IP Library Patent Application 16600853
Patent Application
App. No. 16/600,853

Geolocationing System and Method for Use of Same

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Quick Facts
Patent No.
US None
App. No.
16/600,853
Abstract

A geolocationing system and method for providing awareness in a multi-space environment, such as a hospitality environment or educational environment, are presented. In one embodiment of the geolocationing system, a vertical and horizontal array of gateway devices is provided. Each gateway device includes a gateway device identification providing an accurately-known fixed location within the multi-space environment. Each gateway device includes a wireless transceiver that receives a beacon signal from a proximate wireless-enabled personal locator device. The gateway devices, in turn, send gateway signals to a server, which determines estimated location of the wireless-enabled personal location device with trilateration and received signal strength modeling.

Claims (73)

1 . A system for providing awareness in a multi-space environment, the system comprising:

a vertical and horizontal array of gateway devices, each gateway device being positioned within a space in the multi-space environment, each gateway device having a gateway device identification providing an accurately-known fixed location;

each gateway device of the vertical and horizontal array including:

a housing,

a wireless transceiver associated with the housing,

a processor located within the housing and coupled to the wireless transceiver,

a memory accessible to the processor, the memory including processor-executable instructions that, when executed, cause the processor to:

receive a beacon signal via the wireless transceiver from a proximate wireless-enabled personal locator device, the beacon signal including a personal locator device identification,

measure received signal strength of the beacon signal,

transmit a gateway signal to a server, the gateway signal including the personal locator device identification, the gateway device identification, and received signal strength measurement; and

the server located within the multi-space environment and in communication with the vertical and horizontal array of gateway devices, the server including:

a processor, and

a memory accessible to the processor, the memory including processor-executable instructions that, when executed, cause the processor to:

receive a plurality of gateway signals from a plurality of gateway devices of the vertical and horizontal array,

process the plurality of gateway signals with trilateration and received signal strength modeling, and

determine estimated location of the proximate wireless-enabled personal location device.

2 . The system as recited in claim 1 , wherein the wireless transceiver is configured to communicate with a standard selected from the group consisting of infrared (IR), 802.11, 3G, 4G, Edge, WiFi, ZigBee, near field communications (NFC), Bluetooth and Bluetooth low energy.

3 . The system as recited in claim 1 , wherein the gateway device further comprises a plurality of wireless transceivers.

4 . The system as recited in claim 1 , wherein the gateway device further comprises a set-top box.

5 . The system as recited in claim 1 , wherein the gateway device further comprises a common space gateway device.

6 . The system as recited in claim 1 , wherein the gateway device further comprises a gateway service device.

7 . The system as recited in claim 1 , wherein the proximate wireless-enabled personal locator device further comprises a single button personal locator device.

8 . The system as recited in claim 1 , wherein the proximate wireless-enabled personal locator device further comprises a wireless-enabled interactive programmable device.

9 . The system as recited in claim 8 , wherein the wireless-enabled interactive programmable device further comprises a device selected from the group consisting of smart watches, smart phones, and tablet computers.

10 . The system as recited in claim 1 , wherein the server further comprises a back-office hotel server in communication with the vertical and horizontal array of set-top boxes.

11 . The system as recited in claim 1 , wherein the processor-executable instructions that, when executed, cause the processor to process the plurality of gateway signals with trilateration and signal strength modeling further comprise processor-executable instructions that, when executed cause the processor to:

utilize at least three distances between at least three gateway signals from respective gateway devices to determine a point of intersection therebetween.

12 . The system as recited in claim 1 , wherein the processor-executable instructions that, when executed, cause the processor to process the plurality of gateway signals with trilateration and signal strength modeling further comprise processor-executable instructions that, when executed cause the processor to:

access a signal map stored in the storage, the signal map being a received signal strength model of collected offline signals at the vertical and horizontal array of gateway devices, and

compare a plurality of received signal strength measurements of a respective plurality of gateway signals to the signal map.

13 . The system as recited in claim 1 , wherein the processor-executable instructions that, when executed, cause the processor to process the plurality of gateway signals with trilateration and signal strength modeling further comprise processor-executable instructions that, when executed cause the processor to:

utilize at least three received signal strength measurements between at least three gateway signals from respective gateway devices to determine a point of intersection therebetween.

14 . The system as recited claim 1 , wherein the system further comprises an operational mode selected from the group consisting of alerts-enabled, service request-enabled, tracking-enabled, and non-tracking-enabled.

15 . The system as recited in claim 14 , wherein in the alerts-enabled mode, the server receives a distress signal from the proximate wireless-enabled personal locator device.

16 . The system as recited in claim 14 , wherein in the service-request-enabled mode, the server receives a service request from the proximate wireless-enabled personal locator device.

17 . The system as recited in claim 14 , wherein in the tracking-enabled mode, the server maintains in memory a plurality of estimated locations with timestamps associated with the proximate wireless-enabled personal locator device.

18 . The system as recited in claim 14 , wherein in the non-tracking-enabled mode, the server maintains in memory only the last known locations with timestamps associated with the proximate wireless-enabled personal locator device.

19 . A system for providing awareness in a multi-space environment, the system comprising:

a vertical and horizontal array of gateway devices, each gateway device being positioned within a space in the multi-space environment, each gateway device having a gateway device identification providing an accurately-known fixed location;

each gateway device of the vertical and horizontal array including:

a housing,

a wireless transceiver associated with the housing,

a processor located within the housing and coupled to the wireless transceiver,

a memory accessible to the processor, the memory including processor-executable instructions that, when executed, cause the processor to:

receive a beacon signal via the wireless transceiver from a proximate wireless-enabled personal locator device, the beacon signal including a personal locator device identification,

measure received signal strength of the beacon signal,

transmit a gateway signal to a server, the gateway signal including the personal locator device identification, the gateway device identification, and received signal strength measurement; and

the server located within the multi-space environment and in communication with the vertical and horizontal array of gateway devices, the server including:

a processor,

a signal map stored in the storage, the signal map being a received signal strength model of collected offline signals at the vertical and horizontal array of gateway devices, and

a memory accessible to the processor, the memory including processor-executable instructions that, when executed, cause the processor to:

receive a plurality of gateway signals from a plurality of gateway devices of the vertical and horizontal array,

process the plurality of gateway signals with trilateration by utilizing at least three distances between at least three gateway signals from respective gateway devices to determine a point of intersection therebetween,

process the plurality of gateway signals with signal strength modeling by accessing the signal map stored in the storage, and

compare a plurality of received signal strength measurements of a respective plurality of gateway signals to the signal map, and

determine estimated location of the proximate wireless-enabled personal location device.

20 . A system for providing awareness in a multi-space environment, the system comprising:

a vertical and horizontal array of gateway devices, each gateway device being positioned within a space in the multi-space environment, each gateway device having a gateway device identification providing an accurately-known fixed location;

each gateway device of the vertical and horizontal array including:

a housing,

a wireless transceiver associated with the housing,

a processor located within the housing and coupled to the wireless transceiver,

a memory accessible to the processor, the memory including processor-executable instructions that, when executed, cause the processor to:

receive a beacon signal via the wireless transceiver from a proximate wireless-enabled personal locator device, the beacon signal including a personal locator device identification,

measure received signal strength of the beacon signal,

transmit a gateway signal to a server, the gateway signal including the personal locator device identification, the gateway device identification, and received signal strength measurement; and

the server located within the multi-space environment and in communication with the vertical and horizontal array of gateway devices, the server including:

a processor, and

a memory accessible to the processor, the memory including processor-executable instructions that, when executed, cause the processor to:

receive a plurality of gateway signals from a plurality of gateway devices of the vertical and horizontal array,

process the plurality of gateway signals with trilateration by utilizing at least three distances between at least three gateway signals from respective gateway devices to determine a point of intersection therebetween, and

process the plurality of gateway signals with signal strength modeling by utilizing at least three received signal strength measurements between at least three gateway signals from respective gateway devices to determine a point of intersection therebetween, and

determine estimated location of the proximate wireless-enabled personal location device.

Assignments (2)
SECURITY INTEREST Recorded Jun 2, 2021
From: ENSEO, LLC; CATAPULT TECHNOLOGIES, LLC
To: PROSPECT CAPITAL CORPORATION
Reel/Frame 056462/0174 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2019
From: MILLER, THOMAS R.; FANG, WILLIAM C.; OGLE, VANESSA
To: ENSEO, INC.
Reel/Frame 051080/0331 →