Apparatus and method for channel-state-information pilot design for an advanced wireless network
Abstract
A base station and mobile station communicate using a multiple input multiple output (MIMO) communication. The base station includes a two dimensional (2D) antenna array comprising a number N of antenna elements configured in a 2D grid. The 2D antenna array is configured to communicate with at least one subscriber station. The base station also includes a controller configured to transmit N channel-state-information reference-signal (CSI-RS) antenna ports (APs) associated with each of the N antenna elements. The subscriber station includes an antenna array configured to communicate with at least one base station. The subscriber station also includes processing circuitry configured receives physical downlink shared channels (PDSCHs) from a 2D active antenna array at the at least one base station. The 2D active antenna array includes a number N antenna elements. The processing circuitry further configured to estimate a full CSI associated with the N antenna elements.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1. For use in a wireless communication network, a base station comprising:
a two dimensional (2D) antenna array comprising a number N of antenna elements configured in a 2D grid N H ×N v , the 2D antenna array configured to communicate with at least one subscriber station; and
a controller configured to transmit N channel-state-information reference-signal (CSI-RS) antenna ports (APs) associated with each of the N antenna elements, wherein the controller is configured to transmit at least two sets of CSI-RS APs and the at least one subscriber station derives and feeds back horizontal CSI (H-CSI) and vertical CSI (V-CSI) estimated by the at least one subscriber station receiving and processing the at least two sets of CSI-RS APs, and wherein a total number of CSI-RS APs is less than N.
2. The base station as set forth in claim 1 , wherein the H-CSI comprises channel characteristics mainly associated with horizontally placed antenna elements estimated at the at least one subscriber station and includes horizontal channel quality indicator (CQI) (H-CQI), horizontal precoding matrix index (PMI) (H-PMI) and horizontal rank indicator (RI) (H-RI).
3. The base station as set forth in claim 1 , wherein the V-CSI comprises channel characteristics mainly associated with vertically placed antenna elements estimated at the at least one subscriber station and includes vertical CQI (V-CQI), vertical PMI (V-PMI) and vertical RI (V-RI).
4. The base station as set forth in claim 1 , wherein the controller is configured to multiplex a first set of CSI-RS APs and a second set of CSI-RS APs for the at least two sets of CSI-RS APs.
5. The base station as set forth in claim 4 , wherein the multiplexer operation comprises one or more of: a time-domain multiplexing (TDM), code-domain multiplexing (CDM), frequency-domain multiplexing (FDM) and spatial-domain multiplexing (SDM) and wherein:
when TDM multiplexing is applied, the controller is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs at two different time locations comprising at least one of: in two different time slots, in two different subframes, in two different sets of OFDM symbols;
when FDM multiplexing is applied, the controller is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs at two different frequency or subcarrier locations;
when CDM multiplexing is applied, the controller is configured to transmit the CSI-RS APs corresponding to the at least two sets of CSI-RS APs using two different orthogonal codes in the same time-frequency location;
when SDM is applied, the controller is configured to transmit the CSI-RS APs corresponding to the at least two sets of CSI-RS APs in two different spatial beams and wherein the at least two sets of CSI-RS APs are differently scrambled using two different scrambling initializations; and
when FDM/TDM multiplexing is applied, the controller is configured to transmit the CSI-RS APs corresponding to the at least two sets of CSI-RS APs at two different time-frequency location.
6. The base station as set forth in claim 1 , wherein the at least two sets of CSI-RS APs comprise one of:
A-CSI-RS AP and B-CSI-RS AP;
a vertical CSI-RS AP and a horizontal CSI-RS AP;
two horizontal CSI-RS APs; and
a primary CSI-RS AP and a secondary CSI-RS AP.
7. A subscriber station configured to communicate with at least one base station using a multiple input multiple output (MIMO) communication, the subscriber station comprising:
an antenna array configured to communicate with at least one base station; and
processing circuitry configured to receive physical downlink shared channels (PDSCHs) from a two dimensional (2D) active antenna array at the at least one base station, the 2D active antenna array comprising a number N antenna elements; the processing circuitry further configured to estimate a horizontal channel state information (CSI) and vertical CSI associated with the N antenna elements, wherein the processing circuitry is configured to receive and process at least two sets of CSI-RS antenna ports (APs), and derive and feedback horizontal CSI (H-CSI) and vertical CSI (V-CSI) from the at least two sets of CSI-RS APs, wherein a total number of CSI-RS APs is less than N.
8. The subscriber station as set forth in claim 7 , wherein the H-CSI comprises channel characteristics mainly associated with horizontally placed antenna elements estimated at the at least one subscriber station and includes horizontal channel quality indicator (CQI) (H-CQI), horizontal precoding matrix index (PMI) (H-PMI) and horizontal rank indicator (RI) (H-RI).
9. The subscriber station as set forth in claim 7 , wherein the V-CSI comprises channel characteristics mainly associated with vertically placed antenna elements estimated at the at least one subscriber station and includes vertical CQI (V-CQI), vertical PMI (V-PMI) and vertical RI (V-RI).
10. The subscriber station as set forth in claim 7 , wherein a first set of CSI-RS and a second set of CSI-RS APs for the at least two sets of CSI-RS APs are multiplexed.
11. The subscriber station as set forth in claim 10 , wherein the multiplexer operation comprises one or more of: a time-domain multiplexing (TDM), code-domain multiplexing (CDM), frequency-domain multiplexing (FDM) and spatial-domain multiplexing (SDM) and wherein:
when TDM multiplexing is applied, the controller processing circuitry is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs at two different time locations comprising at least one of: in two different time slots, in two different subframes, in two different sets of OFDM symbols;
when FDM multiplexing is applied, the controller processing circuitry is configured to transmit the CSI-RS APs corresponding to the at least two sets of CSI-RS APs at two different frequency or subcarrier locations;
when CDM multiplexing is applied, the controller processing circuitry is configured to transmit the CSI-RS APs corresponding to the at least two sets of CSI-RS APs using two different orthogonal codes in the same time-frequency location;
when SDM is applied, the controller processing circuitry is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs in two different spatial beams and wherein the at least two sets of CSI-RS APs are differently scrambled using two different scrambling initializations; and
when FDM/TDM multiplexing is applied, the controller processing circuitry is configured to transmit the CSI-RS APs corresponding to the at least two sets of CSI-RS APs at two different time-frequency location.
12. The subscriber station as set forth in claim 7 , wherein the at least two sets of CSI-RS APs comprise one of:
A-CSI-RS AP and B-CSI-RS AP;
a vertical CSI-RS AP and a horizontal CSI-RS AP;
two horizontal CSI-RS APs; and
a primary CSI-RS AP and a secondary CSI-RS AP.
13. For use in a wireless communication network, a method comprising:
transmitting, from a two dimensional (2D) antenna array, N channel-state-information reference-signal (CSI-RS) antenna ports (APs), the 2D antenna array comprising a number N of antenna elements configured in a 2D grid N H ×N v , the CSI-RS APs associated with each of the N antenna elements, wherein transmitting comprises transmitting at least two sets of CSI-RS APs; and
receiving a feedback signal from the at least one subscriber station, the feedback signal comprising horizontal CSI (H-CSI) and vertical CSI (V-CSI) estimated by the at least one subscriber station receiving and processing the at least two sets of CSI-RS APs, and wherein a total number of CSI-RS APs is less than N.
14. The method as set forth in claim 13 , wherein the H-CSI comprises channel characteristics mainly associated with horizontally placed antenna elements estimated at the at least one subscriber station and includes horizontal CQI (H-CQI), horizontal PMI (H-PMI) and horizontal RI (H-RI).
15. The method as set forth in claim 13 , wherein the V-CSI comprises channel characteristics mainly associated with vertically placed antenna elements estimated at the at least one subscriber station and includes vertical CQI (V-CQI), vertical PMI (V-PMI) and vertical RI (V-RI).
16. The method as set forth in claim 13 , wherein transmitting comprises multiplexing a first set of CSI-RS and a second set of CSI-RS for the at least two sets of CSI-RS.
17. The method as set forth in claim 16 , wherein multiplexing comprises one or more of: a time-domain multiplexing (TDM), code-domain multiplexing (CDM), frequency-domain multiplexing (FDM) and spatial-domain multiplexing (SDM) and wherein:
when TDM multiplexing is applied, the controller is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs at two different time locations comprising at least one of: in two different time slots, in two different subframes, in two different sets of OFDM symbols;
when FDM multiplexing is applied, the controller is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs at two different frequency or subcarrier locations;
when CDM multiplexing is applied, the controller is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs using two different orthogonal codes in the same time-frequency location;
when SDM is applied, the controller is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs in two different spatial beams and wherein the at least two sets of CSI-RS APs are differently scrambled using two different scrambling initializations; and
when FDM/TDM multiplexing is applied, the controller is configured to transmit the CSI-RS corresponding to the at least two sets of CSI-RS APs at two different time-frequency location.
18. The method as set forth in claim 13 , wherein the at least two sets of CSI-RS APs comprise one of:
A-CSI-RS and B-CSI-RS;
a vertical CSI-RS AP and a horizontal CSI-RS AP;
two horizontal CSI-RS APs; and
a primary CSI-RS AP and a secondary CSI-RS AP.
19. An apparatus in a base station for transmitting channel state information reference signal (CSI-RS), the apparatus comprising:
a controller configured to:
identify a same number of antenna ports associated with aggregation of each of at least two CSI-RS configurations, the at least two CSI-RS configurations including a first CSI-RS configuration and a second CSI-RS configuration; and
a transceiver configured to:
transmit information on the same number of antenna ports,
transmit information on the at least two CSI-RS configurations, and
transmit a first CSI-RS corresponding to the same number of antenna ports and the first CSI-RS configuration and a second CSI-RS corresponding to the same number of antenna ports and the second CSI-RS configuration.
20. The apparatus of claim 19, wherein one subframe configuration is set for the at least two CSI-RS configurations, the at least two CSI-RS configurations are aggregated in a subframe.
21. The apparatus of claim 19, wherein a resource configuration for each of the at least two CSI-RS configurations is set separately.
22. The apparatus of claim 19, wherein the same number of antenna ports is 8.
23. The base station of claim 1, wherein the antenna array is further configured to:
transmit information indicating a codebook for the at least two CSI-RS configurations.
24. An apparatus in a mobile station for receiving channel state information reference signal (CSI-RS), the apparatus comprising:
a transceiver configured to:
receive information on a same number of antenna ports, and
receive information on at least two CSI-RS configurations, wherein the same number of antenna ports is associated with aggregation of the at least two CSI-RS configurations and the at least two CSI-RS configurations include a first CSI-RS configuration and a second CSI-RS configuration; and
a controller configured to identify the same number of antenna ports associated with the aggregation of the at least two CSI-RS configurations, wherein the transceiver is configured to receive a first CSI-RS corresponding to the same number of antenna ports and the first CSI-RS configuration and a second CSI-RS corresponding to the same number of antenna ports and the second CSI-RS configurations.
25. The apparatus of claim 24, wherein one subframe configuration is set for the at least two CSI-RS configurations, the at least two CSI-RS configurations are aggregated in a subframe.
26. The apparatus of claim 24, wherein a resource configuration for each of the at least two CSI-RS configurations is set separately.
27. The apparatus of claim 24, wherein the same number of antenna ports is 8.
28. The apparatus of claim 24, wherein the transceiver is further configured to:
receive information indicating a codebook for the at least two CSI-RS configurations.
29. A method for transmitting channel state information reference signal (CSI-RS) by a base station, the method comprising:
identifying a same number of antenna ports associated with aggregation of each of at least two CSI-RS configurations, the at least two CSI-RS configurations including a first CSI-RS configuration and a second CSI-RS configuration; transmitting information on the same number of antenna ports; transmitting information on the at least two CSI-RS configurations; and transmitting a first CSI-RS corresponding to the same number of antenna ports and the first CSI-RS configuration and a second CSI-RS corresponding to the same number of antenna ports and the second CSI-RS configurations.
30. The method of claim 29, wherein one subframe configuration is set for the at least two CSI-RS configurations, the at least two CSI-RS configurations are aggregated in a subframe.
31. The method of claim 29, wherein a resource configuration for each of the at least two CSI-RS configurations is set separately.
32. The method of claim 29, wherein the same number of antenna ports is 8.
33. The method of claim 29, further comprising:
transmitting information indicating a codebook for the at least two CSI-RS configurations.
34. A method for receiving channel state information reference signal (CSI-RS), comprising:
receiving information on a same number of antenna ports; receiving information on at least two CSI-RS configurations, wherein the same number of antenna ports is associated with aggregation of the at least two CSI-RS configurations and the at least two CSI-RS configurations include a first CSI-RS configuration and a second CSI-RS configuration; identifying the same number of antenna ports associated with the aggregation of the at least two CSI-RS configurations; and receiving a first CSI-RS corresponding to the same number of antenna ports and the first CSI-RS configuration and a second CSI-RS corresponding to the same number of antenna ports and the second CSI-RS configurations.
35. The method of claim 34, wherein one subframe configuration is set for the at least two CSI-RS configurations, and the at least two CSI-RS configurations are aggregated in a subframe.
36. The method of claim 34, wherein a resource configuration for each of the at least two CSI-RS configurations is set separately.
37. The method of claim 34, wherein the same number of antenna ports is 8.
38. The method of claim 34, further comprising:
receiving information indicating a codebook for the at least two CSI-RS configurations.
39. An apparatus in a base station for transmitting channel state information reference signal (CSI-RS), the apparatus comprising:
a controller configured to:
identify a total number of antenna ports associated with aggregation of at least two CSI-RS configurations; and
a transceiver configured to:
transmit information on the at least two CSI-RS configurations, and
transmit CSI-RSs corresponding to the total number of antenna ports and the at least two CSI-RS configurations,
wherein the antenna ports associated with aggregation of at least two CSI-RS configurations comprise, for a two dimensional (2D) antenna array, channel state information reference signal (CSI-RS) antenna ports (APs) corresponding to two rows of antenna elements including a first row of N antenna elements and a second row of N antenna elements for a total of 2N antenna elements, and wherein the CSI-RS APs are each mapped 1:1 with one of the 2N antenna elements.
40. An apparatus in a mobile station for receiving channel state information reference signal (CSI-RS), the apparatus comprising:
a transceiver configured to:
receive information on at least two CSI-RS configurations, and
receive CSI-RSs corresponding to a total number of antenna ports and the at least two CSI-RS configurations; and
a controller configured to:
identify the total number of antenna ports associated with aggregation of the at least two CSI-RS configurations,
wherein the antenna ports associated with aggregation of at least two CSI-RS configurations comprise, for a two dimensional (2D) antenna array, channel state information reference signal (CSI-RS) antenna ports (APs) corresponding to two rows of antenna elements including a first row of N antenna elements and a second row of N antenna elements for a total of 2N antenna elements, and wherein the CSI-RS APs are each mapped 1:1 with one of the 2N antenna elements.
41. A method for transmitting channel state information reference signal (CSI-RS) by a base station, the method comprising:
identifying a total number of antenna ports associated with aggregation of at least two CSI-RS configurations; and transmitting information on the at least two CSI-RS configurations; transmitting CSI-RSs corresponding to the total number of antenna ports and the at least two CSI-RS configurations, wherein the antenna ports associated with aggregation of at least two CSI-RS configurations comprise, for a two dimensional (2D) antenna array, channel state information reference signal (CSI-RS) antenna ports (APs) corresponding to two rows of antenna elements including a first row of N antenna elements and a second row of N antenna elements for a total of 2N antenna elements, and wherein the CSI-RS APs are each mapped 1:1 with one of the 2N antenna elements.
42. A method for receiving channel state information reference signal (CSI-RS), comprising:
receiving information on at least two CSI-RS configurations; identifying a total number of antenna ports associated with aggregation of the at least two CSI-RS configurations; receiving CSI-RSs corresponding to the total number of antenna ports and the at least two CSI-RS configurations, wherein the antenna ports associated with aggregation of at least two CSI-RS configurations comprise, for a two dimensional (2D) antenna array, channel state information reference signal (CSI-RS) antenna ports (APs) corresponding to two rows of antenna elements including a first row of N antenna elements and a second row of N antenna elements for a total of 2N antenna elements, and wherein the CSI-RS APs are each mapped 1:1 with one of the 2N antenna elements.Join the waitlist — get patent alerts
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