IP Library Granted Patent US 12,262,239
Granted Patent B2
US 12,262,239 · App. 18/678,534 · Granted Mar 25, 2025

Methods for relaxation of radio link monitoring requirements in wireless systems

Inventors: Brian Martin (Farnham, GB); Virgil Comsa (Montreal, CA); Erdem Bala (East Meadow, NY); Keiichi Kubota (Setagaya-Ku, JP)
Assignee: InterDigital Patent Holdings, Inc.
H04W24/10
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Quick Facts
Patent No.
US 12,262,239
App. No.
18/678,534
Granted
Mar 25, 2025
Kind
B2
Abstract

A wireless transmit/receive unit (WTRU) may comprise a processor and memory. The processor and memory may be configured to receive configuration information indicating measurement relaxation criteria for radio link monitoring (RLM) or beam failure detection (BFD) and a prohibit time period for reporting a measurement relaxation state. The WTRU may determine that the measurement relaxation state of the WTRU has changed based on the measurement relaxation criteria. The WTRU may determine that the prohibit time period has ended. The WTRU may send a report based on the determination that the measurement relaxation state has changed and the determination that the prohibit time period has ended. The report may include an indication of a measurement relaxation state.

Claims (45)

1. A wireless transmit/receive unit (WTRU) comprising:

a processor and memory, the processor and memory configured to:

receive a first radio resource control (RRC) message comprising configuration information, the configuration information indicating measurement relaxation criterion for measurements associated with radio link monitoring (RLM) or beam failure detection (BFD) and a value for a prohibit timer associated with reporting a measurement relaxation state;

determine that the WTRU is to operate in a measurement relaxation state for at least one serving cell based on the measurement relaxation criterion being satisfied for the at least one serving cell, wherein the measurement relaxation state is associated with a changed measurement evaluation period than a measurement evaluation period of a non-relaxed measurement state;

send a second RRC message comprising a first report, the first report indicating that the WTRU is operating in the measurement relaxation state for the at least one serving cell, wherein the first report includes a respective indication of a respective measurement relaxation state information for each of a plurality of serving cells;

start the prohibit timer based on determining that the WTRU is to operate in the measurement relaxation state when sending the first report;

determine that the measurement relaxation state of the WTRU has changed for the at least one serving cell based on the measurement relaxation criterion not being satisfied for the at least one serving cell;

determine that the prohibit timer is not running;

send a third RRC message comprising a second report, wherein the second report is sent based on the determination that the measurement relaxation state has changed and the determination that the prohibit timer is not running, wherein the second report includes an indication of the changed measurement relaxation state for the at least one serving cell of the plurality of serving cells; and

start the prohibit timer based on determining that the WTRU is to operate in the changed measurement relaxation state when sending the second report.

2. The WTRU of claim 1 , wherein the measurement relaxation criterion comprises an offset applied to in-sync measurement criteria for the at least one serving cell.

3. The WTRU of claim 1 , wherein the measurement relaxation criterion comprises a low mobility criterion.

4. The WTRU of claim 3 , wherein the low mobility criterion is associated with a reference signal received power threshold.

5. The WTRU of claim 1 , wherein the measurement relaxation criterion is evaluated during an evaluation period.

6. The WTRU of claim 1 , wherein the changed measurement relaxation state for the at least one serving cell corresponds to a non-relaxed measurement state.

7. The WTRU of claim 6 , wherein the non-relaxed measurement state corresponds to a normal mode for the measurements associated with RLM or BFD.

8. The WTRU of claim 1 , wherein the first report indicates that the WTRU is operating in the measurement relaxation state for the at least one serving cell by setting a bit to a value that indicates that the measurement relaxation criterion is satisfied for the at least one serving cell.

9. A method implemented by a wireless transmit/receive unit (WTRU), the method comprising:

receiving a first radio resource control (RRC) message comprising configuration information, the configuration information indicating measurement relaxation criterion for measurements associated with radio link monitoring (RLM) or beam failure detection (BFD) and a value for a prohibit timer associated with reporting a measurement relaxation state;

determining that the WTRU is to operate in a measurement relaxation state for at least one serving cell based on the measurement relaxation criterion being satisfied for the at least one serving cell, wherein the measurement relaxation state is associated with a changed measurement evaluation period than a measurement evaluation period of a non-relaxed measurement state;

sending a second RRC message comprising a first report, the first report indicating that the WTRU is operating in the measurement relaxation state for the at least one serving cell, wherein the first report includes a respective indication of a respective measurement relaxation state information for each of a plurality of serving cells;

starting the prohibit timer based on determining that the WTRU is to operate in the measurement relaxation state when sending the first report;

determining that the measurement relaxation state of the WTRU has changed for the at least one serving cell based on the measurement relaxation criterion not being satisfied for the at least one serving cell;

determining that the prohibit timer is not running;

sending a third RRC message comprising a second report, wherein the second report is sent based on the determination that the measurement relaxation state has changed and the determination that the prohibit timer is not running, wherein the second report includes an indication of the changed measurement relaxation state for the at least one serving cell of the plurality of serving cells; and

starting the prohibit timer based on determining that the WTRU is to operate in the changed measurement relaxation state when sending the second report.

10. The method of claim 9 , wherein the measurement relaxation criterion comprises an offset applied to in-sync measurement criterion for the at least one serving cell.

11. The method of claim 9 , wherein the measurement relaxation criterion comprises a low mobility criterion.

12. The method of claim 11 , wherein the low mobility criterion is associated with a reference signal received power threshold.

13. The method of claim 9 , wherein the measurement relaxation criterion is evaluated during an evaluation period.

14. The method of claim 9 , wherein the changed measurement relaxation state for the at least one serving cell corresponds to a non-relaxed measurement state.

15. The method of claim 14 , wherein the non-relaxed measurement state corresponds to a normal mode for the measurements associated with RLM or BFD.

16. The method of claim 9 , wherein the first report indicates that the WTRU is operating in the measurement relaxation state for the at least one serving cell by setting a bit to a value that indicates that the measurement relaxation criterion is satisfied for the at least one serving cell.

17. The WTRU of claim 1 , wherein the processor and memory are further configured to:

receive a possible set of values for a virtual discontinuous reception (DRX) cycle and an activation message;

select a first value of a virtual DRX cycle from the possible set of values based on the activation message;

determine a first radio link monitoring (RLM) or a first beam failure detection (BFD) requirements based on the first value of a virtual DRX cycle;

select one or more subsequent values of a possible set of values for a virtual DRX cycle, the one or more subsequent values based on the first value, wherein the each of the selected one or more subsequent values is greater than the value selected before it; and

determine a second RLM or a second BFD requirement based on the one or more selected subsequent values.

18. The method of claim 9 , further comprising:

receiving a possible set of values for a virtual discontinuous reception (DRX) cycle and an activation message;

selecting a first value of a virtual DRX cycle from the possible set of values based on the activation message;

determining a first radio link monitoring (RLM) or a first beam failure detection (BFD) requirements based on the first value of a virtual DRX cycle;

selecting one or more subsequent values of a possible set of values for a virtual DRX cycle, the one or more subsequent values based on the first value, wherein the each of the selected one or more subsequent values is greater than the value selected before it; and

determining a second RLM or a second BFD requirement based on the one or more selected subsequent values.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 18, 2024
From: MARTIN, BRIAN; COMSA, VIRGIL; BALA, ERDEM; KUBOTA, KEIICHI
To: INTERDIGITAL PATENT HOLDINGS, INC.
Reel/Frame 067757/0101 →
Continuity (3)
Continuation PCTUS2022082147 · Dec 21, 2022
Provisional Application 63292293 · Dec 21, 2021
Related Publication 20240314617A1 · Sep 19, 2024
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