IP Library › Granted Patent US 10,516,462
Granted Patent B2
US 10,516,462 · App. 16/188,791 · Granted Dec 24, 2019

Precoding and channel state information acquisition for multi-stream transmissions in massive MIMO systems

Inventors: Lu Wu (Shenzhen, CN); Wei Han (Shanghai, CN); Peng Shang (Shanghai, CN); Jin Liu (Shenzhen, CN); Xiaoyan Bi (Shanghai, CN); Shibin Ge (Shanghai, CN); Dageng Chen (Shanghai, CN)
Assignee: Huawei Technologies Co., Ltd.
H04B7/0626H04B7/0478H04B7/0482H04B7/065H04B7/0617H04L5/0048
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,516,462
App. No.
16/188,791
Granted
Dec 24, 2019
Kind
B2
Abstract

A radio access node (RAN) and method of operation of the RAN are provided. The RAN includes a massive multiple-input-multiple-output (MIMO) antenna array. The RAN includes a processing hardware configured to carry out a communication method that includes receiving a digital data stream for transmission on a time-frequency resource. The RAN precodes the digital data stream using a digital beamforming stage to render a precoded digital downlink data stream for downlink data stream signal transmission to a user equipment. The digital beamforming stage includes a first precoding stage configured according to a long-term matrix, and a second precoding stage configured according to a short-term matrix. The RAN is further configured to generate a downlink data stream transmission signal to the user equipment in accordance with the precoded digital downlink data stream.

Claims (41)

1. A communication method comprising:

receiving a digital data stream for transmission on a time-frequency resource;

precoding the digital data stream using a digital beamforming stage to render a precoded digital downlink data stream for downlink data stream signal transmission to a user equipment, the digital beamforming stage comprising:

a first precoding stage configured according to a long-term matrix, wherein the first precoding stage maps an antenna port to one or more radio frequency (RF) chains according to the long-term matrix, and

a second precoding stage configured according to a short-term matrix; and

generating a downlink data stream transmission signal to the user equipment in accordance with the precoded digital downlink data stream.

2. The method of claim 1 , wherein the second precoding stage maps an input data stream to one or more antenna ports according to the short-term matrix.

3. The method of claim 1 , wherein the RF chain provides an analog signal to a signal splitter, and wherein the signal splitter has a multi-line output corresponding to a sub-array of antenna elements of a massive multiple-input-multiple-output (MIMO) module.

4. The method of claim 1 , further comprising:

configuring a channel state information reference signal (CSI-RS) measurement, the configuring comprising:

configuring a first-level CSI-RS measurement configuration on long-term channel statistics information and receiving corresponding explicit channel state information (CSI) from a user equipment based on the first-level CSI-RS measurement configuration; and

configuring a second-level CSI-RS measurement configuration on short-term channel information and receiving corresponding CSI from a user equipment based on the second-level CSI-RS measurement configuration.

5. The method of claim 4 , wherein the explicit channel state information from the user equipment comprises a channel covariance matrix.

6. The method of claim 4 , wherein the configuring the first-level CSI-RS measurement configuration is on a wideband.

7. The method of claim 4 , wherein the configuring the second-level CSI-RS measurement configuration is on a sub-band.

8. A radio access node (RAN) comprising:

a massive multiple-input-multiple-output (MIMO) antenna array;

a hardware processor; and

a non-transitory computer readable medium including computer-executable instructions, that when executed by the hardware processor, carry out a communication method comprising:

receiving a digital data stream for transmission on a time-frequency resource;

precoding the digital data stream using a digital beamforming stage to render a precoded digital downlink data stream for downlink data stream signal transmission to a user equipment, the digital beamforming stage comprising:

a first precoding stage configured according to a long-term matrix, wherein the first precoding stage maps an antenna port to one or more radio frequency (RF) chains according to the long-term matrix, and

a second precoding stage configured according to a short-term matrix; and

generating a downlink data stream transmission signal to the user equipment in accordance with the precoded digital downlink data stream.

9. The RAN of claim 8 , wherein the second precoding stage maps an input data stream to one or more antenna ports according to the short-term matrix.

10. The RAN of claim 8 , wherein the RF chain provides an analog signal to a signal splitter, and wherein the signal splitter has a multi-line output corresponding to a sub-array of antenna elements of a massive MIMO module.

11. The RAN of claim 8 , wherein the communication method further comprises:

configuring a channel state information reference signal (CSI-RS) measurement, the configuring comprising:

configuring a first-level CSI-RS measurement configuration on long-term channel statistics information and receiving corresponding explicit channel state information (CSI) from a user equipment based on the first-level CSI-RS measurement configuration; and

configuring a second-level CSI-RS measurement configuration on short-term channel information and receiving corresponding CSI from a user equipment based on the second-level CSI-RS measurement configuration.

12. The RAN of claim 11 , wherein the explicit channel state information from the user equipment comprises a channel covariance matrix.

13. The RAN of claim 11 , wherein the configuring the first-level CSI-RS measurement configuration is on a wideband.

14. The RAN of claim 13 , wherein the configuring the second-level CSI-RS measurement configuration is on a sub-band.

15. A non-transitory computer-readable medium including computer-executable instructions, which when executed by a processor of a radio access node (RAN), cause the RAN to implement a communication method comprising:

receiving a digital data stream for transmission on a time-frequency resource;

precoding the digital data stream using a digital beamforming stage to render a precoded digital downlink data stream for downlink data stream signal transmission to a user equipment, the digital beamforming stage comprising:

a first precoding stage configured according to a long-term matrix, wherein the first precoding stage maps an antenna port to one or more radio frequency (RF) chains according to the long-term matrix, and

second precoding stage configured according to a short-term matrix; and

generating a downlink data stream transmission signal to the user equipment in accordance with the precoded digital downlink data stream.

16. The non-transitory computer-readable medium of claim 15 , wherein the second precoding stage maps an input data stream to the antenna port according to the short-term matrix.

17. The non-transitory computer-readable medium of claim 15 , wherein the RF chain provides an analog signal to a signal splitter, and wherein the signal splitter has a multi-line output corresponding to a sub-array of antenna elements of a massive multiple-input-multiple-output (MIMO) module.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 2, 2019
From: WU, LU; HAN, WEI; SHANG, PENG; LIU, JIN; GE, SHIBIN; CHEN, DAGENG; BI, XIAOYAN
To: HUAWEI TECHNOLOGIES CO., LTD.
Reel/Frame 049655/0704 →
Continuity (3)
Continuation PCTIB2017052863
Provisional Application 62336287 · May 13, 2016
Related Publication 20190081682A1 · Mar 14, 2019
Cited By (1)
US 12,719,538