IP Library › Granted Patent US 12,362,981
Granted Patent B2
US 12,362,981 · App. 18/254,723 · Granted Jul 15, 2025

Apparatus and method for compensating phase noise

Inventors: Ismael Peruga (Tampere, FI); Toni Levanen (Tampere, FI); Mikko Valkama (Nokia, FI); Markku Renfors (Tampere, FI)
Assignee: NOKIA TECHNOLOGIES OY
H04L27/2691H04L5/0048H04L27/2675
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Quick Facts
Patent No.
US 12,362,981
App. No.
18/254,723
Granted
Jul 15, 2025
Kind
B2
Abstract

Disclosed is a method for compensating phase noise. A symbol comprising one or more data sub-symbols and one or more pilot sub-symbols is received ( 501 ). A sequence of first phase noise estimates is obtained ( 502 ) based at least partly on the one or more pilot sub-symbols. A first filter is used to obtain ( 503, 507 ) a first sequence of filtered phase noise estimates from at least a subset of the one or more data sub-symbols based at least partly on the sequence of first phase noise estimates. The first sequence of filtered phase noise estimates is stored ( 506, 510 ). Phase noise compensation is applied ( 512 ) to the one or more data sub-symbols based at least partly on the first sequence of filtered phase noise estimates.

Claims (53)

1. An apparatus comprising at least one processor, and at least one memory storing instructions that, when executed by the at least one processor, cause the apparatus to:

receive a symbol comprising one or more data sub-symbols and one or more pilot sub-symbols;

obtain a sequence of first phase noise estimates based at least partly on the one or more pilot sub-symbols;

use a first filter to obtain a first sequence of filtered phase noise estimates from at least a subset of the one or more data sub-symbols based at least partly on the sequence of first phase noise estimates;

use a second filter to recursively obtain a second sequence of filtered phase noise estimates from at least the subset of the one or more data sub-symbols based at least partly on the sequence of first phase noise estimates;

store the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates;

combine the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates into a combined sequence of phase noise estimates; and

apply phase noise compensation to the one or more data sub-symbols based at least partly on the combined sequence of phase noise estimates.

2. An apparatus according to claim 1 , wherein the first filter comprises an infinite impulse response filter.

3. An apparatus according to claim 1 , wherein the one or more data sub-symbols comprise a plurality of data sub-symbols, and the first sequence of filtered phase noise estimates is obtained circularly from a last data sub-symbol of the plurality of data sub-symbols to a first data sub-symbol of the plurality of data sub-symbols, or from the first data sub-symbol to the last data sub-symbol.

4. An apparatus according to claim 1 ,

wherein the second sequence of filtered phase noise estimates is obtained in a reverse order compared to the first sequence of filtered phase noise estimates.

5. An apparatus according to claim 4 , wherein the combined sequence of phase noise estimates is an average of the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates.

6. An apparatus according to claim 4 , wherein the first filter and the second filter are used in parallel.

7. An apparatus according to claim 1 , wherein the apparatus is further caused to:

apply phase noise compensation to the one or more pilot sub-symbols based at least partly on the first sequence of filtered phase noise estimates;

compare the compensated one or more pilot sub-symbols with one or more reference points; and

adjust the first filter and update the first sequence of filtered phase noise estimates with the adjusted first filter, if the compensated one or more pilot sub-symbols do not substantially match with the one or more reference points;

wherein the first sequence of filtered phase noise estimates is stored, if the compensated one or more pilot sub-symbols substantially match with the one or more reference points.

8. An apparatus according to claim 7 , wherein the apparatus is further caused to:

determine a likelihood value based at least partly on a distance between the compensated one or more pilot sub-symbols and the one or more reference points.

9. An apparatus according to claim 8 , wherein the first filter is adjusted based at least partly on the likelihood value.

10. An apparatus according to claim 1 , wherein the apparatus is comprised in a terminal device or in a base station.

11. A method comprising:

receiving a symbol comprising one or more data sub-symbols and one or more pilot sub-symbols;

obtaining a sequence of first phase noise estimates based at least partly on the one or more pilot sub-symbols;

using a first filter to obtain a first sequence of filtered phase noise estimates from at least a subset of the one or more data sub-symbols based at least partly on the sequence of first phase noise estimates;

using a second filter to recursively obtain a second sequence of filtered phase noise estimates from at least the subset of the one or more data sub-symbols based at least partly on the sequence of first phase noise estimates;

storing the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates;

combining the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates into a combined sequence of phase noise estimates; and

applying phase noise compensation to the one or more data sub-symbols based at least partly on the combined sequence of phase noise estimates.

12. A method according to claim 11 , wherein the first filter comprises an infinite impulse response filter.

13. A method according to claim 11 , wherein the one or more data sub-symbols comprise a plurality of data sub-symbols, and the first sequence of filtered phase noise estimates is obtained circularly from a last data sub-symbol of the plurality of data sub-symbols to a first data sub-symbol of the plurality of data sub-symbols, or from the first data sub-symbol to the last data sub-symbol.

14. A method according to claim 11 ,

wherein the second sequence of filtered phase noise estimates is obtained in a reverse order compared to the first sequence of filtered phase noise estimates.

15. A method according to claim 14 , wherein the combined sequence of phase noise estimates is an average of the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates.

16. A method according to claim 14 , wherein the first filter and the second filter are used in parallel.

17. A method according to claim 11 , wherein the method further comprises:

applying phase noise compensation to the one or more pilot sub-symbols based at least partly on the first sequence of filtered phase noise estimates;

comparing the compensated one or more pilot sub-symbols with one or more reference points; and

adjusting the first filter and updating the first sequence of filtered phase noise estimates with the adjusted first filter, if the compensated one or more pilot sub-symbols do not substantially match with the one or more reference points;

wherein the first sequence of filtered phase noise estimates is stored, if the compensated one or more pilot sub-symbols substantially match with the one or more reference points.

18. A method according to claim 17 , wherein the method further comprises:

determining a likelihood value based at least partly on a distance between the compensated one or more pilot sub-symbols and the one or more reference points.

19. A method according to claim 11 , wherein the method is used in a terminal device or in a base station.

20. A non-transitory computer readable medium comprising program instructions that, when executed by an apparatus, cause the apparatus to perform at least the following:

receive a symbol comprising one or more data sub-symbols and one or more pilot sub-symbols;

obtain a sequence of first phase noise estimates based at least partly on the one or more pilot sub-symbols;

use a first filter to obtain a first sequence of filtered phase noise estimates from at least a subset of the one or more data sub-symbols based at least partly on the sequence of first phase noise estimates;

use a second filter to recursively obtain a second sequence of filtered phase noise estimates from at least the subset of the one or more data sub-symbols based at least partly on the sequence of first phase noise estimates;

store the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates;

combine the first sequence of filtered phase noise estimates and the second sequence of filtered phase noise estimates into a combined sequence of phase noise estimates; and

apply phase noise compensation to the one or more data sub-symbols based at least partly on the combined sequence of phase noise estimates.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2023
From: LEVANEN, TONI
To: NOKIA SOLUTIONS AND NETWORKS OY
Reel/Frame 064366/0615 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2023
From: NOKIA SOLUTIONS AND NETWORKS OY
To: NOKIA TECHNOLOGIES OY
Reel/Frame 064366/0621 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2023
From: PERUGA, ISMAEL; VALKAMA, MIKKO; RENFORS, MARKKU
To: TAMPERE UNIVERSITY
Reel/Frame 064366/0637 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2023
From: TAMPERE UNIVERSITY
To: NOKIA TECHNOLOGIES OY
Reel/Frame 064366/0669 →
Priority Claims (1)
FI 20206211 · Nov 27, 2020 · national
Continuity (1)
Related Publication 20240372770A1 · Nov 7, 2024
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