IP Library Granted Patent US 9,774,847
Granted Patent B2
US 9,774,847 · App. 15/160,739 · Granted Sep 26, 2017

Dual-port testing of a cable network

Inventors: Daniel K. Chappell (Greenwood, IN); Richard Earl Jones, Jr. (Plainfield, IN); David W. Jones (Pittsboro, IN); Adam D. Gray (Avon, IN)
Assignee: VIAVI SOLUTIONS INC.
H04N17/004H04N7/17309H04N21/633
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Quick Facts
Patent No.
US 9,774,847
App. No.
15/160,739
Filed
May 20, 2016
Granted
Sep 26, 2017
Kind
B2
Art Unit
2424
USPC
725/107
Abstract

A dual-port testing apparatus is provided for testing a cable network at two test points. The testing may comprise demodulation of a same data packet at the test points, decoding the data packet, performing spectral analysis of the signal, etc. Testing results may be correlated with one another, both visually and by using pre-defined test metrics comprising a weighted sum of demodulation and decoding parameters such as modulation extinction ratio and a codeword error.

Claims (69)

1. A network testing apparatus comprising:

a first input port to electrically couple to a first test point in a network;

a second input port to electrically couple to a second test point in the network, wherein the first test point and the second test point are spaced apart from one another in the network;

a processing circuit communicatively coupled to the first input port and the second input port, and to:

obtain a first signal from the first input port;

obtain a second signal from the second input port;

extract a first frequency channel from each of the first signal and the second signal;

demodulate the first frequency channels;

identify the same packet from the demodulated first frequency channels;

determine a demodulation parameter for the same packet identified from each of the demodulated first frequency channels; and

a display to simultaneously display the determined demodulation parameter for each of the demodulated first frequency channels.

2. The network testing apparatus of claim 1 , wherein the demodulation parameter determined for each of the demodulated first frequency channels comprises a modulation error ratio, a noise, or an ingress under carrier.

3. The network testing apparatus of claim 1 , wherein the processing circuit is to:

decode the same packet from each of the demodulated first frequency channels; and

determine a decoding parameter for the same packet decoded from each of the demodulated first frequency channels; and

the display is to display the decoding parameter for the same packet decoded from each of the demodulated first frequency channels.

4. The network testing apparatus of claim 3 , wherein the decoding parameter for the same packet decoded from each of the demodulated first frequency channels comprises a codeword error.

5. The network testing apparatus of claim 3 , wherein the processing circuit is to:

determine a performance index from the demodulation parameter and the decoding parameter determined from each of the demodulated first frequency channels; and

the display is to display the performance index.

6. The network testing apparatus of claim 1 , wherein the processing circuit is to simultaneously sample a network signal received at the first input port and received at the second input port to obtain the first signal and the second signal.

7. The network testing apparatus of claim 6 , wherein the processing circuit comprises:

a first analog to digital converter coupled to the first input port to digitize the network signal received at the first input port;

a second analog to digital converter coupled to the second input port to digitize the network signal received at the second input port; and

a clock coupled to the first analog to digital converter and the second analog to digital converter for synchronous clocking thereof,

wherein the synchronous clocking simultaneously samples the network signal to obtain the first signal and the second signal.

8. The network testing apparatus of claim 7 , wherein the processing circuit comprises a down converter to down convert the first signal and the second signal to extract the first frequency channel from each of the first signal and the second signal.

9. The network testing apparatus of claim 8 , wherein the processing circuit comprises a digital signal processing unit to:

demodulate the first frequency channel in each of the down-converted first signal and the down-converted second signal; and

compute a frequency spectra of the first frequency channels to determine the demodulation parameter for each of the first frequency channels.

10. The network testing apparatus of claim 7 , wherein the processing circuit comprises a first gain control unit coupled between the first input port and the first analog to digital converter, and a second gain control unit coupled between the second input port and the second analog to digital converter, to equalize amplitudes of input signals of the first analog to digital converter and the second analog to digital converter.

11. The network testing apparatus of claim 6 , wherein during the simultaneous sampling, the first test point and the second test point are disposed on legs of an amplifier, excluding a combined leg of the amplifier.

12. The network testing apparatus of claim 1 , wherein the processing circuit is to determine a demodulation error exceeding a pre-defined threshold for the same packet identified from each of the demodulated first frequency channels, and the display is to display the demodulation error.

13. A network testing apparatus comprising:

a first input port to electrically couple to a first test point in a network;

a second input port to electrically couple to a second test point in the network, wherein the first test point and the second test point are spaced apart from one another in the network; and

a processing circuit communicatively coupled to the first input port and the second input port, and to:

simultaneously sample a network signal received at the first input port and the second input port;

obtain a first signal from the sampling of the network signal received at the first input port;

obtain a second signal from the sampling of the network signal received at the second input port;

extract a first frequency channel from each of the first signal and the second signal;

demodulate the first frequency channels; and

determine a demodulation parameter for the same packet identified from the demodulated first frequency channels.

14. The network testing apparatus of claim 13 , wherein the demodulation parameter determined for each of the demodulated first frequency channels comprises a modulation error ratio, a noise, or an ingress under carrier.

15. The network testing apparatus of claim 13 , wherein the processing circuit is to:

decode the same packet from each of the demodulated first frequency channels; and

determine a decoding parameter for the same packet decoded from each of the demodulated first frequency channels.

16. The network testing apparatus of claim 15 , wherein the decoding parameter for the same packet decoded from each of the demodulated first frequency channels comprises a codeword error.

17. The network testing apparatus of claim 15 , wherein the processing circuit is to:

determine a performance index from the demodulation parameter and the decoding parameter determined from each of the demodulated first frequency channels.

18. The network testing apparatus of claim 13 , wherein the processing circuit comprises:

a first analog to digital converter coupled to the first input port to digitize the network signal received at the first input port;

a second analog to digital converter coupled to the second input port to digitize the network signal received at the second input port; and

a clock coupled to the first analog to digital converter and the second analog to digital converter for synchronous clocking thereof,

wherein the synchronous clocking simultaneously samples the network signal to obtain the first signal and the second signal.

19. The network testing apparatus of claim 18 , wherein the processing circuit comprises:

a down converter to down convert the first signal and the second signal to extract the first frequency channel from each of the first signal and the second signal; and

a digital signal processing unit to:

demodulate the first frequency channel in each of the down-converted first signal and second signal; and

compute a frequency spectra of each of the first frequency channels to determine the demodulation parameter.

20. A network testing apparatus comprising:

a first input port to electrically couple to a first test point in a network;

a second input port to electrically couple to a second test point in the network, wherein the first test point and the second test point are spaced apart from one another in the network; and

a processing circuit communicatively coupled to the first input port and the second input port, and to:

simultaneously sample a network signal received at the first input port and the second input port;

obtain a first signal from the sampling of the network signal received at the first input port;

obtain a second signal from the sampling of the network signal received at the second input port;

extract a first frequency channel from each of the first signal and the second signal; and

determine at least one of a demodulation parameter and decoding parameter from each of the first frequency channels.

Assignments (7)
RELEASE OF SECURITY INTEREST AT REEL/FRAME 73189/0873 Recorded May 28, 2026
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
To: INERTIAL LABS, INC.; VIAVI SOLUTIONS INC.; VIAVI SOLUTIONS LICENSING LLC
Reel/Frame 075642/0381 →
SECURITY INTEREST Recorded Nov 14, 2025
From: VIAVI SOLUTIONS INC.; VIAVI SOLUTIONS LICENSING LLC; INERTIAL LABS, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS AGENT
Reel/Frame 073571/0137 →
SECURITY AGREEMENT Recorded Oct 21, 2025
From: INERTIAL LABS, INC.; VIAVI SOLUTIONS INC.; VIAVI SOLUTIONS LICENSING LLC
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 073189/0873 →
TERMINATIONS OF SECURITY INTEREST AT REEL 052729, FRAME 0321 Recorded Jan 5, 2022
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
To: VIAVI SOLUTIONS INC.; RPC PHOTONICS, INC.
Reel/Frame 058666/0639 →
SECURITY INTEREST Recorded May 21, 2020
From: VIAVI SOLUTIONS INC.; 3Z TELECOM, INC.; ACTERNA LLC; ACTERNA WG INTERNATIONAL HOLDINGS LLC; VIAVI SOLUTIONS LLC; JDSU ACTERNA HOLDINGS LLC; OPTICAL COATING LABORATORY, LLC; RPC PHOTONICS, INC.; TTC INTERNATIONAL HOLDINGS, LLC
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 052729/0321 →
CHANGE OF NAME Recorded Oct 24, 2016
From: JDS UNIPHASE CORPORATION
To: VIAVI SOLUTIONS INC.
Reel/Frame 040260/0388 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2016
From: CHAPPELL, DANIEL K.; JONES, RICHARD EARL, JR; JONES, DAVID W.; GRAY, ADAM D.
To: JDS UNIPHASE CORPORATION
Reel/Frame 040100/0097 →
Continuity (3)
Continuation 14327589 · Jul 10, 2014
Provisional Application 61845751 · Jul 12, 2013
Related Publication 20170019664A1 · Jan 19, 2017