IP Library Granted Patent US 12,549,300
Granted Patent B2
US 12,549,300 · App. 17/427,424 · Granted Feb 10, 2026

NR sidelink synchronization signal for enhanced vehicle-to-everything use cases with optimized receiver processing

Inventors: Alexey Khoryaev (Nizhny Novgorod, RU); Mikhail Shilov (Nizhny Novgorod, RU); Sergey Panteleev (Nizhny Novgorod, RU); Sergey Sosnin (Zavolzhi, RU); Daewon Lee (Portland, OR)
Assignee: Apple Inc.
H04L5/0048H04W4/46H04W56/002H04W92/18
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Quick Facts
Patent No.
US 12,549,300
App. No.
17/427,424
Granted
Feb 10, 2026
Kind
B2
Abstract

Systems, apparatuses, methods, and computer-readable media are provided for a user equipment (UE) for a wireless communication system. The UE determines at least one sidelink primary synchronization signal (S-PSS) sequence of at least one S-PSS signal. The at least one S-PSS sequence is different from a primary synchronization signal (PSS) sequence. The UE also determines at least one sidelink secondary synchronization signal (S-SSS) sequence of at least one SSSS signal. The UE determines a plurality of S-PSS symbols and a plurality of SSSS symbols corresponding to a sub carrier spacing (SCS). The UE transmits to another UE the determined plurality of S-SSS symbols after the determined plurality of S-PSS symbols. The SCS may be associated with a physical resource block (PRE) allocation size. A maximum of 11 PRBs for a sidelink synchronization signal block (S-SSB) may be set based on the SCS.

Claims (41)

1 . A user equipment (UE), comprising:

processor circuitry configured to:

determine at least one sidelink primary synchronization signal (S-PSS) sequence of at least one S-PSS signal by applying a cyclic shift to a primary synchronization signal (PSS) sequence of a PSS signal, wherein the cyclic shift comprises a set of {22, 65, 108}, wherein the at least one S-PSS sequence is different from the PSS sequence;

apply a time reversal mapping to the at least one S-PSS sequence to determine a second S-PSS signal that is a complex conjugated pair in time of the at least one S-PSS signal;

determine 3 sets of sidelink secondary synchronization signal (S-SSS) sequences of at least one S-SSS signal,

wherein each set of the 3 sets is composed of 112 non-overlapped SSS sequences, and wherein each set of the 3 sets corresponds to one of a plurality of types of sidelink synchronization sources including a global navigation satellite system (GNSS), a base station, and an independent synchronization source (ISS) running on an internal clock oscillator; and

radio front end circuitry, coupled to the processor circuitry, configured to:

transmit, to another apparatus, at least one sequence of a set of the 3 sets of S-SSS sequences after transmission of the at least one S-PSS sequence.

2 . The UE of claim 1 , wherein the processor circuitry is further configured to:

set a physical resource block (PRB) allocation size to a maximum of 11 PRBs for a sidelink synchronization signal block (S-SSB) based at least on a subcarrier spacing (SCS).

3 . The UE of claim 1 , wherein a length of the at least one S-PSS sequence is equal to a length of the PSS sequence.

4 . The UE of claim 1 , wherein the processor circuitry is further configured to:

use a reciprocal polynomial to determine a third S-PSS signal.

5 . The UE of claim 1 , wherein the radio front end circuitry is further configured to:

transmit the determined at least one S-PSS sequence in adjacent symbols at a beginning of a sidelink synchronization burst or a sidelink slot.

6 . The UE of claim 1 , wherein the radio front end circuitry is further configured to:

transmit a physical sidelink broadcast channel (PSBCH) resource element (RE) of a sidelink synchronization signal block (S-SSB) after transmission of the determined at least one S-PSS sequence and the determined 3 sets of S-SSS sequences.

7 . The UE of claim 6 , wherein the PSBCH RE comprises a system frame number, a sidelink direct frame number (DFN), a slot number, a type of synchronization source, an S-SSB index, a synchronization hop, or one or more physical layer parameters.

8 . The UE of claim 1 , wherein each set of the 3 sets of S-SSS sequences comprises sidelink synchronization ID information.

9 . The UE of claim 1 , wherein the processor circuitry is further configured to derive and propagate timing from the ISS.

10 . The UE of claim 1 , wherein the processor circuitry is further configured to split a whole set of SSS sequences into the 3 sets.

11 . A method for a user equipment (UE), comprising:

determining at least one sidelink primary synchronization signal (S-PSS) sequence of at least one S-PSS signal by applying a cyclic shift to a primary synchronization signal (PSS) sequence of a PSS signal, wherein the cyclic shift comprises a set of {22, 65, 108}, wherein the at least one S-PSS sequence is different from the PSS sequence;

applying a time reversal mapping to the at least one S-PSS sequence to determine a second S-PSS signal that is a complex conjugated pair in time of the at least one S-PSS signal;

determining 3 sets of sidelink secondary synchronization signal (S-SSS) sequences of at least one S-SSS signal,

wherein each set of the 3 sets is composed of 112 non-overlapped SSS sequences, and wherein each set of the 3 sets corresponds to one of a plurality of types of sidelink synchronization sources including a global navigation satellite system (GNSS), a base station, and an independent synchronization source (ISS) running on an internal clock oscillator; and

transmitting to another UE, at least one sequence of a set of the 3 sets of S-SSS sequences after transmission of the S-PSS sequence.

12 . The method of claim 11 , further comprising setting a physical resource block (PRB) allocation size to a maximum of 11 PRBs for a sidelink synchronization signal block (S-SSB) based at least on a subcarrier spacing (SCS).

13 . The method of claim 11 , wherein a length of the at least one S-PSS sequence is equal to a length of the PSS sequence.

14 . The method of claim 11 , further comprising using, by the UE, a reciprocal polynomial to determine a third S-PSS signal.

15 . The method of claim 11 , further comprising transmitting, from the UE to the other UE, the determined at least one S-PSS sequence in adjacent symbols at a beginning of a sidelink synchronization burst or a sidelink slot.

16 . The method of claim 11 , further comprising transmitting, from the UE to the other UE, a physical sidelink broadcast channel (PSBCH) resource element (RE) of a sidelink synchronization signal block (S-SSB) after transmission of the determined at least one S-PSS sequence and the determined 3 sets of S-SSS sequence.

17 . The method of claim 16 , further comprising transmitting, from the UE to the other UE, a system frame number, a sidelink direct frame number (DFN), a slot number, a type of synchronization source, an S-SSB index, a synchronization hop, or one or more physical layer parameters in the PSBCH RE.

18 . The method of claim 11 , wherein each set of the 3 sets of S-SSS sequences comprises sidelink synchronization ID information.

19 . A non-transitory computer-readable media (CRM) comprising computer instructions, where upon execution of the computer instructions by one or more processors of a user equipment (UE), causes the one or more processors to perform operations, wherein the operations comprise:

determining at least one sidelink primary synchronization signal (S-PSS) sequence of at least one S-PSS signal by applying a cyclic shift to a primary synchronization signal (PSS) sequence of a PSS signal, wherein the cyclic shift comprises a set of {22, 65, 108}, wherein the at least one S-PSS sequence is different from the PSS sequence;

applying a time reversal mapping to the at least one S-PSS sequence to determine a second S-PSS signal that is a complex conjugated pair in time of the at least one S-PSS signal;

determining 3 sets of sidelink secondary synchronization signal (S-SSS) sequences of at least one S-SSS,

wherein each set of the 3 sets is composed of 112 non-overlapped SSS sequences, and wherein each set of the 3 sets corresponds to one of a plurality of types of sidelink synchronization sources including a global navigation satellite system (GNSS), a base station, and an independent synchronization source (ISS) running on an internal clock oscillator; and

transmitting at least one sequence of a set of the 3 sets of S-SSS sequences after transmission of the at least one S-PSS sequence.

20 . The CRM of claim 19 , wherein the operations further comprise deriving and propagating timing from the ISS.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 3, 2025
From: KHORYAEV, ALEXEY; SHILOV, MIKHAIL; PANTELEEV, SERGEY; SOSNIN, SERGEY; LEE, DAEWON
To: INTEL CORPORATION
Reel/Frame 072457/0546 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 3, 2025
From: INTEL CORPORATION
To: APPLE INC.
Reel/Frame 072457/0653 →
Continuity (2)
Provisional Application 62805918 · Feb 14, 2019
Related Publication 20220140967A1 · May 5, 2022
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