IP Library Granted Patent US 7,643,791
Granted Patent B2
US 7,643,791 · App. 11/652,805 · Granted Jan 5, 2010

Method and apparatus for optimizing signal processing

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Quick Facts
Patent No.
US 7,643,791
App. No.
11/652,805
Granted
Jan 5, 2010
Kind
B2
Abstract

An booster/amplifier receives a plurality of RF signals, including a subject RF signal. A location-based signal spectrum is determined by performing either a frequency scan or an information lookup operation. An initial filter bandwidth for the booster/amplifier is set based at least in part on the determined signal spectrum and a target time delay interference. In one embodiment, the initial filter bandwidth is set such that both the TDI and ACI are optimized/minimized. The initial filter bandwidth subsequently may be adjusted from its initial value based on actual measured ACI and/or TDI values.

Claims (56)

1. A method for amplifying a subject radio frequency (RF) signal having a subject frequency comprising the acts of:

receiving a plurality of RF signals, including the subject RF signal;

determining a location-based signal spectrum for the plurality of RF signals;

setting an initial signal filter bandwidth, which includes the subject frequency, based at least in part on the location-based signal spectrum and a target time delay interference (TDI); and

filtering out the plurality of RF signals which are outside the initial signal filter bandwidth; and

amplifying the subject RF signal at the subject frequency.

2. The method of claim 1 , wherein determining the location-based signal spectrum comprises analyzing a predetermined range of frequencies at a subject location to identify a plurality of frequencies that correspond to the plurality of RF signals.

3. The method of claim 1 , wherein determining the location-based signal spectrum comprises performing a lookup operation of stored values representative of a plurality of frequencies that correspond to the plurality of RF signals at a subject location.

4. The method of claim 1 , further comprising the act of determining a signal type of the subject RF signal, wherein the target TDI is based at least in part on said signal type.

5. The method of claim 4 , wherein the signal type is selected from the list consisting of: a data signal and a voice signal.

6. The method of claim 5 , wherein the target TDI is less than 100 microseconds when said signal type is voice signal, and wherein the target TDI is less than 35 microseconds when said signal type is data signal.

7. The method of claim 1 , further comprising the acts of:

measuring adjacent-channel interference of the subject RF signal;

measuring actual TDI of the subject RF signal; and

adjusting the initial signal filter bandwidth based on said adjacent-channel interference and actual TDI.

8. The method of claim 7 , wherein adjusting the initial signal filter bandwidth comprises increasing the initial signal filter bandwidth when the actual TDI is greater than the target TDI, and decreasing the initial signal filter bandwidth when the adjacent-channel interference exceeds a predetermined threshold.

9. The method of claim 1 , wherein setting the initial signal filter bandwidth, comprises setting the initial signal filter bandwidth such that an amount of adjacent-channel interference is not greater than a predetermined threshold.

10. The method of claim 9 , wherein the predetermined threshold is based on at least one of a signal strength for the subject RF signal and a signal noise level for the subject RF signal.

11. The method of claim 1 , wherein setting the initial signal filter bandwidth, comprises setting the initial signal filter bandwidth such that an actual TDI is not greater than the target TDI.

12. The method of claim 1 , further comprising the act of re-radiating the subject RF signal at the subject frequency at an amplified level.

13. A method for optimizing a signal booster's filter bandwidth, the method comprising the acts of:

receiving a plurality of radio frequency (RF) signals including a subject RF signal having a subject frequency;

measuring adjacent-channel interference of the subject RF signal;

measuring an actual time delay interference (TDI) of the subject RF signal;

comparing the actual TDI to a target TDI;

comparing the adjacent-channel interference to a predetermined threshold; and

optimizing the signal filter bandwidth, which includes the subject frequency, based at least on said comparisons.

14. The method of claim 13 , further comprising the acts of:

filtering out the plurality of RF signals that are outside the signal filter bandwidth;

amplifying the subject RF signal at the subject frequency;

re-radiating the subject RF signal at the subject frequency at an amplified level.

15. The method of claim 13 , further comprising the act of determining a signal type of the subject RF signal, wherein the target TDI is based at least in part on said signal type.

16. The method of claim 15 , wherein the signal type is selected from the list consisting of: a data signal and a voice signal.

17. The method of claim 16 , wherein the target TDI is less than 100 microseconds when said signal type is voice signal, and wherein the target TDI is less than 35 microseconds when said signal type is data signal.

18. The method of claim 13 , wherein optimizing the initial signal filter bandwidth comprises increasing the signal filter bandwidth when the actual TDI is greater than the target TDI, and decreasing the signal filter bandwidth when the adjacent-channel interference exceeds a predetermined value.

19. The method of claim 13 , wherein the predetermined threshold is based on at least one of a signal strength for the subject RF signal and a signal noise level for the subject RF signal.

20. An apparatus for amplifying a subject radio frequency (RF) signal having a subject frequency comprising:

a receiver configured to receive a plurality of RF signals, including the subject RF signal;

a signal filter electrically coupled to the receiver;

an amplifier electrically coupled to the signal filter and configured to amplify the subject RF signal at the subject frequency;

a processor coupled to at least the signal filter, the processor configured to

set an initial signal filter bandwidth for the signal filter, wherein said initial signal filter bandwidth includes the subject frequency, and is based at least in part on a location-based signal spectrum and a target time delay interference (TDI).

21. The apparatus of claim 20 , wherein the location-based signal spectrum is based on analyzing a predetermined range of frequencies at a subject location to identify a plurality of frequencies that correspond to the plurality of RF signals.

22. The apparatus of claim 20 , wherein the location-based signal spectrum is based on a lookup operation of stored values representative of a plurality of frequencies that correspond to the plurality of RF signals at a subject location.

23. The apparatus of claim 20 , wherein the processor is further configured to determine a signal type of the subject RF signal, wherein the target TDI is based at least in part on said signal type.

24. The apparatus of claim 23 , wherein the signal type is selected from the list consisting of: a data signal and a voice signal.

25. The apparatus of claim 24 , wherein the target TDI is less than 100 microseconds when said signal type is voice signal, and wherein the target TDI is less than 35 microseconds when said signal type is data signal.

26. The apparatus of claim 20 , wherein the processor is further configured to,

measure adjacent-channel interference of the subject RF signal;

measure an actual TDI of the subject RF signal; and

adjust the initial signal filter bandwidth based on said adjacent-channel interference and actual TDI.

27. The apparatus of claim 26 , wherein the processor is configured to adjust the initial signal filter by increasing the initial signal filter bandwidth when the actual TDI is greater than the target TDI, and decreasing the initial signal filter bandwidth when the adjacent-channel interference exceeds a predetermined threshold.

28. The apparatus of claim 20 , wherein the processor sets the initial signal filter bandwidth such that an amount of adjacent-channel interference is not greater than a predetermined threshold.

29. The apparatus of claim 28 , wherein the predetermined threshold is based on at least one of a signal strength for the subject RF signal and a signal noise level for the subject RF signal.

30. The apparatus of claim 20 , wherein the processor sets the initial signal filter bandwidth such that an actual TDI is not greater than the target TDI.

31. The apparatus of claim 20 , wherein the signal filter is configured to filter out the plurality of RF signals which are outside the initial signal filter bandwidth.

Assignments (11)
RELEASE OF SECURITY INTEREST Recorded Apr 6, 2022
From: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
To: CHARLESTON MARINE CONTAINERS, INC.; DIGITAL FUSION, INC.; KRATOS INTEGRAL HOLDINGS, LLC; KRATOS TECHNOLOGY & TRAINING SOLUTIONS, INC.; KRATOS UNMANNED AERIAL SYSTEMS, INC. (F/K/A COMPOSITE ENGINEERING INC.); SAT CORPORATION
Reel/Frame 059616/0001 →
RELEASE OF SECURITY INTEREST Recorded Apr 6, 2022
From: TRUIST BANK, SUCCESSOR BY MERGER TO SUNTRUST BANK, AS COLLATERAL AGENT AND ADMINISTRATIVE AGENT
To: KRATOS INTEGRAL HOLDINGS, LLC; SAT CORPORATION; KRATOS TECHNOLOGY & TRAINING SOLUTIONS, INC.; CHARLESTON MARINE CONTAINERS, INC.; DIGITAL FUSION, INC.; KRATOS UNMANNED AERIAL SYSTEMS, INC. (F/K/A COMPOSITE ENGINEERING, INC.); GICHNER SYTEMS GROUP, INC.; MICRO SYSTEMS, INC.; SECUREINFO CORPORATION
Reel/Frame 059616/0151 →
AMENDED AND RESTATED INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Dec 7, 2017
From: KRATOS DEFENSE & SECURITY SOLUTIONS, INC.; AI METRIX, INC.; AIRORLITE COMMUNICATIONS, INC.; AVTEC SYSTEMS, INC.; BSC PARTNERS, LLC; CARLSBAD ISI, INC.; CHARLESTON MARINE CONTAINERS INC.; DALLASTOWN REALTY I, LLC; DALLASTOWN REALTY II, LLC; DEFENSE SYSTEMS, INCORPORATED; DEI SERVICES CORPORATION; DFI REALTY, LLC; DIGITAL FUSION SOLUTIONS, INC.; DIGITAL FUSION, INC.; DIVERSIFIED SECURITY SOLUTIONS, INC.; DTI ASSOCIATES, INC.; GENERAL MICROWAVE CORPORATION; GENERAL MICROWAVE ISRAEL CORPORATION; GICHNER SYSTEMS GROUP, INC.; GICHNER SYSTEMS INTRERNATIONAL, INC.; HAVERSTICK CONSULTING, INC.; HAVERSTICK GOVERNMENT SOLUTIONS, INC.; HENRY BROS. ELECTRONICS, INC.; HENRY BROS. ELECTRONICS INC.; HENRY BROS. ELECTRONICS, L.L.C.; HGS HOLDINGS, INC.; JMA ASSOCIATES, INC.; KPSS GOVERNMENT SOLUTIONS, INC; KRATOS COMMUNICATIONS, INC.; KRATOS DEFENSE & ROCKET SUPPORT SERVICES, INC.; KRATOS INTEGRAL HOLDINGS, LLC; KRATOS INTEGRAL SYSTEMS INTERNATIONAL, INC.; KRATOS PUBLIC SAFETY & SECURITY SOLUTIONS, INC.; KRATOS SOUTHEAST, INC.; KRATOS SPACE & MISSILE DEFENSE SYSTEMS, INC.; KRATOS SYSTEMS AND SOLUTIONS, INC.; KRATOS TECHNOLOGY & TRAINING SOLUTIONS, INC.; KRATOS TEXAS, INC.; KRATOS UNMANNED AERIAL SYSTEMS, INC.; KRATOS UNMANNED SYSTEMS SOLUTIONS, INC.; LVDM, INC.; MADISON RESEARCH CORPORATION; MICRO SYSTEMS, INC.; MSI ACQUISITION CORP.; POLEXIS, INC.; REAL TIME LOGIC, INC.; REALITY BASED IT SERVICES LTD.; ROCKET SUPPORT SERVICES, LLC; SAT CORPORATION; SCT ACQUISITION, LLC; SCT REAL ESTATE, LLC; SECUREINFO CORPORATION; SHADOW I, INC.; SHADOW II, INC.; SUMMIT RESEARCH CORPORATION; WFI NMC CORP.; KRATOS SOUTHWEST L.P.
To: SUNTRUST BANK
Reel/Frame 044742/0845 →
SECURITY INTEREST Recorded Dec 1, 2017
From: AIRORLITE COMMUNICATIONS, INC.; CHARLESTON MARINE CONTAINERS, INC.; DIGITAL FUSION, INC.; HENRY BROS. ELECTRONICS, INC. (DE); HENRY BROS. ELECTRONICS, INC. (NJ); KRATOS INTEGRAL HOLDINGS, LLC; KRATOS TECHNOLOGY & TRAINING SOLUTIONS, INC.; KRATOS UNMANNED AERIAL SYSTEMS, INC.; GICHNER SYSTEMS GROUP, INC.; MICRO SYSTEMS, INC.; SAT CORPORATION; SECUREINFO CORPORATION
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 044593/0678 →
RELEASE OF SECURITY INTEREST Recorded Nov 21, 2017
From: WILMINGTON TRUST, NATIONAL ASSOCIATION
To: AIRORLITE COMMUNICATIONS, INC.; CHARLESTON MARINE CONTAINERS INC.; KRATOS UNMANNED AERIAL SYSTEMS, INC.; DIGITAL FUSION, INC.; GENERAL MICROWAVE CORPORATION; HENRY BROS. ELECTRONICS, INC.; KRATOS INTEGRAL HOLDINGS, LLC; KRATOS TECHNOLOGY & TRAINING SOLUTIONS, INC.; KRATOS DEFENSE & SECURITY SOLUTIONS, INC.; SECUREINFO CORPORATION
Reel/Frame 044195/0924 →
SECURITY INTEREST Recorded Jan 30, 2015
From: AIRORLITE COMMUNICATIONS, INC.; CHARLESTON MARINE CONTAINERS INC.; COMPOSITE ENGINEERING, INC.; DIGITAL FUSION, INC.; GENERAL MICROWAVE CORPORATION; HENRY BROS. ELECTRONICS, INC.; KRATOS INTEGRAL HOLDINGS, LLC; KRATOS TECHNOLOGY & TRAINING SOLUTIONS, INC.; KRATOS DEFENSE & SECURITY SOLUTIONS, INC.; SECUREINFO CORPORATION
To: WILMINGTON TRUST, NATIONAL ASSOCIATION
Reel/Frame 034861/0796 →
RELEASE OF SECURITY INTEREST Recorded Jun 18, 2014
From: WILMINGTON TRUST, NATIONAL ASSOCIATION (AS SUCCESSOR BY MERGER TO WILMINGTON TRUST FSB)
To: AIRORLITE COMMUNICATIONS, INC.
Reel/Frame 033200/0081 →
RELEASE OF SECURITY INTEREST Recorded Jun 17, 2014
From: KEYBANK NATIONAL ASSOCIATION
To: AIRORLITE COMMUNICATIONS, INC.
Reel/Frame 033188/0781 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Aug 16, 2011
From: AIRORLITE COMMUNICATIONS, INC.
To: KEYBANK NATIONAL ASSOCIATION
Reel/Frame 026755/0302 →
SECURITY INTEREST Recorded Aug 9, 2011
From: AIRORLITE COMMUNICATIONS, INC.
To: WILMINGTON TRUST N.A. (AS SUCCESSOR BY MERGER TO WILMINGTON TRUST FSB)
Reel/Frame 026724/0149 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2007
From: MASOIAN, LEON MICHAEL
To: AIRORLITE COMMUNICATIONS, INC.
Reel/Frame 018800/0607 →