IP Library › Granted Patent US 11,895,507
Granted Patent B2
US 11,895,507 · App. 17/187,563 · Granted Feb 6, 2024

Spectrum sharing optimization within a base station node

Inventor: David Jones (Bellevue, WA)
Assignee: T-Mobile USA, Inc.
H04W16/14H04W16/10H04W24/08H04W24/10H04W28/0268H04W28/06H04W72/0453H04W72/569H04W72/0446
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Quick Facts
Patent No.
US 11,895,507
App. No.
17/187,563
Granted
Feb 6, 2024
Kind
B2
Abstract

This disclosure describes techniques that enable a telecommunications network to share available bandwidth within a cell of base station node between different air-interface technologies, such as Long-Term Evolution (LTE) and 5G-New Radio (5G-NR). This disclosure further enables spectrum allocation to service segments of a base station node. A spectrum allocation controller is described that is configured to identify, within a service area of a base station node, available spectrum, and in doing so, allocate available spectrum to non-overlapping service segments.

Claims (76)

1. A system, comprising:

one or more processors;

memory coupled to the one or more processors, the memory including one or more modules that are executable by the one or more processors to:

monitor network traffic data within a service area of a base station node that includes at least one cell;

identify available spectrums within the service area, the available spectrums including a citizen broadband radio service spectrum (CBRS) and a licensed spectrum that corresponds to a Long-Term Evolution (LTE) spectrum;

allocate a first spectrum of the available spectrums to an initial service segment of the service area, the initial service segment extending outward from the base station node to an initial service edge;

allocate the CBRS to a second service segment of the service area, the second service segment extending outward from the initial service edge to a second service edge;

generate scheduling criteria to allocate the network traffic that is transmitted within the initial service segment to the first spectrum and the network traffic that is transmitted within the second service segment to the CBRS;

in response to a determination that a spectrum allocation of the CBRS is time expired, allocate the licensed spectrum to the second service segment of the service area, and generate additional scheduling criteria to allocate network traffic that is transmitted with the second service segment to the licensed spectrum;

analyze the network traffic data to determine an LTE bandwidth requirement;

identify a select number of subframes of a plurality of subframes associated with the at least one cell for configuration as Multicast Broadcast Single Frequency Network (MBSFN) subframes for LTE communication transmissions via the licensed spectrum, based at least in part on the LTE bandwidth requirement; and

generate optimization data for delivery to the base station node to configure the select number of subframes as the MBSFN subframes.

2. The system of claim 1 , wherein the available spectrums further include a 5G-New Radio (5G-NR) spectrum.

3. The system of claim 1 , wherein the available spectrums further includes a 5G-NR spectrum, and wherein one or more modules are further executable by the one or more processors to:

analyze the network traffic data to determine a 5G-NR bandwidth requirement;

determine a bandwidth part (BWP) for 5G-NR communication transmissions at the base station node, based at least in part on the 5G-NR bandwidth requirement; and

generate optimization data for delivery to the base station node to configure the BWP within the at least one cell.

4. The system of claim 1 , wherein the one or more modules are further executable by the one or more processors to:

identify client devices operating within the initial service segment, based at least in part on the network traffic data, and

wherein the scheduling criteria further include Radio Resource Control (RRC) signal data that is to be transmitted to the client devices, the RRC signal data directing the client devices to operate within the first spectrum.

5. The system of claim 1 , wherein the one or more modules are further executable by the one or more processors to:

determine a quality of service (QOS) for instances of the network traffic data that are served by the first spectrum within the initial service segment;

allocate an additional spectrum of the available spectrums to the initial service segment, based at least in part on the QoS being less than a predetermined QoS threshold; and

generate additional scheduling criteria to allocate the network traffic within the initial service segment to the second spectrum.

6. The system of claim 1 , wherein the one or more modules are further executable by the one or more processors to:

allocate a third spectrum of the available spectrums to a third service segment of the service area, the third service segment extending outward from the second service edge to a subsequent service edge, and wherein the scheduling criteria further includes an additional allocation of the network traffic that is transmitted within the third service segment to the third spectrum.

7. The system of claim 1 , wherein the one or more modules are further executable by the one or more processors to:

determine a QOS for the network traffic data transmitted within the initial service segment; and

in response to the QoS being less than a predetermined QoS threshold, replace an allocation of the first spectrum to the initial service segment with a different spectrum.

8. The system of claim 6 , wherein the one or more modules are further executable by the one or more processors to:

determine a QOS for the network traffic data transmitted within the third service segment; and

in response to the QoS being less than a predetermined QoS threshold, replace an allocation of the second spectrum to the second service segment with an alternative spectrum.

9. The system of claim 6 , wherein the third spectrum of the third service segment includes an additional licensed spectrum, and wherein the additional licensed spectrum corresponds to a 5G-NR spectrum, and wherein the one or more modules are further executable by the one or more processors to:

identify client devices operating within the third service segment that are configured to use the 5G-NR spectrum, based at least in part on analysis of the network traffic data; and

determine a BWP for 5G-NR communication transmissions associated with a subset of the client devices, based at least in part on a bandwidth requirement associated with the subset of client devices, and

wherein, the scheduling criteria allocates the network traffic associated with the subset of client devices to the BWP.

10. The system of claim 9 , wherein the one or more modules are further executable by the one or more processors to:

determine an operating frequency bandwidth of the subset of client devices, and

wherein, the BWP for the subset of client devices is based at least in part on the operating frequency bandwidth.

11. A computer-implemented method, comprising:

under control of one or more processors:

identifying available spectrums within a service area of a base station node that includes at least one cell, the available spectrums including a citizen broadband radio service spectrum (CBRS) and a licensed spectrum that corresponds to a 5G-NR spectrum;

allocating a first spectrum of the available spectrums to a first service segment of the service area, the first service segment extending outward from the base station node to a first service edge;

allocating the CBRS to a second service segment of the service area, the second service segment extending outward from the first service edge to a second service edge;

generating scheduling criteria to allocate network traffic transmitted within the first service segment to the first spectrum and network traffic transmitted within the second service segment to the CBRS;

in response to determining that a spectrum allocation of the CBRS is time expired, allocating the licensed spectrum to the second service segment of the service area, and generating additional scheduling criteria to allocate network traffic that is transmitted with the second service segment to the licensed spectrum;

analyzing network traffic within the second service segment to determine a 5G-New Radio (5G-NR) bandwidth requirement;

identifying a select number of subframes of a plurality of subframes associated with the at least one cell for configuration as Multicast Broadcast Single Frequency Network (MBSFN) subframes for long-Term Evolution (LTE) communication transmissions, based at least in part on the 5G-NR bandwidth requirement; and

generating optimization data for delivery to the base station node to configure the select number of subframes as the MBSFN subframes.

12. The computer-implemented method of claim 11 , further comprising:

allocating a third spectrum of the available spectrums to a third service segment of the service area, the third service segment extending outward from the second service edge to a subsequent service edge, the third spectrum including an additional licensed spectrum.

13. The computer-implemented method of claim 12 , further comprising:

analyzing the network traffic within the third service segment to determine an additional 5G-NR bandwidth requirement;

determining a bandwidth part (BWP) for 5G-NR communication transmissions at the base station node, based at least in part on the additional 5G-NR bandwidth requirement; and

generating optimization data for delivery to the base station node to configure the BWP within the at least one cell.

14. The computer-implemented method of claim 11 , further comprising:

detecting a client device operating within the first service segment, and

wherein, the scheduling criteria include Radio Resource Control (RRC) signal data to configure the client device to use the first spectrum for communication transmissions within the first service segment.

15. The computer-implemented method of claim 11 , further comprising:

detecting a change in geolocation of a client device from the first service segment to the second service segment; and

generating further scheduling criteria that include additional RRC signal data to configure the client device to use the CBRS for communication transmissions within the second service segment.

16. One or more non-transitory computer-readable media collectively storing computer-executable instructions that, when executed with one or more processors, collectively cause computers to perform acts comprising:

monitoring network traffic within a service area of a base station node that includes at least one cell;

identifying multiple spectrums, the multiple spectrums including a citizen broadband radio service spectrum (CBRS) and a licensed spectrum;

allocating a first spectrum of the multiple spectrums to a first service segment of the service area, the first service segment extending outward from the base station node to a first service edge;

allocating the CBRS to a second service segment of the service area, the second service segment extending outward from the first service edge to a second service edge;

generating scheduling criteria to allocate the network traffic that is transmitted within the first service segment to the first spectrum and the network traffic that is transmitted within the second service segment to the CBRS;

in response to determining that a spectrum allocation of the CBRS is time expired, allocating the licensed spectrum to the second service segment of the service area, and generating additional scheduling criteria to allocate network traffic that is transmitted with the second service segment to the licensed spectrum;

identifying, within the second service segment, a first set of client devices configured to operate within a 5G-New Radio (5G-NR) spectrum and a second set of client devices configured to operate within a long-Term Evolution (LTE);

identifying a select number of subframes of a plurality of subframes associated with the at least one cell for configuration as Multicast Broadcast Single Frequency Network (MBSFN) subframes for LTE communication transmissions via an LTE spectrum; and

generating optimization data for delivery to the base station node to configure the select number of subframes as the MBSFN subframes.

17. The one or more non-transitory computer-readable media of claim 16 , and wherein acts further comprise:

identifying a plurality of client devices within the second service segment that are configured to operate within a 5G-NR spectrum;

determining a bandwidth part (BWP) for 5G-NR communication determining a bandwidth transmissions at the base station node, based at least in part on a bandwidth requirement associated with the plurality of client devices; and

generating optimization data for delivery to the base station node to configure the BWP within the at least one cell.

18. The one or more non-transitory computer-readable media of claim 16 , wherein the multiple spectrums further include an unlicensed spectrum, and wherein the first spectrum corresponds to the unlicensed spectrum.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2021
From: JONES, DAVID
To: T-MOBILE USA, INC.
Reel/Frame 055434/0636 →
Continuity (3)
Continuation In Part 16448817 · Jun 21, 2019
Provisional Application 62771546 · Nov 26, 2018
Related Publication 20210211887A1 · Jul 8, 2021
Cited By (2)
US 12,238,699 US 12,273,770