IP Library › Granted Patent US 12,549,412
Granted Patent B2
US 12,549,412 · App. 17/921,748 · Granted Feb 10, 2026

Channel estimation in a wireless communication network

Inventors: Martin Hessler (Linköping, SE); Ema Becirovic (Linköping, SE); Emil Björnson (Hägersten, SE); Erik G. Larsson (Linköping, SE)
Assignee: Telefonaktiebolaget LM Ericsson (publ)
H04L25/0204H04B7/06952H04L5/0051
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Quick Facts
Patent No.
US 12,549,412
App. No.
17/921,748
Granted
Feb 10, 2026
Kind
B2
Abstract

A wireless device ( 14 ) receives a downlink reference signal ( 24 ) from a radio network node ( 12 ) over a downlink channel ( 16 ), and determines channel information ( 28 ) based on measurement of the downlink reference signal ( 24 ). The wireless device ( 14 ) then transmits, to the radio network node ( 12 ) over an uplink channel ( 18 ), an uplink signal ( 30 ) that implicitly conveys the determined channel information ( 28 ). The radio network node ( 12 ) jointly (i) identifies which candidate uplink signal in a set ( 32 ) of candidate uplink signals ( 30 - 1 . . . 30 -N) is received; and (ii) determines an estimate ( 42 ) of the uplink channel ( 18 ) from the received uplink signal ( 30 ). The radio network node ( 12 ) determines the channel information ( 28 ) implicitly conveyed by the identified candidate uplink signal, and then determines an estimate ( 22 ) of the downlink channel ( 16 ) based on the determined channel information ( 28 ) and the determined estimate ( 42 ) of the uplink channel ( 18 ).

Claims (61)

1 . A method performed by a radio network node, the method comprising:

transmitting, to a wireless device, a mapping that maps different candidate uplink signals in a set to different respective channel information;

transmitting a downlink reference signal over a downlink channel;

receiving an uplink signal from the wireless device over an uplink channel;

jointly (i) identifying which candidate uplink signal in the set of candidate uplink signals is the received uplink signal; and (ii) determining an estimate of the uplink channel from the received uplink signal;

determining channel information implicitly conveyed by the identified candidate uplink signal, wherein different candidate uplink signals in the set implicitly convey different channel information, wherein determining the channel information implicitly conveyed by the identified candidate uplink signal comprises mapping the identified candidate uplink signal to channel information according to said mapping; and

determining an estimate of the downlink channel based on the determined channel information and the determined estimate of the uplink channel.

2 . The method of claim 1 , wherein:

the set includes at least some uplink signals which are not pairwise orthogonal but all pairs of uplink signals in the set have a correlation below a threshold.

3 . The method of claim 1 , wherein the number of candidate uplink signals in the set is less than or equal to

v

=

B

N

,

where B is a number or beams over-which the radio network node is configured to transmit and where N is a number of transmit antennas at the radio network node.

4 . The method of claim 1 , wherein the channel information implicitly conveyed by the identified candidate uplink signal is channel information determined by the wireless device from measurement of the downlink channel.

5 . The method of claim 1 , wherein the channel information is or encodes a precoder or beam selected from a codebook of multiple possible precoders or beams.

6 . A method performed by a wireless device, the method comprising:

receiving, from a radio network node, a mapping that maps different candidate uplink reference signals in a set to different respective channel information, wherein different candidate uplink refence signals in the set implicitly convey different respective channel information;

receiving a downlink reference signal from the radio network node over a downlink channel;

determining channel information based on measurement of the downlink reference signal;

selecting, from among the multiple candidate uplink reference signals in the set, an uplink reference signal to transmit, based on the determined channel information and based on said mapping, wherein said selecting comprises selecting the uplink reference signal that the mapping maps to the determined channel information;

transmitting, to the radio network node over an uplink channel, the selected uplink reference signal that implicitly conveys the determined channel information.

7 . The method of claim 6 , wherein the set is a finite set of pairwise orthogonal uplink reference signals.

8 . The method of claim 6 , wherein the set is a finite set of uplink reference signals that includes at least some uplink reference signals which are not pairwise orthogonal but all pairs of uplink reference signals in the set have a correlation below a threshold.

9 . The method of claim 6 , wherein the number of candidate uplink reference signals in the set is less than or equal to

v

=

B

N

,

where B is a number of beams over which the radio network node is configured to transmit and where N is a number of transmit antennas at the radio network node.

10 . A radio network node comprising:

communication circuitry; and

processing circuitry configured to:

transmit, to a wireless device, a mapping that maps different candidate uplink signals in a set to different respective channel information;

transmit a downlink reference signal over a downlink channel;

receive an uplink signal from the wireless device over an uplink channel;

jointly (i) identify which candidate uplink signal in the set of candidate uplink signals is the received uplink signal; and (ii) determine an estimate of the uplink channel from the received uplink signal;

determine channel information implicitly conveyed by the identified candidate uplink signal, wherein different candidate uplink signals in the set implicitly convey different channel information, wherein the channel information implicitly conveyed by the identified candidate uplink signal is determined by mapping the identified candidate uplink signal to channel information according to said mapping; and

determine an estimate of the downlink channel based on the determined channel information and the determined estimate of the uplink channel.

11 . The radio network node of claim 10 , wherein the channel information implicitly conveyed by the identified candidate uplink signal is channel information determined by the wireless device from measurement of the downlink channel.

12 . A wireless device comprising:

communication circuitry; and

processing circuitry configured to:

receive, from a radio network node, a mapping that maps different candidate uplink reference signals in a set to different respective channel information, wherein different candidate uplink refence signals in the set implicitly convey different respective channel information;

receive a downlink reference signal from the radio network node over a downlink channel;

determine channel information based on measurement of the downlink reference signal;

select, from among the multiple candidate uplink reference signals in the set, an uplink reference signal to transmit, based on the determined channel information and based on said mapping, wherein the processing circuitry is configured to select the uplink reference signal that the mapping maps to the determined channel information;

transmit, to the radio network node over an uplink channel, the selected uplink reference signal that implicitly conveys the determined channel information.

13 . The wireless device of claim 12 , wherein the set is a finite set of pairwise orthogonal uplink reference signals.

14 . The wireless device of claim 12 , wherein the set is a finite set of uplink reference signals that includes at least some uplink reference signals which are not pairwise orthogonal but all pairs of uplink reference signals in the set have a correlation below a threshold.

15 . The wireless device of claim 12 , wherein the number of candidate uplink reference signals in the set is less than or equal to

v

=

B

N

,

where B is a number of beams over which the radio network node is configured to transmit and where N is a number of transmit antennas at the radio network node.

16 . The wireless device of claim 12 , wherein the channel information is or encodes a precoder or beam selected from a codebook of multiple possible precoders or beams.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2022
From: LARSSON, ERIK G.; BJÖRNSON, EMIL; BECIROVIC, EMA
To: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
Reel/Frame 061561/0694 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2022
From: HESSLER, MARTIN
To: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
Reel/Frame 061561/0748 →
Continuity (1)
Related Publication 20230164000A1 · May 25, 2023
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