IP Library Granted Patent US 12,207,135
Granted Patent B2
US 12,207,135 · App. 17/659,404 · Granted Jan 21, 2025

Use of per-connection spectral efficiency as basis for dynamic control of air-interface communication with dual-connected device

Inventor: Sreekar Marupaduga (Overland Park, KS)
Assignee: T-Mobile USA, Inc.
H04W28/0933H04W76/15H04W92/10
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,207,135
App. No.
17/659,404
Granted
Jan 21, 2025
Kind
B2
Abstract

A method and system for controlling data split of a dual-connected user equipment device (UE) when the UE has at least two co-existing air-interface connections including a first air-interface connection with a first access node and a second air-interface connection with a second access node. An example method includes (i) comparing a level of spectral efficiency of the first air-interface connection with a level of spectral efficiency of the second air-interface connection, (ii) based at least on the comparing, establishing a split ratio that defines a distribution of data flow of the UE between at least the first air-interface connection and the second air-interface connection, and (iii) based on the establishing, causing the established split ratio to be applied. Further the method could include using the comparison as a basis to set one of the UE's air-interface connections as the UE's primary uplink path.

Claims (52)

1. A method for controlling uplink communication from a user equipment device (UE) when the UE has at least two co-existing air-interface connections including a first air-interface connection with a first access node and a second air-interface connection with a second access node, the method comprising:

comparing a level of spectral efficiency of the first air-interface connection with a level of spectral efficiency of the second air-interface connection;

selecting, based at least on the comparing, one of the first and second air-interface connections that has a greater level of spectral efficiency to be a primary uplink path of the UE to which the UE restricts uplink user-plane transmission from the UE unless and until a trigger condition causes the UE to split the uplink user-plane transmission between the first and second air-interface connections;

establishing, based at least on the comparing, a split ratio for the uplink user-plane transmission between the first and second air-interface connections upon occurrence of the trigger condition, wherein the split ratio results in a majority of the uplink user-plane transmission being sent over the primary uplink path; and

causing the UE to operate in accordance with the selecting and the establishing.

2. The method of claim 1 , wherein the method is carried out by a given one of the first and second access nodes, and wherein causing the UE to operate in accordance with the selecting comprises transmitting from the given access node to the UE a directive that causes the UE to use the selected air-interface connection as the primary uplink path of the UE.

3. The method of claim 2 , wherein transmitting the directive to the UE comprises transmitting to the UE a Radio Resource Control (RRC) connection reconfiguration message defining the directive.

4. The method of claim 1 , wherein selecting, based at least on the comparing, one of the first and second air-interface connections to be the primary uplink path of the UE comprises:

determining, based on the comparing, that the level of spectral efficiency of the first air-interface connection is greater than the level of spectral efficiency of the second air-interface connection; and

based at least on the determining, selecting the first air-interface connection to be the primary uplink path of the UE.

5. The method of claim 1 , further comprising:

determining the level of spectral efficiency of the first air-interface connection based on spectral efficiency of one or more cells on which the first air-interface connection is defined; and

determining the level of spectral efficiency of the second air-interface connection based on spectral efficiency of one or more cells on which the second air-interface connection is defined,

wherein comparing the level of spectral efficiency of the first air-interface connection with the level of spectral efficiency of the second air-interface connection comprises comparing the determined level of spectral efficiency of the first air-interface connection with the determined level of spectral efficiency of the second air-interface connection.

6. The method of claim 1 , wherein the first air-interface connection operates in accordance with a first ratio access technology (RAT) and the second air-interface connection operates in accordance with a second RAT different than the first RAT.

7. The method of claim 1 , further comprising:

after selecting one of the first and second air-interface connections to be the primary uplink path of the UE and causing the UE to operate in accordance with the selecting, later causing the other of the first and second air-interface connections to be the primary uplink path of the UE.

8. A computing system configured to control uplink communication from a user equipment device (UE) when the UE has at least two co-existing air-interface connections including a first air-interface connection with a first access node and a second air-interface connection with a second access node, the computing system comprising:

a processor;

non-transitory data storage; and

program instructions stored in the non-transitory data storage and executable by the processor to cause the computing system to carry out operations including:

comparing a level of spectral efficiency of the first air-interface connection with a level of spectral efficiency of the second air-interface connection,

selecting, based at least on the comparing, one of the first and second air-interface connections that has a greater level of spectral efficiency to be a primary uplink path of the UE to which the UE restricts uplink user-plane transmission from the UE unless and until a trigger condition causes the UE to split the uplink user-plane transmission between the first and second air-interface connections,

establishing, based at least on the comparing, a split ratio for the uplink user-plane transmission between the first and second air-interface connections upon occurrence of the trigger condition, wherein the split ratio results in a majority of the uplink user-plane transmission being sent over the primary uplink path, and

causing the UE to operate in accordance with the selecting and the establishing.

9. The computing system of claim 8 , wherein the system is implemented at a given one of the first and second access nodes, and wherein causing the UE to operate in accordance with the selecting comprises transmitting from the given access node to the UE a directive that causes the UE to use the selected air-interface connection as the primary uplink path of the UE.

10. The computing system of claim 9 , wherein transmitting the directive to the UE comprises transmitting to the UE a Radio Resource Control (RRC) connection reconfiguration message defining the directive.

11. The computing system of claim 8 , wherein selecting, based at least on the comparing, one of the first and second air-interface connections to be the primary uplink path of the UE comprises:

determining, based on the comparing, that the level of spectral efficiency of the first air-interface connection is greater than the level of spectral efficiency of the second air-interface connection; and

based at least on the determining, selecting the first air-interface connection to be the primary uplink path of the UE.

12. The computing system of claim 8 , wherein the operations further include:

determining the level of spectral efficiency of the first air-interface connection based on spectral efficiency of one or more cells on which the first air-interface connection is defined; and

determining the level of spectral efficiency of the second air-interface connection based on spectral efficiency of one or more cells on which the second air-interface connection is defined,

wherein comparing the level of spectral efficiency of the first air-interface connection with the level of spectral efficiency of the second air-interface connection comprises comparing the determined level of spectral efficiency of the first air-interface connection with the determined level of spectral efficiency of the second air-interface connection.

13. The computing system of claim 8 , wherein the first air-interface connection operates in accordance with a first ratio access technology (RAT) and the second air-interface connection operates in accordance with a second RAT different than the first RAT.

14. The computing system of claim 8 , wherein the operations further include:

after selecting one of the first and second air-interface connections to be the primary uplink path of the UE and causing the UE to operate in accordance with the selecting, later causing the other of the first and second air-interface connections to be the primary uplink path of the UE.

15. At least one non-transitory computer-readable medium having stored thereon program instructions executable by at least one processing unit to carry out operations for controlling uplink communication from a user equipment device (UE) when the UE has at least two co-existing air-interface connections including a first air-interface connection with a first access node and a second air-interface connection with a second access node, the operations comprising:

comparing a level of spectral efficiency of the first air-interface connection with a level of spectral efficiency of the second air-interface connection;

selecting, based at least on the comparing, one of the first and second air-interface connections that has a greater level of spectral efficiency to be a primary uplink path of the UE to which the UE restricts uplink user-plane transmission from the UE unless and until a trigger condition causes the UE to split the uplink user-plane transmission between the first and second air-interface connections;

establishing, based at least on the comparing, a split ratio for the uplink user-plane transmission between the first and second air-interface connections upon occurrence of the trigger condition, wherein the split ratio results in a majority of the uplink user-plane transmission being sent over the primary uplink path; and

causing the UE to operate in accordance with the selecting and the establishing.

16. The at least one non-transitory computer-readable medium of claim 15 , wherein causing the UE to operate in accordance with the selecting comprises transmitting to the UE a directive that causes the UE to use the selected air-interface connection as the primary uplink path of the UE, wherein transmitting the directive to the UE comprises transmitting to the UE a Radio Resource Control (RRC) connection reconfiguration message defining the directive.

17. The at least one non-transitory computer-readable medium of claim 15 , wherein selecting, based at least on the comparing, one of the first and second air-interface connections to be the primary uplink path of the UE comprises:

determining, based on the comparing, that the level of spectral efficiency of the first air-interface connection is greater than the level of spectral efficiency of the second air-interface connection; and

based at least on the determining, selecting the first air-interface connection to be the primary uplink path of the UE.

18. The at least one non-transitory computer-readable medium of claim 15 , wherein the operations further comprise:

determining the level of spectral efficiency of the first air-interface connection based on spectral efficiency of one or more cells on which the first air-interface connection is defined; and determining the level of spectral efficiency of the second air-interface connection based on spectral efficiency of one or more cells on which the second air-interface connection is defined,

wherein comparing the level of spectral efficiency of the first air-interface connection with the level of spectral efficiency of the second air-interface connection comprises comparing the determined level of spectral efficiency of the first air-interface connection with the determined level of spectral efficiency of the second air-interface connection.

19. The at least one non-transitory computer-readable medium of claim 15 , wherein the first air-interface connection operates in accordance with a first ratio access technology (RAT) and the second air-interface connection operates m accordance with a second RAT different than the first RAT.

20. The at least one non-transitory computer-readable medium of claim 15 , wherein the operations further comprise:

after selecting one of the first and second air-interface connections to be the primary uplink path of the UE and causing the UE to operate in accordance with the selecting, later causing the other of the first and second air-interface connections to be the primary uplink path of the UE.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 4, 2023
From: SPRINT SPECTRUM LP
To: T-MOBILE USA, INC.
Reel/Frame 065128/0377 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2022
From: MARUPADUGA, SREEKAR
To: SPRINT SPECTRUM L.P.
Reel/Frame 059611/0836 →
Continuity (2)
Division 16949770 · Nov 13, 2020
Related Publication 20240107377A1 · Mar 28, 2024
References Cited (18)
US 8185060B2 · Agashe et al. · 2012 [cited by applicant]
US 8285321B2 · Ji et al. · 2012 [cited by applicant]
US 9392515B2 · Wang et al. · 2016 [cited by applicant]
US 9503942B1 · Prock et al. · 2016 [cited by applicant]
US 9699800B2 · Himayat et al. · 2017 [cited by applicant]
US 10104584B2 · Cai · 2018 [cited by applicant]
US 10141983B2 · Kim et al. · 2018 [cited by applicant]
US 10237735B2 · Kim et al. · 2019 [cited by applicant]
US 10292140B2 · Nam et al. · 2019 [cited by applicant]
US 10314055B1 · Marupaduga et al. · 2019 [cited by applicant]
US 20150085800A1 · Sivanesan · 2015 [cited by examiner]
US 20160234714A1 · Basu Mallick et al. · 2016 [cited by applicant]
US 20190098606A1 · Sharma et al. · 2019 [cited by applicant]
US 20200275314A1 · Mattam · 2020 [cited by examiner]
US 20210377804A1 · Sivaraj · 2021 [cited by examiner]
US 20220386172A1 · Xie · 2022 [cited by examiner]
US 20230097437A1 · Chung · 2023 [cited by examiner]
Tariq Mumtaz, et al., “Dual Connectivity-Based Mobility Management and Data Split Mechanism in 4G/5G Cellular Networks,” IEEE Access, vol. 8, May 20, 2020. [cited by applicant]