IP Library Granted Patent US 12,200,771
Granted Patent B2
US 12,200,771 · App. 17/527,283 · Granted Jan 14, 2025

Determination of RNTI for performing RACH procedure at carrier frequencies above 52.6 GHz

Inventors: Gang Xiong (Beaverton, OR); Alexei Davydov (Nizhny Novgorod, RU); Yingyang Li (Beijing, CN); Dae Won Lee (Portland, OR)
Assignee: Intel Corporation
H04W74/0833H04W74/0836
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Quick Facts
Patent No.
US 12,200,771
App. No.
17/527,283
Granted
Jan 14, 2025
Kind
B2
Abstract

A user equipment (UE) configured for operation in a sixth generation (6G) network may perform a random access channel (RACH) procedure with a generation node B (gNB). The UE may encode a physical random access channel (PRACH) preamble for transmission in a PRACH occasion (RO) For carrier frequencies above 52.6 GHz, the UE may determine a Radio Network Temporary Identifier (RNTI) (i.e., either a RA-RNTI or a MsgB-RNTI) based on an index of the PRACH occasion RO index. The UE may also decode a response from the gNB that includes the RNTI. The UE may determine the RNTI based on the RO index in a time domain and the RO index in a frequency domain.

Claims (49)

1. An apparatus of a user equipment (UE) configured for operation in a sixth generation (6G) network, the apparatus comprising:

processing circuitry; and memory,

wherein for performing a random access channel (RACH) procedure with a generation node B (gNB), the processing circuitry is to:

encode a physical random access channel (PRACH) preamble for transmission in a PRACH occasion (RO);

determine a Radio Network Temporary Identifier (RNTI) based on an index of the PRACH occasion RO index, the RNTI being one of an RA-RNTI and a MsgB-RNTI; and

decode a response from the gNB that includes the RNTI,

wherein for carrier frequencies above 52.6 GHz, the processing circuitry is configured to determine the RNTI using a TDD period index (t TDD,id ),

wherein for carrier frequencies that are not above 52.6 GHz, the processing circuitry is configured to determine the RNTI without use of the TDD period index, and

wherein the memory is configured to store the RNTI.

2. The apparatus of claim 1 , wherein for the carrier frequencies above 52.6 GHz, the processing circuitry is configured to determine the RNTI based on the TDD period index (t TDD,id ), a PRACH occasion index in time within a TDD period (t RO,id ), and a PRACH occasion index in a frequency domain (f RO,id ), and

wherein for the carrier frequencies that are not above 52.6 GHz, the processing circuitry is configured to determine the RNTI based on an index of a first OFDM symbol of the PRACH occasion (s_id), an index of a first slot of the PRACH occasion in a system frame (t_id), an index of the PRACH occasion in the frequency domain (f_id), and an UL carrier used for Random Access Preamble transmission (ul_carrier_id).

3. The apparatus of claim 2 , wherein for the carrier frequencies above 52.6 GHz, the RNTI is calculated as follows:

RNTI=f(t TDD,id ,t RO,id ,f RO,id )

where t TDD,id is the TDD period index, t RO,id is the PRACH occasion index in time within a TDD period; and f RO,id is the PRACH occasion index in the frequency domain.

4. The apparatus of claim 2 , wherein for a 4-step RACH procedure, the processing circuitry is configured to determine a RA-RNTI, and wherein for a 2-step RACH procedure, the processing circuitry is configured to determine a MsgB-RNTI.

5. The apparatus of claim 4 , wherein for the carrier frequencies not above 52.6 GHz, for the 4-step RACH procedure the RA-RNTI is calculated as follows:

RA-RNTI=1 +s _id+14 ×t _id+14×80 ×f _id+14×80×8 ×ul _carrier_id, and

wherein for the carrier frequencies not above 52.6 GHz, for the 2-step RACH procedure the MsgB-RNTI is calculated as follows:

MSGB-RNTI=1 +s _ id+ 14 ×t _ id+ 14×80 ×f _ id+ 14×80×8 ×ul _carrier_id+14×80×8×2,

where s_id is an index of a first OFDM symbol of the PRACH occasion (0≤s_id<14), t_id is the index of a first slot of the PRACH occasion in a system frame (0≤t_id<80), where f_id is the index of the PRACH occasion in the frequency domain (0≤f_id<8), and ul_carrier_id is an UL carrier used for Random Access Preamble transmission.

6. The apparatus of claim 4 , wherein for the 4-step RACH procedure, the response from the gNB comprises a Msg2 and a Msg4, and

wherein for the 2-step RACH the response from the gNB comprises a MsgB.

7. The apparatus of claim 6 , wherein for the carrier frequencies not above 52.6 GHz:

the Msg2 and the Msg4 for the 4-step RACH procedure are not associated with a physical downlink control channel (PDCCH), and

the MsgB for the 2-step RACH procedure is not associated with the PDCCH.

8. The apparatus of claim 4 , wherein a PRACH subcarrier spacing (SCS) is used for transmission of a PRACH preamble, wherein the PRACH SCS comprises one of a 480 kHz SCS or a 960 kHz SCS, and when a reference SCS is a 60 kHz SCS or a 120 kHz SCS.

9. A non-transitory computer-readable storage medium that stores instructions for execution by processing circuitry of a user equipment (UE) configured for operation in a sixth generation (6G) network, wherein for performing a random access channel (RACH) procedure with a generation node B (gNB), the processing circuitry is to:

encode a physical random access channel (PRACH) preamble for transmission in a PRACH occasion (RO);

determine a Radio Network Temporary Identifier (RNTI), the RNTI being one of an RA-RNTI and a MsgB-RNTI; and

decode a response from the gNB that includes the RNTI,

wherein for carrier frequencies above 52.6 GHz, the processing circuitry is configured to determine the RNTI using a TDD period index (t TDD,id ), and

wherein for carrier frequencies that are not above 52.6 GHz, the processing circuitry is configured to determine the RNTI without use of the TDD period index.

10. The non-transitory computer-readable storage medium of claim 9 , wherein for the carrier frequencies above 52.6 GHz, the processing circuitry is configured to determine the RNTI based on the TDD period index (t TDD,id ), a PRACH occasion index in time within a TDD period (t RO,id ), and a PRACH occasion index in a frequency domain (f RO,id ), and

wherein for the carrier frequencies that are not above 52.6 GHz, the processing circuitry is configured to determine the RNTI based on an index of a first OFDM symbol of the PRACH occasion (s_id), an index of a first slot of the PRACH occasion in a system frame (t_id), an index of the PRACH occasion in the frequency domain (f_id), and an UL carrier used for Random Access Preamble transmission (ul_carrier_id).

11. The non-transitory computer-readable storage medium of claim 10 , wherein for the carrier frequencies above 52.6 GHz, the RNTI is calculated as follows:

RNTI=f(t TDD,id ,t RO,id ,f RO,id ),

where t TDD,id is the TDD period index, t RO,id is the PRACH occasion index in time within a TDD period; and f RO,id is the PRACH occasion index in the frequency domain.

12. The non-transitory computer-readable storage medium of claim 10 , wherein for a 4-step RACH procedure, the processing circuitry is configured to determine a RA-RNTI, and wherein for a 2-step RACH procedure, the processing circuitry is configured to determine a MsgB-RNTI.

13. An apparatus of a generation node B (gNB) configured for operation in a sixth generation (6G) network, the apparatus comprising: processing circuitry; and memory,

wherein for performing a random access channel (RACH) procedure with user equipment (UE), the processing circuitry is to:

decode a physical random access channel (PRACH) preamble received in a PRACH occasion (RO);

determine a Radio Network Temporary Identifier (RNTI), the RNTI being one of an RA-RNTI and a MSgB-RNTI; and

encode a response for transmission to the UE that includes the RNTI,

wherein for carrier frequencies above 52.6 GHz, the processing circuitry is configured to determine the RNTI using a TDD period index (t TDD,id ), and

wherein for carrier frequencies that are not above 52.6 GHz, the processing circuitry is configured to determine the RNTI without use of the TDD period index,

wherein the memory is configured to store the RNTI.

14. The apparatus of claim 13 , wherein for the carrier frequencies above 52.6 GHz, the processing circuitry is configured to determine the RNTI based on the TDD period index (t TDD,id ), a PRACH occasion index in time within a TDD period (t RO,id ), and a PRACH occasion index in a frequency domain (f RO,id ), and

wherein for the carrier frequencies that are not above 52.6 GHz, the processing circuitry is configured to determine the RNTI based on an index of a first OFDM symbol of the PRACH occasion (s_id), an index of a first slot of the PRACH occasion in a system frame (t_id), an index of the PRACH occasion in the frequency domain (f_id), and an UL carrier used for Random Access Preamble transmission (ul_carrier_id).

15. The apparatus of claim 14 , wherein for a 4-step RACH procedure, the processing circuitry is configured to determine a RA-RNTI, and wherein for a 2-step RACH procedure, the processing circuitry is configured to determine a MsgB-RNTI.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2021
From: XIONG, GANG; DAVYDOV, ALEXEI; LI, YINGYANG; LEE, DAE WON
To: INTEL CORPORATION
Reel/Frame 058395/0815 →
Continuity (2)
Provisional Application 63118385 · Nov 25, 2020
Related Publication 20220095381A1 · Mar 24, 2022
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