IP Library Granted Patent US 12,381,671
Granted Patent B2
US 12,381,671 · App. 18/213,971 · Granted Aug 5, 2025

Selective suppression of uplink transmission in control regions

Inventors: Robert Baldemair (Solna, SE); Erik Dahlman (Stockholm, SE); Sorour Falahati (Stockholm, SE); Daniel Chen Larsson (Lund, SE); Stefan Parkvall (Bromma, SE)
Assignee: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
H04L5/0039H04L5/001H04L5/0042H04L5/0044H04L5/0053H04L5/0094H04W72/0453H04W72/21H04L5/0005
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Quick Facts
Patent No.
US 12,381,671
App. No.
18/213,971
Granted
Aug 5, 2025
Kind
B2
Abstract

Limited uplink bandwidth radio network devices are supported on wide bandwidth uplink carriers by configuring and controlling the use of multiple control regions within the uplink carrier bandwidth. In some embodiments, the total bandwidth of the uplink carrier is divided into a plurality of sub-band portions, wherein each sub-band portion includes at least one control region nominally dedicated to the transmission of uplink control signaling. Radio network devices are configured with a specified portion of the uplink carrier bandwidth for use for uplink transmission, which includes at least one control region. Radio network devices may be provisioned or provided with information regarding control regions reserved for control signaling by other radio network devices. The radio network devices may be dynamically configured to allow or suppress uplink data signaling in specified control regions, or portions thereof.

Claims (47)

1. A method, implemented by a radio network device operative in a wireless communication network, of transmitting uplink data and uplink control signaling to the network, the method comprising:

being configured by higher layer signaling in a System Information message from a base station, to operate over a specified frequency portion of a full, continuous bandwidth of an uplink carrier, wherein the specified portion is less than the full carrier bandwidth;

transmitting uplink data and uplink control signaling within the specified portion for the full duration of a defined sub-frame in time; and

transmitting the uplink control signaling in at least one control region within the specified portion;

wherein the full, continuous bandwidth of the uplink carrier is logically divided into two or more sub-band portions, and wherein at least one sub-band portion includes at least one control region; and

wherein being configured to operate comprises, prior to transmitting uplink data or uplink control signaling, receiving, in the System Information message from the base station, information regarding the full, continuous bandwidth of the uplink carrier and identifying the sub-band portions.

2. The method of claim 1 ,

further comprising, prior to receiving information identifying the sub-band portions, transmitting uplink bandwidth capability of the radio network device to the network; and

wherein the specified portion of the full, continuous bandwidth of the uplink carrier is the uplink bandwidth on which the radio network device is capable or configured to transmit.

3. The method of claim 2 further comprising:

receiving dynamic signaling indicating for which control regions, within the specified portion, the transmission of uplink data signaling should be suppressed; and

suppressing the transmission of uplink data signaling in the indicated control regions within the specified portion.

4. The method of claim 1 wherein transmitting uplink data and uplink control signaling over the specified portion of a full, continuous bandwidth of an uplink carrier comprises:

subtracting from the specified portion, at least part of a control region within the specified portion, yielding a reduced specified portion of the full, continuous bandwidth of the uplink carrier; and

transmitting uplink data within the reduced specified portion of the full, continuous bandwidth of the uplink carrier.

5. A radio network device operative in a wireless communication network, comprising:

one or more antennas;

a transceiver operatively connected to the antennas; and

processing circuitry operatively connected to the transceiver, and operative to cause the transceiver to

be configured by higher layer signaling in a System Information message from a base station to operate over a specified frequency portion of a full, continuous bandwidth of an uplink carrier, wherein the specified portion is less than the full carrier bandwidth;

transmit uplink data and uplink control signaling within the specified portion for the full duration of a defined sub-frame in time; and

transmit the uplink control signaling in at least one control region within the specified portion;

wherein the full, continuous bandwidth of the uplink carrier is logically divided into two or more sub-band portions, and wherein at least one sub-band portion includes at least one control region; and

wherein the processing circuitry is further operative to cause the transceiver to receive, in the System Information message from the base station, information regarding the full, continuous bandwidth of the uplink carrier and identifying the sub-band portions.

6. The radio network device of claim 5 , wherein

the processing circuitry is further operative to cause the transceiver to transmit uplink bandwidth capability of the radio network device to the network; and

the specified portion of the full, continuous bandwidth of the uplink carrier is the uplink bandwidth on which the radio network device is capable or configured to transmit.

7. The radio network device of claim 6 wherein the processing circuitry is further operative to cause the transceiver to:

receive dynamic signaling indicating for which control regions, within the specified portion, the transmission of uplink data signaling should be suppressed; and

suppress the transmission of uplink data signaling in the indicated control regions within the specified portion.

8. The radio network device of claim 5 wherein the processing circuitry is operative to cause the transceiver to transmit uplink data and uplink control signaling over the specified portion of a full, continuous bandwidth of an uplink carrier by

subtracting from the specified portion, at least part of a control region within the specified portion, yielding a reduced specified portion of the full, continuous bandwidth of the uplink carrier; and

causing the transceiver to transmit uplink data within the reduced specified portion of the full, continuous bandwidth of the uplink carrier.

9. A method, implemented by a radio network node operative in a wireless communication network, of receiving uplink data and uplink control signaling from a radio network device, the method comprising:

configuring a radio network device by higher layer signaling in a System Information message to operate over a specified frequency portion of a full, continuous bandwidth of an uplink carrier, wherein the specified portion is less than the full carrier bandwidth;

receiving uplink data and uplink control signaling from the radio network device within the specified portion for the full duration of a defined sub-frame in time; and

receiving the uplink control signaling from the radio network device in at least one control region within the specified portion;

wherein the full, continuous bandwidth of the uplink carrier is logically divided into two or more sub-band portions, and wherein at least one sub-band portion includes at least one control region; and

further comprising, prior to receiving uplink data or uplink control signaling, transmitting, in the System Information message, information regarding the full, continuous bandwidth of the uplink carrier and identifying the sub-band portions.

10. The method of claim 9 ,

further comprising, prior to transmitting information identifying the sub-band portions, receiving uplink bandwidth capability of the radio network device; and

wherein the specified portion of the full, continuous bandwidth of the uplink carrier is the uplink bandwidth on which the radio network device is capable or configured to transmit.

11. The method of claim 10 further comprising:

transmitting to the radio network device dynamic signaling indicating for which control regions, within the specified portion, the transmission of uplink data signaling should be suppressed.

12. The method of claim 9 wherein receiving uplink data within the specified portion of a full, continuous bandwidth of an uplink carrier comprises:

receiving uplink data within a reduced specified portion of the full, continuous bandwidth of the uplink carrier;

wherein the reduced specified portion is determined by a radio network device subtracting from the specified portion of the full, continuous bandwidth of an uplink carrier, at least part of a control region within the specified portion, yielding the reduced specified portion of the full, continuous bandwidth of the uplink carrier.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2023
From: BALDEMAIR, ROBERT; DAHLMAN, ERIK; FALAHATI, SOROUR; LARSSON, DANIEL; PARKVALL, STEFAN
To: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
Reel/Frame 064055/0588 →
CHANGE OF NAME Recorded Jun 26, 2023
From: LARSSON, DANIEL
To: LARSSON, DANIEL CHEN
Reel/Frame 064103/0808 →
Continuity (5)
Continuation 17337800 · Jun 3, 2021
Continuation 16698351 · Nov 27, 2019
Continuation 15760499
Provisional Application 62417208 · Nov 3, 2016
Related Publication 20230336291A1 · Oct 19, 2023
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