IP Library › Granted Patent US 11,184,725
Granted Patent B2
US 11,184,725 · App. 16/370,160 · Granted Nov 23, 2021

Method and system for autonomous boundary detection for speakers

Inventor: Adrian Celestinos Arroyo (Porter Ranch, CA)
Assignee: Samsung Electronics Co., Ltd.
H04R29/001H04R3/04
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Quick Facts
Patent No.
US 11,184,725
App. No.
16/370,160
Granted
Nov 23, 2021
Kind
B2
Abstract

A method includes detecting, by a speaker system including a microphone, one or more boundaries within a proximity to the speaker system. The speaker system adjusts an output of the speaker system based on the one or more detected boundaries. A sound quality of the speaker system is improved based on adjusting the output.

Claims (71)

1. A method comprising:

detecting, by a speaker system including an enclosure, a diaphragm, and a microphone disposed in proximity of the diaphragm, one or more boundaries within proximity to the speaker system, wherein each detected boundary includes a surface that is outside of the enclosure, wherein the surface reflects sound, and wherein the surface is one of a floor surface, an object surface, or a wall surface;

determining a distance between the diaphragm and at least one boundary of the one or more detected boundaries;

determining a position of the speaker system with respect to the one or more detected boundaries;

autonomously adjusting, by the speaker system, an output of the speaker system based on the determined position and the determined distance; and

improving a sound quality of the speaker system based on adjusting the output.

2. The method of claim 1 , further comprising:

computing an impulse response (IR) in a near field associated with the speaker system.

3. The method of claim 2 , further comprising:

determining, based on the IR in the near field, one or more of a magnitude or a distance of one or more closest wave reflections, wherein the one or more closest wave reflections are from the at least one boundary of the one or more detected boundaries.

4. The method of claim 1 , further comprising:

determining sound pressure level differences at the microphone along discrete frequencies; and

identifying the at least one boundary of the one or more detected boundaries, wherein:

the determined position of the speaker system with respect to the one or more detected boundaries is determined based on at least one threshold for the sound pressure level differences along discrete frequencies;

the determined position is indicative of one of the following: the speaker system is free standing, the speaker system is within proximity to a wall, the speaker system is within proximity to a two-wall corner, or the speaker system is within proximity to a three-wall corner; and

the output is autonomously adjusted based on the at least one boundary.

5. The method of claim 1 , further comprising:

identifying an environment in which the speaker system is situated based on the one or more detected boundaries, wherein the environment is one of a horizontal surface outside of the enclosure, a vertical surface outside of the enclosure, a corner formed by two flat surfaces outside of the enclosure, or a corner formed by three flat surfaces outside of the enclosure.

6. The method of claim 1 , wherein the microphone is disposed in front of the diaphragm.

7. The method of claim 5 , further comprising:

determining that the environment has less than a threshold sound quality level in association with the speaker system; and

providing an audio or visual alert in response to determining that the environment has less than the threshold sound quality level in association with the speaker system.

8. A speaker device comprising:

an enclosure;

a speaker driver including a diaphragm;

a microphone disposed in proximity of the diaphragm;

a memory storing instructions; and

at least one processor that executes the instructions to:

detect one or more boundaries within proximity to the speaker device, wherein each detected boundary includes a surface that is outside of the enclosure, wherein the surface reflects sound, and wherein the surface is one of a floor surface, an object surface, or a wall surface;

determine a distance between the diaphragm and at least one boundary of the one or more detected boundaries;

determine a position of the speaker device with respect to the one or more detected boundaries;

autonomously adjust an output of the speaker device based on the determined position and the determined distance; and

improve a sound quality of the speaker device based on adjusting the output.

9. The speaker device of claim 8 , wherein the at least one processor further executes the instructions to:

compute an impulse response (IR) in a near field associated with the speaker device.

10. The speaker device of claim 9 , wherein the at least one processor further executes the instructions to:

determine, based on the IR in the near field, one or more of a magnitude or a distance of one or more closest wave reflections, wherein the one or more closest wave reflections are from the at least one boundary of the one or more detected boundaries.

11. The speaker device of claim 8 , wherein the at least one processor further executes the instructions to:

determine sound pressure level differences at the microphone along discrete frequencies; and

identify the at least one boundary of the one or more detected boundaries, wherein:

the determined position of the speaker device with respect to the one or more detected boundaries is determined based on at least one threshold for the sound pressure level differences along discrete frequencies;

the determined position is indicative of one of the following: the speaker device is free standing, the speaker device is within proximity to a wall, the speaker device is within proximity to a two-wall corner, or the speaker device is within proximity to a three-wall corner; and

the output is autonomously adjusted based on the at least one boundary.

12. The speaker device of claim 8 , wherein the at least one processor further executes the instructions to:

identify an environment in which the speaker device is situated based on the one or more detected boundaries, wherein the environment is one of a horizontal surface outside of the enclosure, a vertical surface outside of the enclosure, a corner formed by two flat surfaces outside of the enclosure, or a corner formed by three flat surfaces outside of the enclosure.

13. The speaker device of claim 12 , wherein the microphone is disposed in front of the diaphragm.

14. The speaker device of claim 12 , wherein the at least one processor further executes the instructions to:

determine that the environment has less than a threshold sound quality level in association with the speaker device; and

provide an audio or visual alert in response to determining that the environment has less than the threshold sound quality level in association with the speaker device, wherein the microphone comprises one of an individual microphone or a microphone array including a plurality of microphones.

15. A non-transitory processor-readable medium that includes a program that when executed by a processor performs a method comprising:

detecting, by the processor, one or more boundaries within proximity to a speaker system including an enclosure, a diaphragm, and a microphone disposed in proximity of the diaphragm, wherein each detected boundary includes a surface that is outside of the enclosure, wherein the surface reflects sound, and wherein the surface is one of a floor surface, an object surface, or a wall surface;

determining a distance between the diaphragm and at least one boundary of the one or more detected boundaries;

determining, by the processor, a position of the speaker system with respect to the one or detected more boundaries;

autonomously adjusting, by the processor, an output of the speaker system based on the determined position and the determined distance; and

improving a sound quality of the speaker system based on adjusting the output.

16. The non-transitory processor-readable medium of claim 15 , wherein the method further comprises:

computing an impulse response (IR) in a near field associated with the speaker system.

17. The non-transitory processor-readable medium of claim 16 , wherein the method further comprises:

determining sound pressure level differences at the microphone along discrete frequencies;

determining, based on the IR in the near field, one or more of a magnitude or a distance of one or more closest wave reflections; and

identifying the at least one boundary of the one or more detected boundaries, wherein:

the one or more closest wave reflections are from the at least one boundary;

the determined position of the speaker system with respect to the one or more detected boundaries is determined based on at least one threshold for the sound pressure level differences along discrete frequencies;

the determined position is indicative of one of the following: the speaker system is free standing, the speaker system within proximity to a wall, the speaker system is within proximity to a two-wall corner, or the speaker system is within proximity to a three-wall corner; and

the output is autonomously adjusted based on the at least one boundary.

18. The non-transitory processor-readable medium of claim 15 , wherein the method further comprises:

identifying an environment in which the speaker system is situated based on the one or more detected boundaries, wherein the environment is one of a horizontal surface outside of the enclosure, a vertical surface outside of the enclosure, a corner formed by two flat surfaces outside of the enclosure, or a corner formed by three flat surfaces outside of the enclosure.

19. The non-transitory processor-readable medium of claim 18 , wherein the microphone is disposed in front of the diaphragm.

20. The non-transitory processor-readable medium of claim 18 , wherein the method further comprises:

determining that the environment has less than a threshold sound quality level in association with the speaker system; and

providing an audio or visual alert in response to determining that the environment has less than the threshold sound quality level in association with the speaker system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 29, 2019
From: ARROYO, ADRIAN CELESTINOS
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 048750/0276 →
Continuity (2)
Provisional Application 62743171 · Oct 9, 2018
Related Publication 20200112807A1 · Apr 9, 2020
Cited By (1)
US 12,598,442