IP Library › Granted Patent US 10,395,021
Granted Patent B2
US 10,395,021 · App. 15/824,527 · Granted Aug 27, 2019

Security and identification system and method using data collection and messaging over a dynamic mesh network with multiple protocols

Inventors: Richard Brand Caso (Mission Viejo, CA); Adam Selevan (Laguna Beach, CA)
Assignee: Mesh Candy, Inc.
G06F21/35G06F21/606G06K7/10366G06Q10/10G07C9/00031G07C9/00103G07C9/00111H04L63/104H04W4/08H04W12/02H04W12/06H04W12/08G06F2221/2139H04W84/18
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Quick Facts
Patent No.
US 10,395,021
App. No.
15/824,527
Granted
Aug 27, 2019
Kind
B2
Abstract

Data is acquired across a deployed encrypted mesh network, using a digital security controlled, identification badge or tag or sensors, in a dual protocol supporting system. The communications are facilitated to the respective portable device via nodes within the deployed encrypted mesh network, supervised by a hierarchal managing system. A distributed security code is affiliated and triggers an audible or visible signal shared across the network, either as a verification signal or status signal. A counterfeit, non-connected device would not display the correct image, or cue used to validate the identification credentials, etc. and, thereby indicate to immediate personnel that the badge (and the wearer, thereof) is not authorized. Assets can such as cargo containers, pallets, security boxes, etc., with an asset tag are similarly protected. An unauthorized shipment with its counterfeit tag would fail to reflect the appropriate status pursuant to the updated security code to the attending personnel.

Claims (37)

1. A dual-protocol security and sensing mesh network, comprising:

a first mesh network-utilizing dual protocol devices configured to communicate with other mesh-connected devices;

at least one dual protocol device, having a plurality of microcontrollers, wherein a first microcontroller of the plurality of microcontrollers conducts communication utilizing a cellular-based synchronized communication protocol and a second microcontroller of the plurality of microcontrollers conducts bidirectional Bluetooth® communication;

at least one wearable digital identification badge operating within the first mesh network, comprising:

a badge microcontroller managing badge Bluetooth® communication;

a badge security status indicator; and

an asynchronous badge Bluetooth® communication link to the second microcontroller of the dual protocol device hardware;

at least one asset tag operating within the first mesh network, comprising:

a tag microcontroller managing tag Bluetooth® communication;

a tag security status indicator; and

an asynchronous tag Bluetooth® communication link to the second microcontroller of the dual protocol device hardware;

at least one gateway device, operating to aggregate data collected from the first mesh network from the at least one dual protocol device; and

a server coupled to an external network, communicating with the gateway device, the server providing validation and security information for the at least one badge and tag, the information being communicated across the dual protocol mesh network,

wherein a security status indicator for the at least one badge and tag that does not change with a change signal routinely sent to all badges or tags is an indication to personnel that the unchanged badge or tag is not authentic.

2. The mesh network of claim 1 , wherein a changed security status indicator is indicated by a change of at least one of a color, flash rate, beep rate, buzzer tone, background image, asset image, wording, and logo.

3. The mesh network of claim 2 , further comprising a second mesh network formed from a plurality of devices without a security status indicator, in communication with the at least one dual protocol device.

4. The mesh network of claim 3 , wherein the first mesh and second mesh devices utilize differing protocols with the at least one dual protocol device.

5. The mesh network of claim 4 , wherein the first protocol is Bluetooth® and the second protocol is Bluetooth® Low Energy (BLE).

6. The mesh network of claim 3 , wherein at least one of the second mesh devices is a tracker, temperature probe, data probe, gas sensor, pressure sensor, controllable switch, contact switch, camera, smart phone or portable computer.

7. The mesh network of claim 3 , wherein communication with at least one of the second mesh devices is on a Bluetooth® Low Energy (BLE) protocol.

8. The mesh network of claim 3 , further comprising an asynchronous data link for data exchange between the second mesh devices.

9. The mesh network of claim 3 , wherein at least one of the first and second mesh devices' status or an operational parameter is changed from an instruction from the server.

10. The mesh network of claim 9 , wherein the changed parameter is one of connection parameters, transmit/receive antenna gain, device's identification, device's power profile, device's neighbor table filter setting, or device's sensor sampling frequency.

11. The mesh network of claim 1 , wherein the gateway device and dual protocol device is a single hybrid device.

12. A method for security and sensing among mesh connected devices, comprising:

forming a first mesh network from at least one of a plurality of wearable digital identification badges, having a badge microprocessor, a badge security status indicator, and badge RF communication capabilities with other mesh-connected devices, and at least one of a plurality of asset tags, having a tag microprocessor, an tag security status indicator, and tag RF communication capabilities with other mesh-connected devices;

communicating wirelessly with the at least one badges and tags via a dual protocol device, having a plurality of microcontrollers, wherein a first microcontroller of the plurality of microcontrollers conducts communication utilizing a cellular-based synchronized communication protocol and a second microcontroller of the plurality of microcontrollers conducts bidirectional Bluetooth® communication;

forwarding data collected by the dual protocol device from the first mesh-connected badges and tags to an external network via a b gateway device; and

periodically altering a security status signal sent to badge(s) or tag(s) via a server coupled to the external network, wherein the server contains validation and security information for the at least one badges and tags,

wherein a security status indicator for a badge or tag that does not change with the altered signal is an indication to personnel that the unchanged badge or tag is not authentic.

13. The method of claim 12 , wherein at least one of a color, flash rate, beep rate, buzzer tone, background image, asset image, wording, and logo of the security status indicator is changed.

14. The method of claim 13 , further comprising forming a second mesh network from a plurality of devices without a security status indicator, in communication with the at least one dual protocol device.

15. The method of claim 14 , wherein the first mesh and second mesh devices utilize differing protocols with the at least one dual protocol device.

16. The method of claim 14 , wherein communication with at least one of the second mesh devices is on a Bluetooth® Low Energy (BLE) protocol.

17. The method of claim 14 , further comprising changing at least one of the first and second mesh devices' status or operational parameter from an instruction from the server.

18. The method of claim 14 , further comprising generating an adaptive beacon filtering table for at least one of appending, editing and deleting new Beacon Company IDs in or out of the first or second mesh devices.

19. The method of claim 14 , further comprising using localized artificial intelligence by the gateway device or connected dual protocol device to perform at least one of automatic mesh maintenance, preventive actions, and adaptive security.

Continuity (3)
Continuation In Part 15197598 · Jun 29, 2016
Provisional Application 62185990 · Jun 29, 2015
Related Publication 20180089410A1 · Mar 29, 2018
Cited By (1)
US 12,444,289