-noise signal based on the estimated virtual microphone error signal and to provide the anti-noise signal to at least one loudspeaker to project anti-noise sound within a passenger cabin of a vehicle.

16. The ANC system of claim 15 further comprising:

at least two microphones; and

wherein the adaptive filter controller is further configured to:

select one of the at least two microphones based on the occupant presence; and

filter the error signal from the selected microphone using the secondary path filter to obtain the estimated virtual microphone error signal.

17. The ANC system of claim 15 further comprising:

at least two loudspeakers; and

wherein the adaptive filter controller is further configured to:

select one of the at least two loudspeakers based on the occupant presence; and

generate the anti-noise signal to be radiated from the selected loudspeaker within the vehicle based on the estimated virtual microphone error signal.

18. The ANC system of claim 15 , wherein the adaptive filter controller is further configured to determine a location of the at least one virtual microphone using a head tracking technique.

19. The ANC system of claim 15 , wherein the adaptive filter controller is further configured to determine a location of the at least one virtual microphone based on a seat position.

20. The ANC system of claim 15 , wherein the occupancy controller includes predetermined stored data indicative of optimum transfer function parameters for various occupancy configurations.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 2, 2023
From: BASTYR, KEVIN J.; GOMEZ, ANTONIO
To: HARMAN INTERNATIONAL INDUSTRIES, INCORPORATED
Reel/Frame 062568/0144 →
Continuity (1)
Related Publication 20230306947A1 · Sep 28, 2023
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