IP Library Granted Patent US 9,814,077
Granted Patent B2
US 9,814,077 · App. 15/254,736 · Granted Nov 7, 2017

Mobility in a distributed antenna system

Inventors: Thomas Aloysuis Sexton (Fort Worth, TX); Charles Arthur Cliff (Richardson, TX); Mark E. Pecen (Waterloo, CA); Paul James Lusina (Vancouver, CA)
Assignee: BlackBerry Limited
H04W74/0833H03M7/30H04L5/005H04L25/0232H04L25/0242H04L27/0006H04L67/12H04W4/02H04H20/38H04L69/28H04W72/0413H04W88/02
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Quick Facts
Patent No.
US 9,814,077
App. No.
15/254,736
Granted
Nov 7, 2017
Kind
B2
Abstract

A device, method or system implements operations to receive compressed samples of wireless transmissions from a plurality of user equipment (UEs) traveling through different communication regions in a wireless network, and detect information in the wireless transmissions of the UEs based on the compressed samples.

Claims (40)

1. A user equipment, comprising:

a processor configured to detect a transition of the user equipment from a first pilot zone to a second pilot zone in a wireless network having a plurality of pilot zones, wherein each pilot zone has an assigned set of pilot signals;

a receiver coupled to the processor and configured to receive a broadcast message comprising information identifying a current pilot zone, wherein the processor is configured to select a pilot signal from the assigned set of pilot signals for use in the second pilot zone based on at least one scheduled assignment, wherein the at least one scheduled assignment is based on a system clock; and

a transmitter coupled to the processor and configured to transmit a wireless transmission including the pilot signal.

2. The user equipment of claim 1 , wherein the transmitter is configured to transmit the wireless transmission including the pilot signal based on an S-sparse set of vectors.

3. The user equipment of claim 1 , wherein the at least one scheduled assignment is further based on an identifier (ID) of the user equipment.

4. The user equipment of claim 1 , wherein the processor is configured to detect the transition of the user equipment from the first pilot zone to the second pilot zone based on an overhead message.

5. The user equipment of claim 4 , wherein the overhead message is sent from a base station, and wherein the overhead message comprises at least one of a length of message frames, the value of M associated with the number of sensing waveforms (“φ j ”), or a sparseness S of uplink signals (“f”) being sent.

6. The user equipment of claim 1 , wherein at least two pilot zones are assigned the same set of pilot signals.

7. The user equipment of claim 1 , wherein the set of pilot signals includes a plurality of orthogonal waveforms.

8. The user equipment of claim 1 , wherein the set of pilot signals includes a plurality of pseudo random waveforms.

9. A method implemented by a user equipment comprising:

traveling from a first pilot zone to a second pilot zone in a wireless network having a plurality of pilot zones, each pilot zone having an assigned set of pilot signals;

receiving a broadcast message comprising information identifying a current pilot zone;

selecting a pilot signal from the assigned set of pilot signals for use in the second pilot zone based on at least one scheduled assignment, wherein the at least one scheduled assignment is based on a system clock; and

implementing a wireless transmission including the pilot signal.

10. The method of claim 9 , further comprising detecting a transition between the first pilot zone to the second pilot zone based on a received overhead message.

11. The method of claim 9 , wherein the at least one scheduled assignment is further based on an identifier (ID) of the user equipment.

12. The method of claim 9 , wherein implementing the wireless transmission including the pilot signal is based on an S-sparse set of vectors.

13. The method of claim 9 , wherein the traveling from the first pilot zone to the second pilot zone occurs at a speed such that a word period is less than approximately

1

10

th

of a coherence interval being at least, 10*T word ≠T coh .

14. The method of claim 9 , wherein at least two pilot zones are assigned the same set of pilot signals.

15. The method of claim 9 , wherein the set of pilot signals includes at least one of a plurality of orthogonal waveforms or a plurality of pseudo random waveforms.

16. A user equipment, comprising:

a processor configured to recognize when the user equipment exits a first pilot zone and enters a second pilot zone in a wireless network having a plurality of pilot zones, each pilot zone having an assigned set of pilot signals;

a receiver configured to receive a broadcast message comprising information identifying a current pilot zone, wherein the processor is configured to select a new pilot signal from the assigned set of pilot signals for conducting communications in the second pilot zone based on at least one scheduled assignment, wherein the at least one scheduled assignment is based on a system clock; and

a transmitter coupled to the processor and configured to implement wireless transmissions including the new pilot signal.

17. The user equipment of claim 16 , wherein the transmitter is configured to implement the wireless transmissions including the new pilot signal based on an S-sparse set of vectors.

18. The user equipment of claim 16 , wherein, when the user equipment exits the first pilot zone and enters the second pilot zone, the user equipment travels at a speed such that a word period is less than approximately

1

10

th

of a coherence interval being at least, 10*T word ≈T coh .

19. The user equipment of claim 16 , wherein the processor is configured to recognize when the user equipment exits the first pilot zone and enters the second pilot zone in response to receiving an overhead message.

20. The user equipment of claim 19 , wherein the overhead message is sent from a base station, and wherein the overhead message comprises at least one of a length of message frames, the value of M associated with the number of sensing waveforms (“φ j ”), or a sparseness S of uplink signals (“f”) being sent.

Assignments (6)
NUNC PRO TUNC ASSIGNMENT Recorded Jun 19, 2023
From: BLACKBERRY LIMITED
To: MALIKIE INNOVATIONS LIMITED
Reel/Frame 064270/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2023
From: BLACKBERRY LIMITED
To: MALIKIE INNOVATIONS LIMITED
Reel/Frame 064104/0103 →
CHANGE OF NAME Recorded Sep 15, 2017
From: RESEARCH IN MOTION LIMITED
To: BLACKBERRY LIMITED
Reel/Frame 043867/0864 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 2, 2016
From: PECEN, MARK; LUSINA, PAUL JAMES
To: RESEARCH IN MOTION LIMITED
Reel/Frame 039622/0669 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 2, 2016
From: SEXTON, THOMAS ALOYSUIS; CLIFF, CHARLES ARTHUR
To: RESEARCH IN MOTION CORPORATION
Reel/Frame 039622/0763 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 2, 2016
From: RESEARCH IN MOTION CORPORATION
To: RESEARCH IN MOTION LIMITED
Reel/Frame 039622/0798 →
Continuity (7)
Continuation 14332702 · Jul 16, 2014
Division 13161706 · Jun 16, 2011
Continuation 12635526 · Dec 10, 2009
Provisional Application 61439064 · Feb 3, 2011
Provisional Application 61363453 · Jul 12, 2010
Provisional Application 61121992 · Dec 12, 2008
Related Publication 20160374116A1 · Dec 22, 2016