IP Library Granted Patent US 9,867,081
Granted Patent B1
US 9,867,081 · App. 15/455,230 · Granted Jan 9, 2018

Optimizing radio frequency (RF) coverage in remote unit coverage areas in a wireless distribution system (WDS)

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Quick Facts
Patent No.
US 9,867,081
App. No.
15/455,230
Granted
Jan 9, 2018
Kind
B1
Abstract

Embodiments of the disclosure relate to optimizing radio frequency (RF) coverage in remote unit coverage areas in a wireless distribution system (WDS). A control circuit is configured to selectively determine at least one selected remote unit group comprising two or more remote units selected from a plurality of remote units in the WDS. A first remote unit in the selected remote unit group is configured to transmit an RF signal. The control circuit is configured to determine a first prediction deviation and a second prediction deviation, respectively. The control circuit determines correction factor(s) for selected correction point(s) based on the first prediction deviation and the second prediction deviation. The control circuit optimizes RF coverage in coverage area(s) based on the determined correction factor(s), thus improving RF performance and capacity of the WDS.

Claims (62)

1. A method for optimizing radio frequency (RF) coverage in remote unit coverage areas in a wireless distribution system (WDS), comprising:

for at least one selected remote unit group comprising two or more remote units among a plurality of remote units in the WDS:

instructing a first remote unit in the at least one selected remote unit group to transmit at least one RF signal;

instructing a second remote unit in the at least one selected remote unit group to receive the at least one RF signal;

determining a first prediction deviation at the second remote unit based on a difference between the at least one RF signal received at the second remote unit and the at least one RF signal predicted to be received at the second remote unit;

instructing a third remote unit in the at least one selected remote unit group to receive the at least one RF signal;

determining a second prediction deviation at the third remote unit based on a difference between the at least one RF signal received at the third remote unit and the at least one RF signal predicted to be received at the third remote unit; and

determining one or more correction factors for one or more selected correction points located within an area defined by the at least one selected remote unit group based on the first prediction deviation and the second prediction deviation.

2. The method of claim 1 , further comprising:

for the at least one selected remote unit group comprising two or more remote units among the plurality of remote units:

instructing the first remote unit in the at least one selected remote unit group to transmit the at least one RF signal at a first actual power level;

instructing the second remote unit in the at least one selected remote unit group to receive the at least one RF signal at a second actual power level;

determining a first power prediction deviation at the second remote unit based on a difference between the received second actual power level and a first predicted receiving power level at the second remote unit;

instructing the third remote unit in the at least one selected remote unit group to receive the at least one RF signal at a third actual power level;

determining a second power prediction deviation at the third remote unit based on a difference between the received third actual power level and a second predicted receiving power level at the third remote unit; and

determining one or more power correction factors for the one or more selected correction points located within the area defined by the at least one selected remote unit group based on the first power prediction deviation and the second power prediction deviation.

3. The method of claim 2 , further comprising adjusting actual power level of the at least one RF signal based on the determined one or more correction factors.

4. The method of claim 2 , further comprising:

determining a first actual path loss at the second remote unit based on the received second actual power level and the transmitted first actual power level;

determining a first path loss prediction deviation based on a difference between the determined first actual path loss and a first predicted path loss at the second remote unit;

determining a second actual path loss at the third remote unit based on the received third actual power level and the transmitted first actual power level;

determining a second path loss prediction deviation based on a difference between the determined second actual path loss and a second predicted path loss at the third remote unit; and

determining one or more path loss correction factors for the one or more selected correction points based on the determined first path loss prediction deviation and the determined second path loss prediction deviation.

5. The method of claim 4 , further comprising:

determining that actual path losses are higher than predicted path losses at the one or more selected correction points based on the one or more path loss correction factors; and

controlling the first remote unit in the at least one selected remote unit group to increase the first actual power level of the at least one RF signal in response to determining that the actual path losses are higher than the predicted path losses at the one or more selected correction points.

6. The method of claim 4 , further comprising:

determining that actual path losses are lower than predicted path losses at the one or more selected correction points based on the one or more path loss correction factors; and

controlling the first remote unit in the at least one selected remote unit group to decrease the first actual power level of the at least one RF signal in response to determining that the actual path losses are lower than the predicted path losses at the one or more selected correction points.

7. The method of claim 4 , further comprising:

determining that actual path losses are equal to predicted path losses at the one or more selected correction points based on the one or more path loss correction factors; and

controlling the first remote unit in the at least one selected remote unit group to maintain the first actual power level of the at least one RF signal in response to determining that the actual path losses are equal to the predicted path losses at the one or more selected correction points.

8. The method of claim 2 , further comprising determining one or more power correction factors for the one or more selected correction points based on the determined first power prediction deviation and the determined second power prediction deviation.

9. The method of claim 8 , further comprising:

determining that actual power levels are higher than predicted receiving power levels at the one or more selected correction points based on the one or more power correction factors; and

controlling the first remote unit in the at least one selected remote unit group to decrease the first actual power level of the at least one RF signal in response to determining that the actual power levels are higher than the predicted receiving power levels at the one or more selected correction points.

10. The method of claim 8 , further comprising:

determining that actual power levels are lower than predicted receiving power levels at the one or more selected correction points based on the one or more power correction factors; and

controlling the first remote unit in the at least one selected remote unit group to increase the first actual power level of the at least one RF signal in response to determining that the actual power levels are lower than the predicted receiving power levels at the one or more selected correction points.

11. The method of claim 8 , further comprising:

determining that actual power levels are equal to predicted receiving power levels at the one or more selected correction points based on the one or more power correction factors; and

controlling the first remote unit in the at least one selected remote unit group to maintain the first actual power level of the at least one RF signal in response to determining that the actual power levels are equal to the predicted receiving power levels at the one or more selected correction points.

12. The method of claim 2 , further comprising configuring the first remote unit in the at least one selected remote unit group to transmit the at least one RF signal comprising at least one non-modulated continuous wave signal.

13. The method of claim 12 , further comprising configuring the second remote unit and the third remote unit to receive the at least one non-modulated continuous wave signal at a defined RF filter bandwidth.

14. The method of claim 2 , further comprising:

instructing the first remote unit to transmit the at least one RF signal in a downlink frequency range of at least one of the second remote unit and the third remote unit in the at least one selected remote unit group; and

instructing the at least one of the second remote unit and the third remote unit to receive the at least one RF signal in a listening mode in the downlink frequency range.

15. The method of claim 2 , further comprising:

instructing the first remote unit to transmit the at least one RF signal in an uplink frequency range of at least one of the second remote unit and the third remote unit in the at least one selected remote unit group; and

instructing the at least one of the second remote unit and the third remote unit to receive the at least one RF signal in a listening mode in the uplink frequency range.

16. The method of claim 2 , further comprising configuring the first remote unit to transmit the at least one RF signal to the second remote unit and the third remote unit in the at least one selected remote unit group concurrently.

17. The method of claim 16 , further comprising determining the first power prediction deviation by subtracting the first predicted receiving power level from the second actual power level.

18. The method of claim 16 , further comprising determining the second power prediction deviation by subtracting the second predicted receiving power level from the third actual power level.

19. The method of claim 2 , further comprising transmitting the at least one RF signal that comprises a plurality of non-coherent frequencies corresponding to a plurality of assigned weight factors, respectively.

20. The method of claim 19 , further comprising:

receiving the at least one RF signal by the second remote unit in the plurality of non-coherent frequencies; and

determining the first power prediction deviation based on the plurality of assigned weight factors corresponding to the plurality of non-coherent frequencies.

21. The method of claim 19 , further comprising:

receiving the at least one RF signal by the third remote unit in the plurality of non-coherent frequencies; and

determining the second power prediction deviation based on the plurality of assigned weight factors corresponding to the plurality of non-coherent frequencies.

22. The method of claim 2 , further comprising locating the first remote unit, the second remote unit, and the third remote unit in the at least one selected remote unit group at a first height from a ground level.

23. The method of claim 22 , further comprising determining a correction factor for a selected correction point located at a second height lower than the first height based on the first power prediction deviation and the second power prediction deviation.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 12, 2025
From: CORNING OPTICAL COMMUNICATIONS LLC
To: ANI ACQUISITION SUB, LLC
Reel/Frame 071270/0328 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2019
From: CORNING OPTICAL COMMUNICATIONS WIRELESS LTD
To: CORNING OPTICAL COMMUNICATIONS LLC
Reel/Frame 048411/0787 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 10, 2017
From: HAREL, DROR
To: CORNING OPTICAL COMMUNICATIONS WIRELESS LTD
Reel/Frame 041535/0451 →