IP Library Granted Patent US 11,979,948
Granted Patent B2
US 11,979,948 · App. 18/067,741 · Granted May 7, 2024

Methods, wireless communications networks and infrastructure equipment

Inventors: Samuel Asangbeng Atungsiri (Basingstoke, GB); Kazuyuki Shimezawa (Basingstoke, GB)
Assignee: SONY GROUP CORPORATION
H04W88/182H04B7/2606H04L27/2613H04W88/04
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Quick Facts
Patent No.
US 11,979,948
App. No.
18/067,741
Granted
May 7, 2024
Kind
B2
Abstract

A method of controlling communications within a wireless communications network is provided. The method comprises receiving, at a first infrastructure equipment acting as a donor node connected to a core network part of a wireless communications network, signals representing data from one or more others of infrastructure equipment, the data having been received at the one or more others of the infrastructure equipment from one or more communications devices or from other infrastructure equipment, and transmitting, by the first infrastructure equipment, the data from the one or more others of the infrastructure equipment to the core network part of the wireless communications network. At least one of the infrastructure equipment uses at least one spectral efficiency enhancing technique to receive the signals, the at least one spectral efficiency enhancing technique allowing the at least one infrastructure equipment to receive the signals in the backhaul communications link.

Claims (28)

1. A wireless communications network, comprising:

a plurality of infrastructure equipment each being configured to communicate with one or more others of the infrastructure equipment via a backhaul communications link, one or more of the infrastructure equipment each being configured to communicate with one or more communications devices via an access link, wherein a first of the infrastructure equipment is configured to act as a donor node connected to a core network part of the wireless communications network,

wherein the first infrastructure equipment comprises circuitry configured to

use at least one spectral efficiency enhancing technique to receive signals representing data from one or more others of the infrastructure equipment, the at least one spectral efficiency enhancing technique allowing the infrastructure equipment to receive the signals in the backhaul communications link, the at least one spectral efficiency enhancing technique not allowing the infrastructure equipment to receive the signals in the access link,

wherein the at least one spectral efficiency enhancing technique comprises transmitting by the infrastructure equipment to the one or more other infrastructure equipment an indication that the one or more other infrastructure equipment allocate, for the up-link and down-link, an increased amount of radio resources for the backhaul communications link than compared to the radio resources for the access link.

2. The wireless communications network of claim 1 , wherein the at least one spectral efficiency enhancing technique comprises receiving the signals using one or more beams in which power of each of the signals is focused, each of the one or more beams being separately identifiable and forming a directional bias with respect to the at least one infrastructure equipment.

3. The wireless communications network of claim 2 , wherein the data is modulated onto the signals with a higher order modulation scheme than when the at least one spectral efficiency enhancing technique was not used to receive the signals.

4. The wireless communications network of claim 2 , wherein the signals are transmitted with a higher code rate than when the at least one spectral efficiency enhancing technique was not used to receive the signals.

5. The wireless communications network of claim 1 , wherein the increased amount of radio resources being allocated to the one or more other infrastructure equipment by aggregating a plurality of smaller units of radio resources.

6. The wireless communications network of claim 5 , wherein the at least one spectral efficiency enhancing technique comprises increasing a maximum number of layers onto which the signals are multiplexed using a multiple-input and multiple-output, MIMO, multiplexing process.

7. The wireless communications network of claim 1 , wherein the at least one spectral efficiency enhancing technique comprises transmitting the signals by the one or more others of the infrastructure equipment and/or the one or more of the communications devices with a smaller density of demodulation reference signals, DM-RS, in the frequency domain on the backhaul communications link than compared to on the access link.

8. The wireless communications network of claim 7 , wherein the at least one spectral efficiency enhancing technique comprises transmitting the signals on the backhaul communications link with a smallest DM-RS density of a plurality of predefined DM-RS densities of the access link.

9. The wireless communications network of claim 1 , wherein the at least one spectral efficiency enhancing technique comprises transmitting the signals by the one or more others of the infrastructure equipment with a smaller density of demodulation reference signals, DM-RS, in the time domain on the backhaul communications link than compared to on the access link.

10. The wireless communications network of claim 9 , wherein the at least one spectral efficiency enhancing technique comprises transmitting the signals on the backhaul communications link with a smallest time domain DM-RS density of a plurality of predefined time domain DM-RS densities of the access link.

11. The wireless communications network of claim 1 , wherein radio resources for the backhaul communications link and radio resources for the access link are separated from one another in the frequency domain.

12. The wireless communications network of claim 1 , wherein radio resources for the backhaul communications link and radio resources for the access link are separated from one another in the time domain.

13. Circuitry for a wireless communications network comprising a plurality of infrastructure equipment each being configured to communicate with one or more others of the infrastructure equipment via a backhaul communications link, one or more of the infrastructure equipment each being configured to communicate with one or more communications devices via an access link, wherein a first of the infrastructure equipment is configured to act as a donor node connected to a core network part of the wireless communications network and comprises transceiver circuitry and controller circuitry configured in combination:

to use at least one spectral efficiency enhancing technique to receive signals representing data from one or more others of the infrastructure equipment, the at least one spectral efficiency enhancing technique allowing the infrastructure equipment to receive the signals in the backhaul communications link, the at least one spectral efficiency enhancing technique not allowing the infrastructure equipment to receive the signals in the access link,

wherein the at least one spectral efficiency enhancing technique comprises transmitting, by the infrastructure equipment to the one or more other infrastructure equipment, an indication that the one or more other infrastructure equipment allocate, for the up-link and down-link, an increased amount of radio resources for the backhaul communications link than compared to the radio resources for the access link.

14. Circuitry for a first infrastructure equipment forming part of a wireless communications network comprising a plurality of other infrastructure equipment, the first infrastructure equipment and the plurality of other infrastructure equipment each being configured to communicate with one or more others of the infrastructure equipment via a backhaul communications link, one or more of the infrastructure equipment each being configured to communicate with one or more communications devices via an access link, wherein the first infrastructure equipment is configured to act as a donor node connected to a core network part of the wireless communications network and comprises transceiver circuitry and controller circuitry configured in combination:

to use at least one spectral efficiency enhancing technique to receive the signals representing data from one or more others of the infrastructure equipment, the at least one spectral efficiency enhancing technique allowing the infrastructure equipment to receive the signals in the backhaul communications link, the at least one spectral efficiency enhancing technique not allowing the infrastructure equipment to receive the signals in the access link,

wherein the at least one spectral efficiency enhancing technique comprises transmitting, by the infrastructure equipment to the one or more other infrastructure equipment, an indication that the one or more other infrastructure equipment allocate, for the up-link and down-link, an increased amount of radio resources for the backhaul communications link than compared to the radio resources for the access link.

15. The circuitry for the first infrastructure equipment of claim 14 , wherein the at least one spectral efficiency enhancing technique comprises receiving the signals using one or more beams in which power of each of the signals is focused, each of the one or more beams being separately identifiable and forming a directional bias with respect to the at least one infrastructure equipment.

16. The circuitry for the first infrastructure equipment of claim 15 , wherein the data is modulated onto the signals with a higher order modulation scheme than when the at least one spectral efficiency enhancing technique was not used to receive the signals.

17. The circuitry for the first infrastructure equipment of claim 15 , wherein the signals are transmitted with a higher code rate than when the at least one spectral efficiency enhancing technique was not used to receive the signals.

18. The circuitry for the first infrastructure equipment of claim 14 , wherein the increased amount of radio resources being allocated to the one or more other infrastructure equipment by aggregating a plurality of smaller units of radio resources.

19. The circuitry for the first infrastructure equipment of claim 18 , wherein the at least one spectral efficiency enhancing technique comprises increasing a maximum number of layers onto which the signals are multiplexed using a multiple-input and multiple-output, MIMO, multiplexing process.

20. The circuitry for the first infrastructure equipment of claim 14 , wherein the at least one spectral efficiency enhancing technique comprises transmitting the signals by the one or more others of the infrastructure equipment and/or the one or more of the communications devices with a smaller density of demodulation reference signals, DM-RS, in the frequency domain on the backhaul communications link than compared to on the access link.

Assignments (1)
CHANGE OF NAME Recorded Dec 19, 2022
From: SONY CORPORATION
To: SONY GROUP CORPORATION
Reel/Frame 062153/0371 →
Priority Claims (1)
EP 18167380 · Apr 13, 2018 · regional
Continuity (2)
Continuation 17046325
Related Publication 20230123661A1 · Apr 20, 2023