IP Library › Granted Patent US 12,426,783
Granted Patent B2
US 12,426,783 · App. 17/927,033 · Granted Sep 30, 2025

Gateway device facilitating collection and management of data from a body area network to a study coordinating system

Inventors: Landy Toth (Doylestown, PA); Robert S. Schwartz (Inver Grove Heights, MN); Dhananjai Hariharan (Doylestown, PA)
Assignee: LifeLens Technologies, Inc.
A61B5/0024A61B5/0022G16H40/67
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Quick Facts
Patent No.
US 12,426,783
App. No.
17/927,033
Granted
Sep 30, 2025
Kind
B2
Abstract

A gateway device comprises a processing device, network interface, and sensor device interconnect. The processing device is configured to pair sensor devices associated with a subject with the gateway device utilizing the sensor device interconnect, wherein pairing the sensor devices comprises identifying sensing capabilities of the sensor devices. The processing device is also configured to provide, to a study coordinating system over a first network connection established utilizing the network interface, a gateway identifier and information characterizing the identified sensing capabilities of the sensor devices paired with the gateway device. The processing device is further configured to receive, from the study coordinating system, parameters for a study identifying data to be collected from sensor devices paired with the gateway device, to collect the identified data from the sensor devices over a second network connection established utilizing the network interface, and to provide the collected data to the study coordinating system.

Claims (43)

1. A gateway device comprising:

at least one processing device comprising a processor coupled to a memory;

at least one network interface; and

at least one sensor device interconnect;

the at least one processing device being configured:

to pair one or more sensor devices of a body area network associated with a subject with the gateway device utilizing the at least one sensor device interconnect, wherein pairing the one or more sensor devices comprises identifying sensing capabilities of the one or more sensor devices;

to provide, to a study coordinating system over a first network connection established utilizing the at least one network interface, a gateway identifier for the gateway device and information characterizing the identified sensing capabilities of the one or more sensor devices paired with the gateway device;

to receive, from the study coordinating system over the first network connection, one or more study parameters for at least one study to be conducted involving the subject, the one or more study parameters identifying data to be collected from at least one of the one or more sensor devices paired with the gateway device;

to collect the identified data from the at least one sensor device paired with the gateway device over a second network connection established utilizing the at least one network interface; and

to provide the collected data to the study coordinating system over the first network connection,

wherein pairing a given one of the one or more sensor devices of the body area network with the gateway device is based at least in part on one or more signals received from the given sensor device characterizing an electric field generated in a vicinity of the at least one sensor device interconnect.

2. The gateway device of claim 1 , wherein the first network connection comprises a long-range wireless network connection and the second network connection comprises a short-range wireless network connection.

3. The gateway device of claim 2 , wherein the short-range network connection utilizes an ultra-low power wireless communication protocol.

4. The gateway device of claim 1 , wherein the at least one sensor device interconnect comprises a physical mount for attaching a given sensor device to the gateway device.

5. The gateway device of claim 4 , wherein the physical mount comprises a magnetic interconnect for attaching the given sensor device to the gateway device.

6. The gateway device of claim 1 , wherein the at least one sensor device interconnect comprises one or more inductive coils configured to charge a given one of the one or more sensor devices when the given sensor device is in close physical proximity to the at least one sensor device interconnect.

7. The gateway device of claim 1 , wherein the at least one sensor device interconnect comprises one or more photodetectors and transmitters configured for high-speed data transfer with a given one of the one or more sensor devices when aligned with corresponding photodetectors and transmitters of the given sensor device.

8. The gateway device of claim 1 , wherein the at least one sensor device interconnect comprises one or more signal generators configured to generate the electric field in the vicinity of the at least one sensor device interconnect.

9. The gateway device of claim 1 , wherein pairing the given sensor device comprises parsing the one or more signals received from the given sensor device to confirm placement and identification of the given sensor device relative to the at least one sensor device interconnect.

10. The gateway device of claim 1 , wherein pairing the given sensor device with the gateway device comprises identifying configuration parameters for the given sensor device and generating a configuration signal comprising the identified configuration parameters for delivery to the given sensor device utilizing the one or more signal generators.

11. The gateway device of claim 10 , wherein the identified configuration parameters comprise at least one of one or more programming data commands, one or more configuration commands, one or more unique identifiers, and one or more sensor calibration signals.

12. The gateway device of claim 1 , wherein the gateway identifier for the gateway device comprises at least one of a bar code, a quick response code, and a radio frequency identifier.

13. The gateway device of claim 1 , further comprising a data storage component, the at least one processing device being further configured to buffer the collected data in the data storage component prior to providing the collected data to the study coordinating system over the first network connection.

14. The gateway device of claim 13 , wherein buffering the collected data in the data storage component is performed responsive to detecting disruption of the first network connection.

15. The gateway device of claim 14 , wherein detecting disruption of the first network connection comprises determining that the first network connection is at least one of unavailable, intermittent, and experiencing reduced available bandwidth.

16. The gateway device of claim 1 , wherein the at least one processing device is further configured to apply at least one of compression and encryption to the collected data prior to providing the collected data to the study coordinating system over the first network connection.

17. The gateway device of claim 1 , wherein the one or more study parameters received from the study coordinating system further identify stimulus to be applied to the subject as part of the at least one study, and wherein the at least one processing device is further configured to provide one or more commands to initiate application of stimulus to the subject over the second network connection to at least one stimulating device paired with the gateway device.

18. The gateway device of claim 17 , wherein the at least one stimulating device comprises at least one of the one or more sensor devices.

19. A computer program product comprising a non-transitory processor-readable storage medium having stored therein executable program code which, when executed, causes at least one processing device of a gateway device:

to pair one or more sensor devices of a body area network associated with a subject with the gateway device utilizing at least one sensor device interconnect of the gateway device, wherein pairing the one or more sensor devices comprises identifying sensing capabilities of the one or more sensor devices;

to provide, to a study coordinating system over a first network connection established utilizing at least one network interface of the gateway device, a gateway identifier for the gateway device and information characterizing the identified sensing capabilities of the one or more sensor devices paired with the gateway device;

to receive, from the study coordinating system over the first network connection, one or more study parameters for at least one study to be conducted involving the subject, the one or more study parameters identifying data to be collected from at least one of the one or more sensor devices paired with the gateway device;

to collect the identified data from the at least one sensor device paired with the gateway device over a second network connection established utilizing the at least one network interface; and

to provide the collected data to the study coordinating system over the first network connection,

wherein pairing a given one of the one or more sensor devices of the body area network with the gateway device is based at least in part on one or more signals received from the given sensor device characterizing an electric field generated in a vicinity of the at least one sensor device interconnect.

20. A method comprising:

pairing one or more sensor devices of a body area network associated with a subject with a gateway device utilizing at least one sensor device interconnect of the gateway device, wherein pairing the one or more sensor devices comprises identifying sensing capabilities of the one or more sensor devices;

providing, to a study coordinating system over a first network connection established utilizing at least one network interface of the gateway device, a gateway identifier for the gateway device and information characterizing the identified sensing capabilities of the one or more sensor devices paired with the gateway device;

receiving, from the study coordinating system over the first network connection, one or more study parameters for at least one study to be conducted involving the subject, the one or more study parameters identifying data to be collected from at least one of the one or more sensor devices paired with the gateway device;

collecting the identified data from the at least one sensor device paired with the gateway device over a second network connection established utilizing the at least one network interface; and

providing the collected data to the study coordinating system over the first network connection;

wherein pairing a given one of the one or more sensor devices of the body area network with the gateway device is based at least in part on one or more signals received from the given sensor device characterizing an electric field generated in a vicinity of the at least one sensor device interconnect; and

wherein the method is performed by at least one processing device comprising a processor coupled to a memory.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 22, 2022
From: TOTH, LANDY; SCHWARTZ, ROBERT S.; HARIHARAN, DHANANJAI
To: LIFELENS TECHNOLOGIES, INC.
Reel/Frame 061850/0949 →
Continuity (2)
Provisional Application 63029091 · May 22, 2020
Related Publication 20230200649A1 · Jun 29, 2023
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