IP Library Granted Patent US 9,843,956
Granted Patent B2
US 9,843,956 · App. 15/122,495 · Granted Dec 12, 2017

Prioritized cell identification and measurement method

Inventors: Yang Tang (Pleasanton, CA); Rui Huang (Beijing, CN); Candy Yiu (Portland, OR)
Assignee: Intel IP Corporation
H04W24/10H04L5/0048H04W24/02H04W72/0453
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Quick Facts
Patent No.
US 9,843,956
App. No.
15/122,495
Granted
Dec 12, 2017
Kind
B2
Abstract

A prioritized cell identification and measurement method is disclosed. The method classifies frequency layers to be monitored and measured by an user equipment into normal- and reduced-performance groups. Several different embodiments are described. Where appropriate, the corresponding signaling design is also suggested. User equipment can adopt one or several of these embodiments, and can change configurations in a semi-static manner based on operating conditions.

Claims (79)

1. A non-transient computer-readable medium containing programming instructions executable by a processor which, when executed, perform the following operations:

measuring, by an user equipment (UE) to operate in a wireless neighborhood comprising at least one enhanced node B (eNB) transceiver, frequency layers in a group, the size of the group being the number of frequency layers, Nfreq_g1, assigned to the group, the measuring to take place according to a measurement gap repetition period (MGRP) to be determined by the UE; and

obtaining a second number of measurement gaps, Minter_g1, to enable measurements of frequency layers assigned to the group, wherein Minter_g1 is to be derived from the size of the group and the MGRP;

wherein Minter g1, is to be obtained using the following formula

N

freq

_

g

1

M

Inter

_

g

1

N

freq

·

MGRP

480

.

2. The non-transient computer-readable medium of claim 1 , wherein the group size, Nfreq_g1, is less than a total number of frequency layers, Nfreq, to be measured by the UE.

3. The non-transient computer-readable medium of claim 1 , wherein the group does not include a serving frequency layer between the UE and its serving eNB.

4. The non-transient computer-readable medium of claim 1 , wherein the group comprises a frequency layer between the UE and other base stations in the wireless neighborhood.

5. The non-transient computer-readable medium of claim 1 , wherein the group comprises a frequency layer within the current radio access technology (RAT) in which the UE operates.

6. The non-transient computer-readable medium of claim 5 , wherein the group comprises a frequency layer between the eNB and a second UE in the wireless neighborhood.

7. The non-transient computer-readable medium of claim 5 , wherein the group comprises a frequency layer between a second UE and a second eNB in the wireless neighborhood.

8. The non-transient computer-readable medium of claim 1 wherein the wireless neighborhood is a heterogeneous network comprising entities operating in a radio access technology (RAT) of the UE and other entities operating in a different RAT from the UE.

9. The non-transient computer-readable medium of claim 8 , wherein one or more of the frequency layers in the group is outside the current RAT of the UE.

10. The non-transient computer-readable medium of claim 1 , wherein the group comprises a frequency layer between the UE and a second UE in the wireless neighborhood.

11. The non-transient computer-readable medium of claim 1 , wherein the group size, Nfreq_g1, is identical to a total number of frequency layers, Nfreq, to be measured by the UE.

12. An user equipment (UE) to be used in a wireless network, comprising:

a communication module to receive, from an evolved NodeB (eNB) in the wireless network, a number of frequency layers, Nfreq_g1, assigned to a group and a second number of measurement gaps, Minter_g1, for which measurements of frequency layers assigned to the group are to be performed, the UE to measure the frequency layers in the group according to a measurement gap repetition period (MGRP) to be determined by the UE;

wherein Minter_g1 is to be derived from the size of the group and the MGRP;

wherein Minter g1, is to be obtained using the following formula

N

freq

_

g

1

M

Inter

_

g

1

N

freq

·

MGRP

480

.

13. The UE of claim 12 , wherein the frequency layers in the group do not include a serving frequency layer between the UE and its serving eNB.

14. The UE of claim 12 , wherein the group comprises a frequency layer selected from a group consisting of:

a frequency layer between the UE and a second eNB;

a frequency layer within the current radio access technology (RAT) in which the UE is to operate;

a frequency layer between the eNB and a second UE;

a frequency layer between a second UE and a second eNB;

a frequency layer outside the current radio access technology of the UE; and

a frequency layer between the UE and a second UE.

15. The UE of claim 12 , wherein the number of frequency layers, Nfreq_g1, is identical to a total number of frequency layers, Nfreq, to be measured by the UE.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2020
From: INTEL CORPORATION
To: APPLE INC.
Reel/Frame 053307/0500 →
CONFIRMATORY ASSIGNMENT Recorded Jun 25, 2020
From: INTEL IP CORPORATION
To: INTEL CORPORATION
Reel/Frame 053051/0139 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2017
From: TANG, YANG; HUANG, RUI; YIU, CANDY
To: INTEL IP CORPORATION
Reel/Frame 041362/0729 →
Continuity (2)
Provisional Application 61990647 · May 8, 2014
Related Publication 20170078904A1 · Mar 16, 2017