Claims
- 1. A method for reducing interference within a multiple-input-multiple-output (MIMO) system having a plurality of basestations including a first basestation and a second basestation, comprising:
receiving a plurality of signals associated with the first basestation having its own plurality of antenna elements, the first basestation being associated with its own plurality of mobile stations each having their own plurality of antenna elements, each signal from the plurality of signals associated with the first basestation being uniquely associated with a mobile station from a plurality of mobile stations associated with the first basestation; receiving a plurality of signals associated with the second basestation having its own plurality of antenna elements, the second basestation being associated with its own plurality of mobile stations each having their own plurality of antenna elements, each signal from the plurality of signals associated with the second basestation being uniquely associated with a mobile station from a plurality of mobile stations associated with the second basestation; and jointly detecting the plurality of signals associated with the first basestation in conjunction with the plurality of signals associated with the second basestation to produce a plurality of detected signals.
- 2. The method of claim 1, further comprising:
calculating an interference power associated with the plurality of signals associated with the second basestation; decoding a detected signal from the jointly detected signals associated with the first basestation and the second basestation based on the interference power associated with the plurality of signals associated with the second basestation when the interference power associated with the plurality of signals associated the second basestation exceeds an interference-power threshold; and decoding the detected signal from the plurality of signals associated with the first basestation independent of the interference power associated with the plurality of signals associated with the second basestation when the interference power associated with the plurality of signals from the second basestation is below the interference-power threshold.
- 3. The method of claim 1, wherein:
the first basestation is associated with its own cell, the plurality of mobile stations associated with the first basestation are located within the cell associated with the first basestation; and the second basestation is associated with its own cell, the plurality of mobile stations associated with the second basestation are located within the cell associated with the second basestation.
- 4. The method of claim 1, wherein:
a number of antenna elements from a plurality of antenna elements for the first basestation corresponds to a number of antenna elements from a plurality of antenna elements for each mobile station from the plurality of mobile stations associated with the first basestation; and a number of antenna elements from a plurality of antenna elements for the second basestation corresponds to a number of antenna elements from a plurality of antenna elements for each mobile station from the plurality of mobile stations associated with the second basestation.
- 5. The method of claim 1, wherein:
the plurality of signals associated with the first basestation and the plurality of signals associated with the second basestation are received at a mobile switching center, the mobile switching center being located separately from the first basestation and the second basestation.
- 6. The method of claim 1, wherein:
the plurality of signals associated with the first basestation is received at the first basestation; and the plurality of signals associated with the second basestation is forwarded from the second basestation and received at the first basestation.
- 7. The method of claim 1, wherein:
- 8. An apparatus for use within a Multiple-Input—Multiple-Output system including a first basestation having its own plurality of antenna elements, a second basestation having its own plurality of antenna elements, a plurality of mobile stations associated with each basestation, each mobile station having its own plurality of antenna elements, comprising:
an input port configured to receive a plurality of signals associated with a first basestation and a plurality of signals associated with a second basestation; and a joint detector coupled to the input port configured to produce a plurality of detected signals based on a plurality of signals associated with the first basestation in conjunction with a plurality of signals associated with the second basestation.
- 9. The apparatus of claim 8, further comprising:
a processor coupled to the input port, the processor configured to calculate an interference power and a channel state associated with the plurality of signals from the second basestation; a joint decoder coupled to the joint detector and the processor, the joint decoder configured to jointly decode the plurality of signals received at the first basestation based on the plurality of signals from the second basestation when an interference power associated with the plurality of signals for the second basestation exceeds an interference-power threshold; and the joint decoder configured to decode the plurality of signals received at the first basestation independent of the plurality of signals from the second basestation when the interference power associated with the plurality of signals for the second basestation is below the interference-power threshold.
- 10. The apparatus of claim 8, wherein:
the first basestation is associated with its own cell, the plurality of mobile stations associated with the first basestation are located within the cell associated with the first basestation; and the second basestation is associated with its own cell, the plurality of mobile stations associated with the second basestation are located within the cell associated with the second basestation.
- 11. The apparatus of claim 8, wherein:
the joint detector and the input port are disposed within a mobile switching center, the mobile switching center being located separately from the first basestation and the second basestation.
- 12. The apparatus of claim 8, wherein:
the plurality of signals associated with the first basestation is received at the first basestation; and the plurality of signals associated with the second basestation is forwarded from the second basestation and received at the first basestation.
- 13. A method for communicating with a first basestation in a Multiple-Input—Multiple-Output system, comprising:
receiving, at a plurality of antenna elements, a signal from a first basestation having its own plurality of antenna elements, the signal from the first basestation having its own data, the signal being modified based on a channel state for a second basestation; receiving, at the plurality of antenna elements, a signal from a second basestation having its own plurality of antenna elements; and decoding the signal for the first basestation based on the signal from the second basestation to produce a decoded signal.
- 14. The method of claim 13, further comprising:
receiving, at the plurality of antenna elements, an interference power associated with the signal from the second basestation; decoding the signal from the first basestation based on the signal from the second basestation when the interference power associated with the signal from the second basestation is greater than an interference power threshold; and decoding the signal from the first basestation independent of the plurality of signals from the second basestation when the interference power associated with the signal from the second basestation is less than the interference power threshold.
- 15. The method of claim 13, wherein:
the signal from the first basestation is modified by preceding the signal based on the channel state associated with the second basestation.
- 16. The method of claim 13, wherein:
the signal from the first basestation is modified by:
selecting a weight value for each antenna element from the plurality of antenna elements for the first basestation; and adjusting a data signal associated with each antenna element from the plurality of antenna elements for the first basestation based on the weight value uniquely associated with each antenna element from the plurality of antenna elements for the first basestation.
- 17. The method of claim 13, wherein:
a first mobile station is included within a plurality of mobile stations associated with the first basestation each mobile station having its own plurality of antenna elements, the receiving and detecting steps being performed at the first mobile station; the first basestation is associated with its own cell, the plurality of mobile stations associated with the first basestation is located within the cell associated with the first basestation; and the second basestation is associated with its own cell, a plurality of mobile stations associated with the second basestation are located within the cell associated with the second basestation.
- 18. The method of claim 17, wherein:
a number of antenna element from the plurality of antenna elements for the first basestation corresponds to a number of antenna elements from the plurality of antenna elements for the plurality of mobile stations associated with the first basestation; and a number of antenna element from the plurality of antenna elements for the second basestation corresponds to a number of antenna elements from the plurality of antenna elements for the plurality of mobile stations associated with the second basestation.
- 19. An apparatus for communicating with a first basestation having its own plurality of antenna elements, comprising:
a plurality of antenna elements configured to receive a signal from the first basestation and a signal from a second basestation having its own plurality of antenna elements, the signal from the first basestation previously modified by the first basestation based on a channel state calculated by the apparatus; and a decoder configured to decode the signal from the first basestation to produce data sent by the first basestation.
- 20. The apparatus of claim 19, wherein:
a first mobile station is included within a plurality of mobile stations associated with the first basestation, the first mobile station having its own plurality of antenna elements and a decoder; the first basestation is associated with its own cell, the plurality of mobile stations associated with the first basestation is located within the cell associated with the first basestation; and the second basestation is associated with its own cell, a plurality of mobile stations associated with the second basestation are located within the cell associated with the second basestation.
- 21. The apparatus of claim 19, wherein:
a number of antenna elements from the plurality of antenna elements for the first basestation corresponds to a number of antenna elements from the plurality of antenna elements for the plurality of mobile stations associated with the first basestation; and a number of antenna elements from a plurality of antenna elements for the second basestation corresponds to a number of antenna elements from the plurality of antenna elements for the plurality of mobile stations associated with the second basestation.
- 22. An apparatus for communicating with a first mobile station having its own plurality of antenna elements, comprising:
an encoder, the encoder configured to modify a signal sent to the first mobile station based on a channel state of the first mobile station to produce a modified signal; and a plurality of antenna elements coupled to the encoder, the plurality of antenna elements configured to send the modified signal to a first mobile station.
- 23. The apparatus of claim 22, wherein:
the encoder further includes:
a weight-value selector, the weight-value selector configured to calculate a weight value for each antenna element from the plurality of antenna elements; and a plurality of signal adjusters coupled to the weight-value selector, each signal adjuster from the plurality of signal adjusters being uniquely associated with a antenna element from the plurality of antenna elements, each signal adjuster from the plurality of signal adjusters modifying a component of the signal for the first mobile station based on the weight value uniquely associated with each antenna element from the plurality of antenna elements.
- 24. The apparatus of claim 22, wherein:
a first mobile station is included within a plurality of mobile stations associated with the first basestation; the first basestation is associated with its own cell, a plurality of mobile stations associated with the first basestation is located within the cell associated with the first basestation; and a second basestation is associated with its own cell, a plurality of mobile stations associated with the second basestation are located within the cell associated with the second basestation.
- 25. The apparatus of claim 22, wherein:
a number of antenna elements from the plurality of antenna elements for a first basestation corresponds to a number of antenna elements from the plurality of antenna elements for the first mobile station; and a number of antenna elements from a plurality of antenna elements for a second basestation corresponds to the number of antenna elements from the plurality of antenna elements for the first mobile station.
- 26. A method for reducing interference among a plurality of basestations including a first basestation, a second basestation, and a plurality of mobile stations associated with each basestation, comprising:
receiving a set of training signals sent to the first basestation from the second basestation; receiving a set of training signals sent to the first basestation from each mobile station in the plurality of mobile stations; calculating an interference power and a channel state associated with each training signal from the set of received training signals; sending the interference power and the channel state associated with the second basestation to the second basestation; and sending the interference power and the channel state associated with each mobile station in the plurality of mobile stations to the associated mobile station.
- 27. The method of claim 26, further comprising:
receiving a synchronization signal at the second basestation from the first basestation, the second basestation having its own plurality of antenna elements, the first basestation having its own plurality of antenna elements; and receiving a synchronization signal at each mobile station from the first basestation, each mobile station having its own plurality of antenna elements, the first basestation having its own plurality of antenna elements.
- 28. The method of claim 26, wherein:
the set of training signals from the second basestation being sent to the first basestation on a time period different from a time period when the training signals associated with each mobile station are sent to the first basestation.
- 29. The method of claim 26, wherein:
the set of training signals from the second basestation being sent to the first basestation on a set of frequencies different from a set of frequencies on which the set of training signals associated with the plurality of mobile stations are sent to the first basestation.
- 30. The method of claim 26, wherein:
the set of training signals from the second basestation sent to the first basestation have a sequence that is orthogonal to the set of training signals sent from each mobile station of the plurality of mobile stations.
- 31. The method of claim 26, wherein:
the first basestation is associated with its own cell, the plurality of mobile stations associated with the first basestation are located within the cell associated with the first basestation; and the second basestation is associated with its own cell, the plurality of mobile stations associated with the second basestation are located within the cell associated with the second basestation.
- 32. The method of claim 26, wherein:
a number of antenna element from a plurality of antenna elements for the first basestation corresponds to a number of antenna elements from a plurality of antenna elements for the plurality of mobile stations associated with the first basestation; and a number of antenna element from a plurality of antenna elements for the second basestation corresponds to a number of antenna elements from a plurality of antenna elements for a plurality of mobile stations associated with the second basestation.
- 33. A method for reducing interference among a plurality of basestations including a first basestation, a second basestation, and a plurality of mobile stations associated with each basestation, comprising:
receiving a set of training signals sent to a mobile switching center from the first basestation; receiving a set of training signals sent to the mobile switching center from the second basestation; receiving a set of training signals sent to the mobile switching center from each mobile station in the plurality of mobile stations; calculating an interference power and a channel state associated with each set of received training signals; sending the interference power and the channel state associated with the first basestation to the first basestation; sending the interference power and the channel state associated with the second basestation to the second basestation; and sending the interference power and the channel state associated with each mobile station in the plurality of mobile stations to the mobile station.
- 34. The method of claim 33, further comprising:
receiving a synchronization signal at the first basestation from the mobile switching center, the first basestation having its own plurality of antenna elements; receiving a synchronization signal at the second basestation from the mobile switching center, the second basestation having its own plurality of antenna elements; and receiving a synchronization signal at each mobile station from the mobile switching center, each mobile station having its own plurality of antenna elements.
- 35. The method of claim 33, wherein:
the training signals from the first basestation, the second basestation, and the plurality of mobile stations being sent on different time periods.
- 36. The method of claim 33, wherein:
the set of training signals from the first basestation, the second basestation, and the plurality of mobile stations being sent on different frequencies.
- 37. The method of claim 33, wherein:
the set of training signals from the first basestation, the set of training signals from the second basestation, and the set of training signals from the plurality of mobile stations being orthogonal to each other.
- 38. The method of claim 33, wherein:
the first basestation is associated with its own cell, the plurality of mobile stations associated with the first basestation are located within the cell associated with the first basestation; and the second basestation is associated with its own cell, the plurality of mobile stations associated with the second basestation are located within the cell associated with the second basestation.
- 39. The method of claim 33, wherein:
a number of antenna element from a plurality of antenna elements for the first basestation corresponds to a number of antenna elements from a plurality of antenna elements for the plurality of mobile stations associated with the first basestation; and a number of antenna element from a plurality of antenna elements for the second basestation corresponds to a number of antenna elements from a plurality of antenna elements for the plurality of mobile stations associated with the second basestation.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to a co-pending U.S. Patent Provisional Application No. 60/325,730, entitled “Use of Information Exchange Between Base Stations in Multiple-Input-Multiple-Output (MIMO) Systems,” filed on Sep. 28, 2001, the entirety of which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60325730 |
Sep 2001 |
US |