IP Library › Granted Patent US 12,323,822
Granted Patent B2
US 12,323,822 · App. 18/457,749 · Granted Jun 3, 2025

Communication system

Inventors: Chadi Khirallah (Epsom, GB); Yassin Aden Awad (Uxbridge, GB); Neeraj Gupta (Sutton, GB); Robert Arnott (London, GB)
Assignee: NEC CORPORATION
H04W16/28H04B7/0695H04W24/08H04B7/024H04B7/0621
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Quick Facts
Patent No.
US 12,323,822
App. No.
18/457,749
Granted
Jun 3, 2025
Kind
B2
Abstract

A communication system is disclosed in which a base station serves a communication area, wherein the communication area is formed by a plurality of directional beams each covering a respective portion of the communication area and each having a different respective beam identifier. The base station communicates control information, for a communication device (UE), using at least one directional beam associated with that communication device (e.g., a UE-specific operational beam set).

Claims (38)

1. A method performed by a mobile terminal, the method comprising:

receiving a synchronization signal and beam-specific reference signal via a beam, wherein

the beam-specific reference signal is based on a cell identity which corresponds to the synchronization signal via the beam and an identity corresponding to the beam, and the method further comprises:

receiving configuration information for a set of beams used for mobility;

monitoring a plurality of respective signal qualities of the beam;

detecting that at least one respective signal quality of the beam is degraded; and

performing adjustments on at least one radio link using at least one of the beams in the set used for mobility.

2. The method according to claim 1 , further comprising:

determining a time and/or frequency resource for receiving control information, based on system information and/or the beam.

3. The method according to claim 1 , wherein

the recovering the at least one radio link is performed without a Radio Resource Control (RRC) layer.

4. A mobile terminal comprising:

a memory storing instructions; and

at least one processor configured to process the instructions to:

receive a synchronization signal and beam-specific reference signal via a beam, wherein

the beam-specific reference signal is based on a cell identity which corresponds to the synchronization signal via the beam and an identity corresponding to the beam, and the at least one processor is further configured to process the instructions to:

receive configuration information for a set of beams used for mobility;

monitor a plurality of respective signal qualities of the beam;

detect that at least one respective signal quality of the beam is degraded; and

perform adjustments on at least one radio link using at least one of the beams in the set used for mobility.

5. The mobile terminal according to claim 4 , wherein the at least one processor is configured to process the instructions to:

determine a time and/or frequency resource for receiving control information, based on system information and/or the beam.

6. A method performed by a base station, the method comprising:

transmitting a synchronization signal and beam-specific reference signal via a beam, wherein

the beam-specific reference signal is based on a cell identity which is derived from the synchronization signal via the beam and an identity corresponding to the beam, and the method further comprises:

transmitting configuration information for a set of beams used for mobility;

performing adjustments on at least one radio link using at least one of the beams in the set used for mobility, in a case where at least one respective signal quality of the beam is determined, by a mobile terminal, to be degraded.

7. The method according to claim 6 , further comprising:

transmitting control information using a time and/or frequency resource determined by system information and/or the beam.

8. A base station comprising:

a memory storing instructions; and

at least one processor configured to process the instructions to:

transmit a synchronization signal and beam-specific reference signal via a beam, wherein

the beam-specific reference signal is based on a cell identity which is derived from the synchronization signal via the beam and an identity corresponding to the beam, and the at least one processor is further configured to process the instructions to:

transmit configuration information for a set of beams used for mobility;

performing adjustments on at least one radio link using at least one of the beams in the set used for mobility, in case where at least one respective signal quality of the beam is determined, by a mobile terminal, to be degraded.

9. The base station according to claim 8 , wherein the at least one processor is configured to process the instructions to:

transmit control information using a time and/or frequency resource determined by system information and/or the beam.

Priority Claims (1)
GB 1613902 · Aug 12, 2016 · national
Continuity (3)
Continuation 17366576 · Jul 2, 2021
Continuation 16324761
Related Publication 20230403571A1 · Dec 14, 2023
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