IP Library Granted Patent US 10,842,389
Granted Patent B2
US 10,842,389 · App. 16/191,721 · Granted Nov 24, 2020

Wearable audio devices

Inventors: Steven Francis LeBoeuf (Raleigh, NC); Jesse Berkley Tucker (Youngsville, NC); Michael Edward Aumer (Raleigh, NC)
Assignee: Valencell, Inc.
A61B5/0205A61B5/00A61B5/002A61B5/0013A61B5/0022A61B5/0024A61B5/0059A61B5/0082A61B5/0084A61B5/01A61B5/021A61B5/02055A61B5/0261A61B5/02427A61B5/02433A61B5/0476A61B5/0816A61B5/11A61B5/1107A61B5/1118A61B5/1455A61B5/14532A61B5/14551A61B5/165A61B5/418A61B5/486A61B5/4812A61B5/4845A61B5/4848A61B5/4866A61B5/4875A61B5/4884A61B5/6803A61B5/6815A61B5/6816A61B5/6817A61B5/6819A61B5/6826A61B5/6838A61B5/721A61B5/725A61B5/7214A61B5/7221A61B5/7278A61B5/7282A61B5/742A61B5/7475G02B6/0001G16H30/40G16H40/63G16H40/67G16H50/20H04R1/028H04R1/105H04R1/1091A61B5/024A61B5/026A61B5/0295A61B5/02405A61B5/02416A61B5/091A61B5/411A61B5/415A61B5/7207A61B2560/0242A61B2560/0425A61B2560/0443A61B2562/0219A61B2562/0233
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 10,842,389
App. No.
16/191,721
Granted
Nov 24, 2020
Kind
B2
Abstract

A wearable audio device includes a housing configured to be positioned at an ear of a subject, a speaker and a chipset within the housing. The chipset includes a plurality of sensor elements, at least one signal processor, at least one digital bus, power regulating circuitry, and at least one wireless transmitter. The sensor elements include at least one optical emitter, at least one optical detector, and at least one noise source. The chipset is positioned within the housing such that the at least one optical emitter and at least one optical detector are in optical communication with the ear via a window in the housing. The at least one signal processor includes sensor signal conditioning algorithms configured to process signals from the sensor elements to generate physiological assessment information about the subject. The at least one wireless transmitter is configured to communicate the physiological assessment information to a remote device.

Claims (57)

1. A wearable audio device, comprising:

a housing configured to be positioned at an ear of a subject, the housing comprising a window; and

a chipset within the housing, the chipset comprising:

a plurality of sensor elements comprising at least one optical emitter, at least one optical detector, and at least one noise source;

at least one signal processor comprising sensor signal conditioning algorithms, wherein the at least one signal processor is configured to process signals from the at least one optical detector and the at least one noise source to generate physiological assessment information about the subject;

at least one digital bus configured to enable digital communication between the plurality of sensor elements and the at least one signal processor;

power regulating circuitry; and

at least one wireless transmitter configured to communicate the physiological assessment information to a remote device,

wherein the chipset is positioned within the housing such that the at least one optical emitter or the at least one optical detector is in optical communication with the ear of the subject via the window,

wherein a portion of the housing comprises a light-guiding region such that light emitted from the optical emitter or light detected by the optical detector is transmitted through the portion of the housing, and

wherein the at least one signal processor is configured to apply an adaptive filter to signals from the at least one optical detector and the at least one noise source to determine a heart rate of the subject, and wherein the at least one wireless transmitter is configured to transmit the heart rate of the subject to the remote device.

2. The wearable audio device of claim 1 , wherein the window comprises an acoustic orifice in the housing.

3. The wearable audio device of claim 1 , wherein the window comprises a transparent region in the housing.

4. The wearable audio device of claim 1 , wherein the chipset is positioned within the housing such that at least one of the at least one optical emitter and the at least one optical detector are aligned line-of-sight through the window.

5. The wearable audio device of claim 1 , wherein the wearable audio device is an earbud, a headset, and/or a hearing aid.

6. The wearable audio device of claim 1 , further comprising non-air light transmissive material in optical communication with the at least one optical emitter and the window and/or the non-air light transmissive material in optical communication with the at least one optical detector and the window.

7. The wearable audio device of claim 1 , wherein the at least one signal processor is configured to reduce subject motion artifacts by removing frequency bands from signals from the at least one optical detector that are outside of a range of interest using at least one band-pass filter to produce pre-conditioned signals, wherein the subject motion artifacts comprise subject footstep-related motion artifacts.

8. The wearable audio device of claim 7 , wherein the at least one signal processor is configured to filter the pre-conditioned signals via FIR (Finite Impulse Response) filtering, IIR (Infinite Impulse Response) filtering, adaptive filtering, phase filtering, and/or frequency filtering.

9. The wearable audio device of claim 1 , wherein the at least one noise source comprises an optical sensor, an inertial sensor, an electrically conductive sensor, a capacitive sensor, an inductive sensor, an accelerometer, and/or a blocked channel sensor.

10. The wearable audio device of claim 1 , further comprising light blocking material positioned between the at least one optical emitter and the at least one optical detector such that the at least one optical emitter and the at least one optical detector are not in direct optical communication with each other.

11. The wearable audio device of claim 1 , further comprising a speaker within the housing, and wherein the housing comprises at least one aperture through which sound from the speaker can pass.

12. The wearable audio device of claim 1 , wherein the portion of the housing is a first portion, and

wherein at least a second portion of the housing is configured to be positioned within the ear.

13. The wearable audio device of claim 1 , wherein the at least one signal processor is further configured to provide updates to properties of the adaptive filter that reduce a difference between the signal from the at least one optical detector and the signal from the at least one noise source.

14. The wearable audio device of claim 1 , wherein the at least one optical emitter is a first optical emitter, and

wherein the at least one noise source comprises a second optical emitter.

15. A wearable audio device, comprising:

a housing configured to be positioned at an ear of a subject, the housing comprising a window;

a speaker within the housing, and wherein the housing comprises at least one aperture through which sound from the speaker can pass; and

a chipset within the housing, the chipset comprising:

a plurality of sensor elements comprising at least one optical emitter, at least one optical detector, and at least one noise source;

at least one signal processor comprising sensor signal conditioning algorithms, wherein the at least one signal processor is configured to process signals from the at least one optical detector and the at least one noise source to generate physiological assessment information about the subject;

at least one digital bus configured to enable digital communication between the plurality of sensor elements and the at least one signal processor;

power regulating circuitry; and

at least one wireless transmitter configured to communicate the physiological assessment information to a remote device,

wherein the chipset is positioned within the housing such that the at least one optical emitter and/or the at least one optical detector are aligned line-of-sight through the window toward the ear of the subject, and

wherein the at least one signal processor is configured to apply an adaptive filter to signals from the at least one optical detector and the at least one noise source to determine a heart rate of the subject, and wherein the at least one wireless transmitter is configured to transmit the heart rate of the subject to the remote device.

16. The wearable audio device of claim 15 , wherein the wearable audio device is an earbud, headset, and/or hearing aid.

17. The wearable audio device of claim 15 , wherein the at least one signal processor is configured to reduce subject motion artifacts by removing frequency bands from the signals from the at least one optical detector that are outside of a range of interest using at least one band-pass filter to produce pre-conditioned signals, wherein the subject motion artifacts comprise subject footstep-related motion artifacts.

18. The wearable audio device of claim 17 , wherein the at least one signal processor is configured to filter the pre-conditioned signals via FIR (Finite Impulse Response) filtering, IIR (Infinite Impulse Response) filtering, adaptive filtering, phase filtering, and/or frequency filtering.

19. The wearable audio device of claim 15 , wherein the at least one noise source comprises an optical sensor, an inertial sensor, an electrically conductive sensor, a capacitive sensor, an inductive sensor, an accelerometer, and/or a blocked channel sensor.

20. The wearable audio device of claim 15 , further comprising light blocking material positioned between the at least one optical emitter and the at least one optical detector such that the at least one optical emitter and the at least one optical detector are not in direct optical communication with each other.

21. The wearable audio device of claim 15 , wherein at least a portion of the housing is configured to be positioned within the ear.

22. The wearable audio device of claim 15 , wherein the at least one signal processor is further configured to provide updates to properties of the adaptive filter that reduce a difference between the signal from the at least one optical detector and the signal from the at least one noise source.

23. The wearable audio device of claim 15 , wherein the at least one optical emitter is a first optical emitter, and

wherein the at least one noise source comprises a second optical emitter.

24. A wearable audio device, comprising:

a housing configured to be positioned at an ear of a subject, the housing comprising a window; and

a chipset within the housing, the chipset comprising:

a plurality of sensor elements comprising at least one optical emitter, at least one optical detector, and at least one noise source;

at least one signal processor comprising sensor signal conditioning algorithms, wherein the at least one signal processor is configured to process signals from the at least one optical detector and the at least one noise source to generate physiological assessment information about the subject;

at least one digital bus configured to enable digital communication between the plurality of sensor elements and the at least one signal processor; and

power regulating circuitry;

wherein the chipset is positioned within the housing such that the at least one optical emitter or the at least one optical detector is in optical communication with the ear of the subject via the window;

wherein a portion of the housing comprises a light-guiding region such that light emitted from the at least one optical emitter or light detected by the at least one optical detector is transmitted through the portion of the housing;

wherein the at least one signal processor is configured to process the signals from the at least one noise sensor to measure footstep information from a limb of the subject; and

wherein the at least one signal processor is configured to remove frequency bands from the signals from the at least one optical detector that are outside of a range of interest to produce pre-conditioned signals, and to further process the pre-conditioned signals using the signals from the at least one noise sensor to reduce motion artifacts from footsteps during subject running.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2025
From: VALENCELL, INC.
To: VISTA PRIMAVERA LLC
Reel/Frame 072595/0385 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 28, 2024
From: LEBOEUF, STEVEN FRANCIS; TUCKER, JESSE BERKLEY; AUMER, MICHAEL EDWARD
To: VALENCELL, INC.
Reel/Frame 068432/0496 →
RELEASE OF SECURITY INTEREST Recorded Jul 26, 2022
From: WESTERN ALLIANCE BANK
To: VALENCELL, INC.
Reel/Frame 060919/0018 →
SECURITY INTEREST Recorded Mar 24, 2022
From: VALENCELL, INC.
To: WESTERN ALLIANCE BANK
Reel/Frame 059501/0119 →
Continuity (9)
Continuation 16007661 · Jun 13, 2018
Continuation 14564336 · Dec 9, 2014
Continuation 14194891 · Mar 3, 2014
Continuation 12691388 · Jan 21, 2010
Provisional Application 61274191 · Aug 14, 2009
Provisional Application 61212444 · Apr 13, 2009
Provisional Application 61208567 · Feb 25, 2009
Provisional Application 61208574 · Feb 25, 2009
Related Publication 20190082974A1 · Mar 21, 2019
Cited By (38)
US 12,210,381 US 12,222,758 US 12,222,759 US 12,228,968 US 12,235,679 US 12,306,669 US 12,332,688 US 12,332,689 US 12,346,160 US 12,393,227 US 12,393,228 US 12,393,229 US 12,399,530 US 12,399,531 US 12,422,889 US 12,429,908 US 12,429,909 US 12,429,910 US 12,429,911 US 12,436,566 US 12,443,228 US 12,443,229 US 12,443,230 US 12,443,231 US 12,449,843 US 12,449,844 US 12,449,845 US 12,449,846 US 12,449,847 US 12,449,848 US 12,449,849 US 12,461,560 US 12,461,561 US 12,468,342 US 12,493,321 US 12,498,756 US 12,530,050 US 12,653,461