Claims
- 1. A method of providing forward shared power control comprising:
transmitting a shared power control channel in which is allocated one power control bit per power control period for each of a plurality of users with the bit being a three state bit, the three states being a zero state, a one state, and a no energy state, each of the three states indicating one of an increase, decrease, or no change to transmit power.
- 2. A method according to claim 1 further comprising:
periodically allocating at least one power control bit for each of the plurality of users which indicates a relative gain adjustment, the relative gain adjustment instructing a change in a gain adjustment applied to at least one channel of the user compared to a gain adjustment applied to at least one other channel of the user.
- 3. A method according to claim 2 wherein each of the at least one power control bit which indicates a relative gain adjustment is a three state bit, the three states being a zero state, a one state, and a no energy state, each of the three states indicating one of increase in the gain adjustment applied to the one channel over the gain adjustment applied to the at least one other channel, a decrease in a gain adjustment applied to the one channel over the gain adjustment applied to the at least one other channel, or no change to the relative gain to be applied to the one channel over the at least one other channel.
- 4. A method according to claim 1 wherein further comprising;
transmitting the power control bits using a unique long code mask.
- 5. A method according to claim 4 wherein the shared power control channel comprises a plurality of time multiplexed subchannels, with one subchannel being used to transmit power control bits to a given user.
- 6. A transmitter adapted to perform power control comprising:
signal strength measurement circuit adapted to measure a signal strength indication for a respective signal received from each of a plurality of wireless terminals; power control circuitry adapted to decide based on the signal strength indication whether to instruct each of the wireless terminals to increase its transmit power, decrease its transmit power, or not to change its transmit power and to transmit a shared power control channel in which is allocated one power control bit per power control period for each of a plurality of wireless terminals with the bit being a three state bit, the three states being a zero state, a one state, and a no energy state, each of the three states indicating one of an increase, decrease, or no change to transmit power.
- 7. A transmitter according to claim 6 further adapted to transmit relative gain adjustments on the shared power control channel.
- 8. A wireless terminal comprising:
receive circuitry adapted to extract power control bits from a shared power control channel, the power control bits having three possible states, the three states being a zero state, a one state, and a no energy state, and depending upon the a state of a given extracted power control bit to make one of three power control decisions, the three decisions being to increase, decrease, or make no change to a transmit power.
- 9. A wireless terminal according to claim 8 further adapted to maintain a first and second threshold, wherein a received value of an extracted power control bit below the first threshold is interpreted as a first of the three decisions, a received value of an extracted power control bit between the first threshold and the second threshold is interpreted as a second of the three decisions, and a received value of an extracted power control bit greater than the second threshold is interpreted as the third of the three decisions.
- 10. A wireless terminal according to claim 9 further adapted to make dynamic adjustments to the first threshold and the second threshold as a function of a signal to noise ratio estimated by the wireless terminal.
- 11. A wireless terminal according to claim 8 further adapted to interpret a subset of the extracted power control bits as adjustments to a relative amount by which the transmit power is increased and/or decreased for one transmit channel compared to another transmit channel upon receipt of an appropriate power control bit.
- 12. A system adapted to facilitate an access probe from a wireless terminal in which power control commands are transmitted to the wireless terminal during a preamble portion of the access probe.
- 13. A system according to claim 12 in which the power control commands sent during the preamble portion of the access probe are treated as an implicit acknowledgement by the wireless terminal.
- 14. A system according to claim 12 in which power control commands are transmitted to the wireless terminal after a request portion of the access probe, both to power control the wireless terminal, and to indicate acceptance of requested parameters in the request portion of the access probe.
- 15. A method of accessing a wireless access network comprising:
a first wireless terminal sending an access probe which comprises an initial preamble, a request message and a data content.
- 16. A method according to claim 15 wherein a predetermined long code mask is allocated for the use of transmitting access probes by a plurality of wireless terminals including said first wireless terminal, the predetermined long code mask having a time-dependent field which can take on one of a plurality M of values, thereby allowing up to M independent overlapping access probes each starting at a different time offset, thereby defining M access sub-channels.
- 17. A method according to claim 16 further comprising:
the first wireless terminal selecting an access sub-channel for use in transmitting the access probe as a function of a time at which a user initiated the access probe.
- 18. A method according to claim 17 further comprising:
the first wireless terminal transmitting the preamble on a pilot channel, and transmitting the request message and the data message on an advanced access data channel.
- 19. A method according to claim 18 further comprising:
the first wireless terminal looking for power control information from a base station in respect of the access subchannel while transmitting the preamble, and treating such power control information when detected as an implicit acknowledgement of the preamble.
- 20. A method according to claim 19 wherein the request message and the data message are not sent until the power control information is detected.
- 21. A method according to claim 15 further comprising:
a component of the access network broadcasting information comprising one or more of:
an slot duration indicating a size of the time offset between access subchannels; a number M of offsets available corresponding to a number of access subchannels; a number M of offsets available corresponding to a number of access subchannels; a total access probe duration.
- 22. A method according claim 21 wherein the information broadcast by the component of the access network is broadcast on a supplementary paging channel.
- 23. A method according to claim 15 further comprising:
a component of the access network monitoring for a preamble portion of access probes on the access subchannels, and when a preamble portion is detected on a given access subchannel, transmitting power control commands on a power control subchannel associated with the given access subchannel.
- 24. A method according to claim 19 further comprising:
terminating the access probe before completion in the event no implicit acknowledgement is received.
- 25. A method of performing an access attempt comprising:
a wireless terminal acquiring time synchronization with the base station; the wireless terminal selecting an advanced access subchannel from one of a plurality of time dependent advanced access subchannels based on when the access attempt was initiated; the wireless terminal transmitting an access preamble using the selected advanced access subchannel and at the same time monitoring the energy of the shared power control subchannel associated with the selected advanced access subchannel; if sufficient energy is detected in the shared power control subchannel associated with the selected advanced access subchannel, the wireless terminal transmitting a request message followed by a user data packet, and during this transmission, the wireless terminal continuing to monitor the energy of the shared power control subchannel associated with the selected advanced access subchannel; if the energies detected while transmitting the request message or an initial portion of the user data packet become insufficient, the wireless terminal aborting the transmission; the wireless terminal controlling a transmit power as a function of power control commands received on the shared power control subchannel associated with the selected advanced access subchannel.
- 26. A method according to claim 25 further comprising:
prior to transmitting the preamble, the wireless terminal monitoring an energy of a shared power control subchannel associated with the selected advanced access subchannel, and if there is energy measured in the shared power control subchannel, the wireless terminal determining that this channel is being used by an another wireless terminal, and waiting a random back off time before transmitting the preamble on another advanced access subchannel.
- 27. A method according to claim 25 wherein energies detected while transmitting the request message or user data packet are determined to be insufficient if three consecutive expected power control commands are below a threshold.
- 28. A method according to claim 25 wherein sufficient energy is detected in the shared power control subchannel associated with the selected advanced access subchannel if energies in three consecutive expected power control commands are above a threshold.
- 29. An access network component adapted to acknowledge an access attempt received on an access sub-channel by immediately starting to transmit power control commands on a power control subchannel in one-to-one correspondence with the access sub-channel.
- 30. An access network component according to claim 29 further adapted to receive request parameters as part of the access attempt, and to acknowledge/grant the request parameters by continuing to send power control commands on the power control subchannel, and to deny the request parameters by ceasing to send any energy on the power control subchannel.
- 31. An access network component according to claim 29 further adapted to:
look for access attempts by using a predetermined long code mask, the predetermined long code mask having a time-dependent field which can take on one of a plurality M of values, thereby allowing up to M independent overlapping access probes each starting at a different time offset, thereby defining M access sub-channels.
- 32. An advanced network component according to claim 31 further adapted to broadcast information comprising one or more of:
an slot duration indicating a size of the time offset between access subchannels; a number M of offsets available corresponding to a number of access subchannels; a maximum total access probe duration.
- 33. A wireless terminal adapted to access an access network by sending an access probe which comprises an initial preamble, a request message and a data content.
- 34. A wireless terminal according to claim 33 adapted to use a predetermined long code mask allocated for the use of transmitting access probes, the predetermined long code mask having a time-dependent field which can take on one of a plurality M of values, thereby allowing up to M independent overlapping access probes each starting at a different time offset, thereby defining M access sub-channels.
- 35. A wireless terminal according to claim 34 further adapted to transmit the preamble on a pilot channel, and transmit the request message and the data message on an advanced access data channel.
- 36. A wireless terminal according to claim 34 further adapted to process a received signal, and to look for power control commands in the received signal while transmitting the preamble, and treating such power control information when detected as an implicit acknowledgement of the preamble.
- 37. A wireless terminal according to claim 36 adapted to send the request message and the data message only after power control commands are detected, and to terminate the access probe before completion in the event no implicit acknowledgement is received.
- 38. A method according to claim 23 further comprising:
as soon as a wireless terminal receives the implicit acknowledgement of the preamble and starts to transmit the request message, the wireless terminal transmitting power control commands to the base station on a pilot channel transmitted to control the power of the power control subchannel.
RELATED APPLICATIONS
[0001] This application claims the benefit of provisional application 60/243,013 filed Oct. 24, 2000, provisional application 60/246,889 filed Nov. 8, 2000, 60/250,734 filed Dec. 1, 2000, provisional application 60/266,602 filed Feb. 5, 2001, and provisional application 60/277,951 filed Mar. 23, 2001.
Provisional Applications (5)
|
Number |
Date |
Country |
|
60243013 |
Oct 2000 |
US |
|
60246889 |
Nov 2000 |
US |
|
60250734 |
Dec 2000 |
US |
|
60266602 |
Feb 2001 |
US |
|
60277951 |
Mar 2001 |
US |