IP Library Granted Patent US 10,327,151
Granted Patent B2
US 10,327,151 · App. 15/175,314 · Granted Jun 18, 2019

Wireless coverage testing systems and methods with unmanned aerial vehicles

Inventors: Lee Priest (Charlotte, NC); Charlie Terry (Charlotte, NC); Joshua Godwin (Charlotte, NC)
Assignee: ETAK Systems, LLC
H04W16/18G05D1/101H04L43/08H04W24/02B64C2201/127H04W24/06
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Quick Facts
Patent No.
US 10,327,151
App. No.
15/175,314
Granted
Jun 18, 2019
Kind
B2
Abstract

An Unmanned Aerial Vehicle (UAV)-based method of wireless coverage testing includes with a UAV comprising a wireless coverage testing configuration, flying the UAV in a route in a wireless coverage area associated with a cell tower; collecting measurement data via the wireless coverage testing configuration during the flying and associated with collected measurement data with location identifiers; and, subsequent to the flying, processing the collected measurement data with the location identifiers to provide an output detailing wireless coverage in the wireless coverage area including wireless coverage at ground level and above ground level to a set elevation.

Claims (33)

1. An Unmanned Aerial Vehicle (UAV)-based method of wireless coverage testing, the UAV-based method comprising:

with a UAV comprising a wireless coverage testing configuration, flying the UAV in a route in a wireless coverage area associated with a cell tower, wherein the wireless testing configuration includes two or more mobile devices disposed on the UAV and spaced at a minimum distance of at least one foot from one another to prevent interference;

collecting measurement data via the wireless coverage testing configuration during the flying and associating the collected measurement data with location identifiers, wherein the measurement data is collected via a first mobile device performing a test call during the flying and a second mobile device in a free or idle mode collecting associated measurement data during the flying; and

subsequent to the flying, processing the collected measurement data with the location identifiers to provide an output detailing wireless coverage in the wireless coverage area including wireless coverage at ground level and above ground level to a set elevation up to 1000′,

wherein the route comprises an overlapping region where the cell tower has a handoff with an adjacent cell tower, and

wherein the method comprises at least two flights for the flying and each of the flying steps for additional wireless coverage testing is performed with the UAV taking off and landing at a same location and a same launch orientation for each of the at least two flights at a cell site associated with the cell tower.

2. The UAV-based method of claim 1 , wherein the UAV comprises a frame disposed thereto with the two or more devices attached thereto.

3. The UAV-based method of claim 1 , wherein the location identifiers comprise at least two independent location identification techniques thereby improving accuracy thereof.

4. The UAV-based method of claim 1 , wherein the route comprises a substantially circular pattern at a fixed elevation about the cell tower.

5. The UAV-based method of claim 1 , wherein the route comprises a substantially circular pattern at a varying elevations about the cell tower.

6. The UAV-based method of claim 1 , wherein the wireless coverage testing configuration is configured to measure a plurality of Signal intensity, Signal quality, Interference, Dropped calls, Blocked calls, Anomalous events, Call statistics, Service level statistics, Quality of Service (QoS) information, Handover information, and Neighboring cell information.

7. The UAV-based method of claim 1 , further comprising:

subsequent to the flying and prior to the processing, flying the UAV in a second route in a second wireless coverage area associated with a second cell tower; and

collecting second measurement data via the wireless coverage testing configuration during the flying the second route and associating the collected second measurement data with second location identifiers.

8. The UAV-based method of claim 1 , further comprising:

determining a relative quality of service of the test call utilizing a Mean opinion score.

9. An Unmanned Aerial Vehicle (UAV) adapted for wireless coverage testing, the UAV comprising:

one or more rotors disposed to a body;

wireless interfaces;

a wireless coverage testing configuration, wherein the wireless testing configuration includes two or more mobile devices disposed on the UAV and spaced at a minimum distance of at least one foot from one another to prevent interference;

a processor coupled to the wireless interfaces, the one or more rotors, and the wireless coverage testing configuration; and

memory storing instructions that, when executed, cause the processor to:

cause the UAV to fly in a route in a wireless coverage area associated with a cell tower;

collect measurement data via the wireless coverage testing configuration during the flight and associate the collected measurement data with location identifiers, wherein the measurement data is collected via a first mobile device performing a test call during the flying and a second mobile device in a free or idle mode collecting associated measurement data during the flying; and

subsequent to the flight, provide the collected measurement data with the location identifiers for processing to provide an output detailing wireless coverage in the wireless coverage area including wireless coverage at ground level and above ground level to a set elevation up to 1000′,

wherein the route comprises an overlapping region where the cell tower has a handoff with an adjacent cell tower, and

wherein the method comprises at least two flights for the flying and each of the flying steps for additional wireless coverage testing is performed with the UAV taking off and landing at a same location and a same launch orientation for each of the at least two flights at a cell site associated with the cell tower.

10. The UAV of claim 7 , wherein the UAV comprises a frame disposed thereto with the two or more devices attached thereto.

11. The UAV of claim 9 , wherein the location identifiers comprise at least two independent location identification techniques thereby improving accuracy thereof.

12. The UAV of claim 9 , wherein at least two flights are performed with the UAV and each subsequent of the at least two flights for additional wireless coverage testing is performed with the UAV taking off and landing at a same location and launch orientation at a cell site associated with the cell tower.

13. The UAV of claim 9 , wherein the route comprises one of a substantially circular pattern at a fixed elevation about the cell tower and a substantially circular pattern at a varying elevations about the cell tower.

14. The UAV of claim 9 , wherein the wireless coverage testing configuration is configured to measure a plurality of Signal intensity, Signal quality, Interference, Dropped calls, Blocked calls, Anomalous events, Call statistics, Service level statistics, Quality of Service (QoS) information, Handover information, and Neighboring cell information.

15. The UAV of claim 9 , wherein a relative quality of service of the test call is determined utilizing a Mean opinion score.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Mar 24, 2026
From: KEYBANK NATIONAL ASSOCIATION, AS AGENT
To: ETAK SYSTEMS, LLC
Reel/Frame 074818/0664 →
PATENT SECURITY AGREEMENT Recorded Mar 20, 2026
From: ETAK SYSTEMS, LLC
To: AQUARIAN CREDIT FUNDING LLC, AS ADMINISTRATIVE AGENT AND COLLATERAL AGENT
Reel/Frame 075246/0859 →
PATENT SECURITY AGREEMENT Recorded Apr 22, 2021
From: ETAK SYSTEMS, LLC
To: KEYBANK NATIONAL ASSOCIATION
Reel/Frame 056003/0641 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2016
From: PRIEST, LEE; TERRY, CHARLIE; GODWIN, JOSHUA
To: ETAK SYSTEMS, LLC
Reel/Frame 038829/0004 →
Continuity (6)
Continuation In Part 15168503 · May 31, 2016
Continuation In Part 15160890 · May 20, 2016
Continuation In Part 15131460 · Apr 18, 2016
Continuation In Part 14736925 · Jun 11, 2015
Continuation In Part 14685720 · Apr 14, 2015
Related Publication 20160309337A1 · Oct 20, 2016
Cited By (11)
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