Claims
- 1. A system for monitoring movement in a three-dimensional multi-level structure, comprising:
a plurality of mobile wireless remote terminals, adapted to communicate in a wireless ad-hoc multi-hopping and peer-to-peer communication network; and a plurality of wireless routers, deployable in the three-dimensional area, and adapted to communicate in the wireless ad-hoc multi-hopping and peer-to-peer communication network; each of the mobile wireless remote terminals being adapted to exchange signals with any of the routers within its broadcast range and, based on those signals, being adapted to determine its location in the three-dimensional structure.
- 2. A system as claimed in claim 1, wherein:
said each mobile wireless remote terminal uses time of flight (TOF) data and received signal strength indicator (RSSI) data pertaining to the signals received from said any of the routers within its broadcast range to determine its location in the three-dimensional structure.
- 3. A system as claimed in claim 2, wherein:
the three-dimensional structure is a building, and the routers are deployed on respective floors of the building; and said each mobile wireless remote terminal assigns respective scores to each floor based on the TOF data and RSSI data pertaining to the signals, and determines its location as a floor on which it is present based on the scores.
- 4. A system as claimed in claim 3, wherein:
said each mobile terminal identifies the floor on which it is present as the floor having the lowest score.
- 5. A system as claimed in claim 2, wherein:
said each mobile wireless remote terminal uses the TOF data and the RSSI data pertaining to the signals received from the routers within a certain time proximate to a time at which it determines its location based on the TOF data and the RSSI data, and refrains from using the TOF data and the RSSI data pertaining to the signals received prior to the certain time.
- 6. A system as claimed in claim 1, further comprising:
a control console, adapted to receive information from the mobile terminals pertaining to their respective determined locations, and to generate a display illustrating positions of the mobile terminals in the three-dimensional location.
- 7. A system as claimed in claim 6, wherein:
the three-dimensional location is a building, and the routers are deployed on respective floors of the building; and the control console is adapted to generate the display illustrating the locations of the mobile terminals on the floors of the building.
- 8. A system as claimed in claim 6, wherein:
said each mobile terminals includes a respective motion sensor and said each mobile terminal transmits data received from its respective motion sensor to the control console; and the control console is adapted to generate an alarm condition identifying a particular mobile terminal if the data received from a motion sensor associated with that mobile terminal indicates that that mobile terminal has not moved for a certain period of time.
- 9. A system as claimed in claim 6, wherein:
said each mobile terminal includes a transmitter adapted to transmit at least one of voice and video data to the control console.
- 10. A method for monitoring movement in a three-dimensional multi-level structure, comprising:
deploying a plurality of mobile wireless remote terminals in the three-dimensional structure, each of the mobile wireless remote terminals being adapted to communicate in a wireless ad-hoc peer-to-peer communication network; deploying a plurality of wireless routers in the three-dimensional structure, each of the wireless routers being adapted to communicate in the wireless ad-hoc peer-to-peer communication network; controlling each of the mobile wireless remote terminals to exchange signals with any of the routers within its broadcast range and, based on those signals, to determine its location in the three-dimensional structure.
- 11. A method as claimed in claim 10, wherein:
said each mobile wireless remote terminal uses time of flight (TOF) data and received signal strength indicator (RSSI) data pertaining to the signals received from said any of the routers within its broadcast range to determine its location in the three-dimensional structure.
- 12. A method as claimed in claim 11, wherein:
the three-dimensional structure is a building, and the router deploying step deploys the routers on respective floors of the building; and the controlling step includes controlling said each mobile wireless remote terminal to assign respective scores to each floor based on the TOF data and RSSI data pertaining to the signals, and to determine its location as a floor on which it is present based on the scores.
- 13. A method as claimed in claim 12, wherein:
said each mobile terminal identifies the floor on which it is present as the floor having the lowest score.
- 14. A method as claimed in claim 11, wherein:
the controlling step includes controlling said each mobile wireless remote terminal to use the TOF data and the RSSI data pertaining to the signals received from the routers within a certain time proximate to a time at which it determines its location based on the TOF data and the RSSI data, and to refrain from using the TOF data and the RSSI data pertaining to the signals received prior to the certain time.
- 15. A method as claimed in claim 10, further comprising:
deploying a control console, adapted to receive information from the mobile terminals pertaining to their respective determined locations, and to generate a display illustrating positions of the mobile terminals in the three-dimensional location.
- 16. A method as claimed in claim 15, wherein:
the three-dimensional location is a building, and the routers are deployed on respective floors of the building; and the control console is adapted to generate the display illustrating the locations of the mobile terminals on the floors of the building.
- 17. A method as claimed in claim 15, wherein:
said each mobile terminals includes a respective motion sensor and said each mobile terminal transmits data received from its respective motion sensor to the control console; and the control console is adapted to generate an alarm condition identifying a particular mobile terminal if the data received from a motion sensor associated with that mobile terminal indicates that that mobile terminal has not moved for a certain period of time.
- 18. A method as claimed in claim 15, wherein:
said each mobile terminal includes a transmitter adapted to transmit at least one of voice and video data to the control console.
- 19. A method as claimed in claim 10, wherein:
the router deploying step deploys the routers in the three-dimensional structure before the mobile terminals are deployed in the three-dimensional structure.
- 20. A method as claimed in claim 10, wherein:
the router deploying step deploys the routers in the three-dimensional structure while the mobile terminals are being deployed in the three-dimensional structure.
Parent Case Info
[0001] The present application claims benefit under 35 U.S.C. § 119(e) from a U.S. Provisional Patent Application of John M. Belcea et al. entitled “System and Method for Identifying the Floor Number Where a Firefighter in Need of Help is Located Using Received Signal Strength Indicator and Signal Propagation Time”, Ser. No. 60/546,942, filed on Feb. 24, 2004, from a U.S. Provisional Patent Application of John M. Belcea, entitled “System and Method for Accurately Computing the Position of Wireless Devices Inside High-Rise Buildings”, Ser. No. 60/476,167, filed on Jun. 6, 2003, and from a U.S. Provisional Patent Application of John M. Belcea, entitled “MAC Protocol for Accurately Computing the Position of Wireless Devices Inside Buildings”, Ser. No. 60/476,232, filed on Jun. 6, 2003, the entire contents of each application being incorporated herein by reference.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60546942 |
Feb 2004 |
US |
|
60476167 |
Jun 2003 |
US |
|
60476232 |
Jun 2003 |
US |