IP Library Granted Patent US 12,332,713
Granted Patent B2
US 12,332,713 · App. 18/352,542 · Granted Jun 17, 2025

Two-phase deployment-initiated wakeup mechanism for body-mountable electronic device

Inventors: William James Biederman, III (San Francisco, CA); Louis Hyunsuk Jung (Foster City, CA)
Assignees: Verily Life Sciences LLC; DexCom, Inc.
G06F1/3206A61B5/14532A61B5/6833A61B2560/0209
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Quick Facts
Patent No.
US 12,332,713
App. No.
18/352,542
Granted
Jun 17, 2025
Kind
B2
Abstract

The technology described herein is related to a two-phase deployment-initiated wakeup mechanism for a body-mountable electronic device. During a first phase of the two-phase wakeup mechanism, a motion sensor detects an acceleration event indicative of deployment of the device onto the body of the user. During a second phase of the two-phase mechanism, control circuitry can be adapted to be enabled by the acceleration event. Once enabled, the control circuitry can verify that the device has been launched onto the body of a user via a deployment applicator in which the device is retained until deployment. Once verified, the control circuitry can wake up the body-mountable electronic device by transitioning the device from a sleep state to a functional (or operational) state.

Claims (60)

1. A method, comprising:

detecting, by a body-mountable electronic device in a low-power mode, a first initial deployment indicator;

in response to detecting the first initial deployment indicator, transitioning the body-mountable electronic device from the low-power mode into a mid-power mode;

failing to verify, by the body-mountable electronic device in the mid-power mode, deployment of the body-mountable electronic device within a threshold time period;

in response to the failing, transitioning the body-mountable electronic device from the mid-power mode into the low-power mode;

detecting, by the body-mountable electronic device in the low-power mode, a second initial deployment indicator after the first initial deployment indicator;

in response to detecting the second initial deployment indicator, transitioning the body-mountable electronic device from the low-power mode into the mid-power mode;

verifying, by the body-mountable electronic device in the mid-power mode, deployment of the body-mountable electronic device based on detecting a signal within the threshold time period; and

in response to the verifying, transitioning the body-mountable electronic device from the mid-power mode into a full power mode.

2. The method of claim 1 , wherein the detecting the signal comprises:

detecting connectivity between the body-mountable electronic device and a mobile device within the threshold time period.

3. The method of claim 1 , wherein the detecting the signal comprises:

detecting biosensor readings from a biosensor of the body-mountable electronic device within the threshold time period.

4. The method of claim 1 , wherein the detecting the signal comprises:

detecting an analyte from an analyte sensor of the body-mountable electronic device within the threshold time period.

5. The method of claim 1 , wherein the detecting the signal comprises:

detecting a pattern of movements of the body-mountable electronic device within the threshold time period.

6. The method of claim 1 , wherein:

the transitioning the body-mountable electronic device from the low-power mode to the mid-power mode comprises enabling control circuitry; and

the control circuitry performs the verifying.

7. The method of claim 1 , wherein:

the body-mountable electronic device comprises a sensor component, a microcontroller, and a plurality of other components;

the sensor component is enabled, the microcontroller is disabled, and the plurality of other components are disabled in the low-power mode;

the transitioning the body-mountable electronic device from the low-power mode to the mid-power mode comprises enabling the microcontroller; and

the transitioning the body-mountable electronic device from the mid-power mode to the full power mode comprises enabling the plurality of other components.

8. The method of claim 1 , wherein the detecting the initial deployment indicator comprises detecting an acceleration event.

9. The method of claim 1 , further comprising:

detecting, by the body-mountable electronic device in the low-power mode, a plurality of initial deployment indicators prior to detecting the first initial deployment indicator; and

in response to detecting each of the plurality of initial deployment indicators:

transitioning the body-mountable electronic device from the low-power mode into the mid-power mode;

failing to verify, by the body-mountable electronic device in the mid-power mode, deployment of the body-mountable electronic device within the threshold time period; and

in response to the failing, transitioning the body-mountable electronic device from the mid-power mode into the low-power mode.

10. The method of claim 1 , further comprising:

providing, by the body-mountable electronic device in the full power mode, health related information associated with a user on which the body-mountable electronic device is mounted.

11. A body-mountable electronic device, comprising:

a power source;

a timer configured to count a timeout period;

a sensor coupled to the power source and configured to detect an indication that meets a transition condition; and

control circuitry coupled to the power source and configured to:

verify deployment of the body-mountable electronic device upon being enabled in response to the transition condition being met, wherein:

upon being enabled, the control circuitry draws a first level of power from the power source; and

verifying the deployment is based on the control circuitry monitoring to detect a signal within the timeout period, and

in response to verifying the deployment, transition the body-mountable electronic device to a full power mode, wherein the transitioning comprises enabling additional functionality of the body-mountable electronic device, and wherein enabling the additional functionality draws a second level of power from the power source,

wherein the body-mountable electronic device is configured to be inserted into a deployment applicator.

12. The body-mountable electronic device of claim 11 , further comprising:

a wireless transceiver,

wherein the detecting the signal comprises confirming the wireless transceiver establishes a wireless connection to a second device within the timeout period counted by the timer.

13. The body-mountable electronic device of claim 11 , wherein the monitoring to detect the signal comprises monitoring to detect, via the sensor, a pattern of movements of the body-mountable electronic device.

14. The body-mountable electronic device of claim 11 , further comprising:

a biosensor configured to detect an analyte,

wherein the monitoring to detect the signal comprises monitoring to detect a biosensor signal from the biosensor indicating detection of the analyte.

15. The body-mountable electronic device of claim 11 , further comprising:

a communication interface,

wherein enabling the additional functionality comprises:

enabling collection of health data from a user upon which the body-mountable electronic device is deployed; and

enabling providing the health data to the user via the communication interface.

16. The body-mountable electronic device of claim 11 , wherein the power source comprises a rechargeable energy storage device.

17. The body-mountable electronic device of claim 11 , wherein the power source comprises a disposable energy storage device.

18. The body-mountable electronic device of claim 11 , wherein the sensor is a motion sensor.

19. The body-mountable electronic device of claim 11 , wherein the control circuitry comprises a microprocessor.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 4, 2025
From: VERILY LIFE SCIENCES LLC
To: DEXCOM, INC.; VERILY LIFE SCIENCES LLC
Reel/Frame 070104/0973 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 14, 2023
From: BIEDERMAN, WILLIAM JAMES, III; JUNG, LOUIS HYUNSUK
To: VERILY LIFE SCIENCES LLC
Reel/Frame 064259/0972 →
Continuity (5)
Continuation 17824056 · May 25, 2022
Continuation 16927190 · Jul 13, 2020
Continuation 16168527 · Oct 23, 2018
Provisional Application 62577323 · Oct 26, 2017
Related Publication 20240019920A1 · Jan 18, 2024
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