Claims
- 1. In a wireless communications network, a method in a base station to communicate with a remote unit that is in a sleep mode, the remote unit having a unique identification value, comprising the steps of:
establishing a periodic reference instant at the base station and at the remote station; determining a delay interval following said periodic reference instant at the base station, said delay interval being derived from said unique identification value of said remote unit; and transmitting a message from the base station to the remote unit at a second instant following said delay interval, said remote unit having changed from said sleep mode to a standby mode after said delay interval.
- 2. The method of claim 1, wherein said base station is part of a wireless discrete multitone spread spectrum communications system.
- 3. The method of claim 1, wherein said periodic reference instant is established by a beginning subframe count instant that is incremented by a packet count value at the base station and at the remote unit.
- 4. The method of claim 3, wherein said delay interval is determined by a value N of a quantity of M least significant bits of said unique identification value of said remote unit, the delay interval being an interval required for the occurrence of a plurality of N of said beginning subframe count instants.
- 5. The method of claim 4, wherein said remote unit changes from said sleep mode to a standby mode after said delay interval.
- 6. In a wireless communications network, a method in a base station to communicate with a remote unit that is in a sleep mode, the remote unit having a unique identification value, comprising the steps of:
establishing a periodic reference instant at the base station and at the remote station; determining a delay interval following said periodic reference instant at the base station, said delay interval being derived from said unique identification value of said remote unit; attempting to initiate a communication from said base station to said remote unit; concluding at the base station that the remote unit is in a sleep mode if said attempting step fails to initiate communications with the remote unit; waiting for said delay interval following said periodic reference instant at the base station; and transmitting a message from the base station to the remote unit at a second instant following said delay interval, said remote unit having changed from said sleep mode to a standby mode after said delay interval.
- 7. The method of claim 6, wherein said base station is part of a wireless discrete multitone spread spectrum communications system.
- 8. The method of claim 6, wherein said periodic reference instant is established by a beginning subframe count instant that is incremented by a packet count value at the base station and at the remote unit.
- 9. The method of claim 8, wherein said delay interval is determined by a value N of a quantity of M least significant bits of said unique identification value of said remote unit, the delay interval being an interval required for the occurrence of a plurality of N of said beginning subframe count instants.
- 10. The method of claim 9, wherein said remote unit changes from said sleep mode to a standby mode after said delay interval.
- 11. A highly bandwidth-efficient communications method in a base station to communicate with a remote unit that is in a sleep mode, the remote unit having a unique identification value, comprising the steps of:
establishing a periodic reference instant at the base station and at the remote station; determining a delay interval following said periodic reference instant at the base station, said delay interval being derived from said unique identification value of said remote unit; receiving at a base station a spread signal comprising an incoming data traffic signal spread over a plurality of discrete traffic frequencies; adaptively despreading the signals received at the base station by using despreading weights; attempting to initiate a communication from said base station to said remote unit; concluding at the base station that the remote unit is in a sleep mode if said attempting step fails to initiate communications with the remote unit; waiting for said delay interval following said periodic reference instant at the base station; and transmitting at the base station to the remote unit a spread signal comprising an outgoing data traffic signal spread over a plurality of discrete traffic frequencies.
- 12. The method of claim 11, wherein said base station is part of a wireless discrete multitone spread spectrum communications system.
- 13. The method of claim 11, wherein said periodic reference instant is established by a beginning subframe count instant that is incremented by a packet count value at the base station and at the remote unit.
- 14. The method of claim 13, wherein said delay interval is determined by a value N of a quantity of M least significant bits of said unique identification value of said remote unit, the delay interval being an interval required for the occurrence of a plurality of N of said beginning subframe count instants.
- 15. The method of claim 14, wherein said remote unit changes from said sleep mode to a standby mode after said delay interval.
- 16. A remote unit for a personal wireless area network comprising:
a receiver; an AC power supply coupled to the receiver and supplying power to the receiver; a battery-backup power supply coupled to the receiver, the battery-backup power supply becoming operative to supply power to the receiver when the AC power supply fails; and a controller coupled to the receiver, the AC power supply and the battery-backup power supply, the controller detecting when the AC power supply fails and in response controls the receiver and the battery-backup power supply by invoking a sleep mode of operation, the sleep mode operation being periodically interrupted by the controller controlling the receiver and the battery-backup power supply to enter a standby mode of operation in which the receiver scans for a CONNECT message indicating an incoming call, the controller controlling the sleep mode and the standby mode of operations based on a frame count that is generated from an identification number of the remote unit.
- 17. The remote unit according to claim 16, wherein the receiver scans for a connect message for a predetermined number of subframes of a TDD timing structure.
- 18. The remote unit according to claim 17, wherein the predetermined number of subframes equals 3.
- 19. The remote unit according to claim 17, wherein when the remote unit enters the standby mode, the remote unit reacquires synchronization to the TDD timing structure.
- 20. The remote unit according to claim 19, wherein the remote unit reacquires synchronization to the TDD timing structure in about 34 subframes.
- 21. The remote unit according to claim 19, wherein the remote unit scans for a CONNECT message at a subframe that is related to an identification number of the remote unit.
- 22. A method for reducing power consumption of a remote unit in a PWAN system, comprising the steps of:
powering a remote unit using a battery backup power supply when an AC power supply fails at the remote unit; entering a sleep mode of operation at the remote unit, the sleep mode having a reduced power consumption for the battery backup power supply; entering a standby mode of operation at the remote unit a predetermined period of time after entering the sleep mode of operation scanning for a CONNECT message indicating an incoming call for the remote unit; and reentering the sleep mode of operation when no CONNECT message is received.
- 23. The method according to claim 22, further comprising the step of synchronizing the remote unit to a TDD timing structure before the step of entering the standby mode of operation.
- 24. The method according to claim 23, wherein the predetermined period of time is a predetermined number of subframes after a boundary subframe of the TDD timing structure.
- 25. The method according to claim 24, wherein the predetermined number of subframes is based on an identification number of the remote unit.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This patent application is a Continuation-In-Part of the copending U.S. patent application by David Gibbons, et al. entitled “REMOTE WIRELESS UNIT HAVING REDUCED POWER OPERATING MODE”, Ser. No. ______, filed Feb. 6, 1997, and assigned to AT&T Wireless Services Inc. (Docket: Gibbons 1-1, 2445-4340US1)
[0002] The invention disclosed herein is related to the co-pending U.S. patent application by Siavash Alamouti, Doug Stolarz, and Joel Becker, entitled “VERTICAL ADAPTIVE ANTENNA ARRAY FOR A DISCRETE MULTITONE SPREAD SPECTRUM COMMUNICATIONS SYSTEM”, Ser. No. ______, filed on the same day as the instant patent application, assigned to AT&T Wireless Services Inc., and incorporated herein by reference.
[0003] The invention disclosed herein is related to the copending U.S. patent application by Alamouti, et al., entitled “Method for Frequency Division Duplex Communications”, Ser. No. ______, filed Feb. 6, 1997, assigned to AT&T Wireless Services, and incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
08796586 |
Feb 1997 |
US |
Child |
09902731 |
Jul 2001 |
US |