IP Library Granted Patent US 11,901,986
Granted Patent B2
US 11,901,986 · App. 17/602,830 · Granted Feb 13, 2024

Methods and devices for beamforming optimization

Inventor: Bo Göransson (Sollentuna, SE)
Assignee: Telefonaktiebolaget LM Ericsson (publ)
H04B7/0617H04B7/0695H04W24/02H04B7/10
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Quick Facts
Patent No.
US 11,901,986
App. No.
17/602,830
Granted
Feb 13, 2024
Kind
B2
Abstract

A method for providing signals for beam-formed transmission comprises retrieving, from a memory, of first vector-associated data defined by an obtained first beam index, assigned to a first signal, scheduled to be transmitted by beamforming in a first direction. The memory has vector-associated data characterizing at least two sets of beamforming vectors for each polarization and for each one of a plurality of beam directions. The beamforming vectors for each polarization and plurality of directions present different tapering and/or non-tapering. The first vector-associated data characterizes a first selected set of beamforming vectors that are designed to give a beam in the first direction. The first beam index comprises information for defining vector-associated data characterizing a particular one of the at least two sets for the first direction. A beamforming of the first signal is initiated by use of the first vector-associated data.

Claims (64)

1. A method for providing signals for beamformed communication, wherein said method comprises the steps of:

retrieving, from a memory, first vector-associated data defined by an obtained first beam index;

said first beam index being assigned to a first signal;

said first signal being scheduled to be communicated by beamforming in a first direction;

said memory having stored therein vector-associated data characterizing at least two sets of beamforming vectors for each polarization and for each one of a plurality of beam directions;

said at least two sets of beamforming vectors for each polarization and for each one of a plurality of directions presenting different tapering and/or non-tapering;

whereby said first vector-associated data characterizing a first selected set of beamforming vectors, being designed to give a beam in said first direction;

wherein said first beam index comprises information for defining vector-associated data characterizing a particular one of said at least two sets of beamforming vectors for said first direction; and

initiating a beamforming for said first signal by use of said first vector-associated data characterizing said first selected set of beamforming vectors;

characterized in that said beam index has a part beam index defining a partition of said data characterizing said sets of beamforming vectors of said memory, which partition being associated with vector-associated data of only one set of beamforming vectors for each polarization and for each one of a plurality of directions.

2. The method according to claim 1 , characterized by the further step of:

retrieving, from said memory, second vector-associated data defined by an obtained second beam index;

said second beam index being assigned to a second signal;

said second signal being scheduled to be communicated by beamforming in a second direction;

said second direction being different from said first direction;

said second signal being scheduled to be communicated simultaneously as said first signal by a same antenna using a same physical resource;

whereby said second vector-associated data characterizing a second selected set of beamforming vectors, being designed to give a beam in said second direction;

wherein said second beam index comprises information for defining vector-associated data characterizing a particular one of said at least two sets of beamforming vectors for said second direction; and

wherein said step of initiating a beamforming comprises initiating a multi-user beamforming for said first and second signals by use of said first and second vector-associated data characterizing said first and second selected sets of beamforming vectors.

3. The method according to claim 1 , characterized in that said part beam index defines if the beamforming is a single-user beamforming or a multi-user beamforming.

4. The method according to claim 3 , characterized in that a partition defined by a part beam index associated with a single-user beamforming comprises vector-associated data characterizing sets of beamforming vectors without tapering and a partition defined by a part beam index associated with a multi-user beamforming comprises vector-associated data characterizing sets of beamforming vectors with tapering.

5. The method according to claim 1 , characterized in that said vector-associated data characterizing sets of beamforming vectors comprises data defining phase shifts and intensity modulation for each antenna element.

6. The method according to claim 5 , characterized in that said vector-associated data characterizing said at least two sets of beamforming vectors has a common set of phase shifts for each direction and separate data defining different intensity modulations for said at least two sets of beamforming vectors.

7. The method according to claim 1 , characterized by the further step of:

obtaining said first beam index by receiving said first beam index from a network node.

8. The method according to claim 7 , wherein said step of obtaining also comprises obtaining of said second beam index by receiving said second beam index from a network node.

9. The method according to claim 1 , characterized in that said beamformed communication is a beamformed transmission of signals.

10. The method according to claim 1 , characterized in that said beamformed communication is a beamformed reception of signals.

11. The method according to claim 1 , characterized in that said beamformed communication is a downlink communication.

12. The method according to claim 1 , characterized in that said beamformed communication is an uplink communication.

13. The method according to claim 1 , characterized in that said tapering is an amplitude tapering.

14. A method for scheduling signals for beam-formed communication, wherein said method comprises the steps of:

selecting a first set of beamforming vectors among at least two first sets of beamforming vectors, said first set of beamforming vectors corresponding to a highest estimated total throughput for a first signal to be scheduled for beamformed communication in a first direction under intended prevailing radio conditions;

said at least two first sets of beamforming vectors being designed to give a beam in said first direction for a given polarization;

said at least two first sets of beamforming vectors presenting different tapering and/or non-tapering; and

initiating a transmission of a first beam index assigned to said first signal;

wherein said first beam index defines said first selected set of beamforming vectors;

characterized in that said beam index has a part beam index defining if the beamforming is a single-user beamforming or a multi-user beamforming.

15. The method according to claim 14 , characterized by the further steps of:

selecting a second set of beamforming vectors among at least two second sets of beamforming vectors, said second set of beamforming vectors corresponding to a highest estimated total throughput for said first signal and for a second signal to be scheduled for beamformed communication in said first direction and a second direction, respectively, under intended prevailing radio conditions;

said second direction being different from said first direction;

said second signal is scheduled for beamformed communication simultaneously as said first signal by a same antenna using a same physical resource;

said at least two second sets of beamforming vectors being designed to give a beam in said second direction for a given polarization;

said at least two second sets of beamforming vectors presenting different tapering and/or non-tapering; and

initiating a transmission of a second beam index assigned to said second signal;

wherein said second beam index defines said second selected set of beamforming vectors.

16. The method according to claim 14 characterized in that said single-user beamforming is a beamforming using beamforming vectors without tapering and said multi-user beamforming is a beamforming using beamforming vectors with tapering.

17. A radio frequency unit configured to provide signals for beamformed communication,

wherein the radio frequency unit is configured to retrieve, from a memory, first vector-associated data defined by an obtained first beam index;

said first beam index being assigned to a first signal;

said first signal being scheduled to be communicated by beamforming in a first direction;

said memory having stored therein vector-associated data characterizing at least two sets of beamforming vectors for each polarization and for each one of a plurality of beam directions;

said at least two sets of beamforming vectors for each polarization and for each one of a plurality of directions presenting different tapering and/or non-tapering;

whereby said first vector-associated data characterizing a first selected set of beamforming vectors, being designed to give a beam in said first direction;

wherein said first beam index comprises information for defining vector-associated data characterizing a particular one of said at least two sets of beamforming vectors for said first direction; and

wherein the radio frequency unit is further configured to initiate a beamforming for said first signal by use of said vector-associated data characterizing said first selected set of beamforming vectors;

characterized in that said beam index has a part beam index defining a partition of said data characterizing said sets of beamforming vectors of said memory, which partition being associated with vector-associated data of only one set of beamforming vectors for each polarization and for each one of a plurality of directions.

18. A network node configured to schedule signals for beamformed communication,

wherein the network node is configured to select a first set of beamforming vectors among at least two first sets of beamforming vectors, said first set of beamforming vectors corresponding to a highest estimated total throughput for a first signal to be scheduled for beamformed communication in a first direction under intended prevailing radio conditions;

said at least two first sets of beamforming vectors being designed to give a beam in said first direction for a given polarization;

said at least two first sets of beamforming vectors presenting different tapering and/or non-tapering; and

wherein the network node is further configured to initiate a transmission of a first beam index assigned to said first signal;

wherein said first beam index defines said first selected set of beamforming vectors;

characterized in that said beam index has a part beam index defining if the beamforming is a single-user beamforming or a multi-user beamforming.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 11, 2021
From: GÖRANSSON, BO
To: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
Reel/Frame 057751/0076 →
Continuity (1)
Related Publication 20220149907A1 · May 12, 2022