IP Library Patent Application 15904869
Patent Application
App. No. 15/904,869

COMMUNICATION CIRCUIT SUPPORTING BUILT-IN TEST (BIT) IN A WIRELESS DISTRIBUTION SYSTEM (WDS)

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Quick Facts
Patent No.
US None
App. No.
15/904,869
Abstract

A communication circuit supporting built-in test (BIT) in a wireless distribution system (WDS) is provided. The communication circuit includes a transmit circuit and a receive circuit. The transmit circuit is reconfigured to generate a radio frequency (RF) transmit signal having a predetermined signal characteristic(s) and provide the RF transmit signal to the receive circuit as an RF receive signal. A signal control and processing circuit in the communication circuit analyzes the predetermined signal characteristic(s) associated with the RF receive signal to determine whether the predetermined signal characteristic(s) conforms to a predefined pass/failure criteria(s). By reconfiguring the existing transmit and receive circuits to support the BIT, it is possible to conduct the BIT without requiring external test equipment being connected to the communication circuit. As a result, it is possible to significantly reduce cycle time of the BIT, while improving effectiveness, accuracy, and reliability of the BIT in the communication circuit.

Claims (87)

1 . A communication circuit in a wireless distribution system (WIGS), comprising:

a transmit circuit comprising a transmit signal output, the transmit circuit configured to output a radio frequency (RF) transmit signal via the transmit signal output;

a receive circuit comprising a receive signal input, the receive circuit configured to receive an RF receive signal via the receive signal input; and

a signal control and processing circuit coupled to the transmit circuit and the receive circuit, the signal control and processing circuit configured to:

configure the transmit circuit and the receive circuit to enter a test mode operation in response to receiving a test enable signal;

configure the transmit circuit to generate the RF transmit signal comprising at least one predetermined signal characteristic;

couple the transmit signal output to the receive signal input to provide the RF transmit signal from the transmit circuit to the receive circuit as the RF receive signal;

analyze the at least one predetermined signal characteristic associated with the RF receive signal in the receive circuit; and

determine whether the at least one predetermined signal characteristic conforms to at least one predefined pass/failure criteria associated with the test mode operation.

2 . The communication circuit of claim 1 , wherein the signal control and processing circuit is further configured to generate a test indication signal indicative of whether the at least one predetermined signal characteristic conforms to the at least one predefined pass/failure criteria.

3 . The communication circuit of claim 1 , wherein the signal control and processing circuit is further configured to:

control the transmit circuit to generate the RF transmit signal at a predetermined power level; and

measure the predetermined power level associated with the RF receive signal to determine whether the predetermined power level conforms to a predefined power threshold.

4 . The communication circuit of claim 3 , further comprising a power detector, wherein:

the power detector is configured to detect a power level of the RF transmit signal at the transmit signal output and provide the detected power level to the signal control and processing circuit; and

the signal control and processing circuit is further configured to determine whether the predetermined power level conforms to the predefined power threshold based on the detected power level.

5 . The communication circuit of claim 1 , wherein the signal control and processing circuit is further configured to:

control the transmit circuit to generate the RF transmit signal at a predetermined frequency; and

determine whether the RF receive signal is received by the receive circuit at the predetermined frequency.

6 . The communication circuit of claim 1 , wherein the signal control and processing circuit is further configured to:

control the transmit circuit to generate the RF transmit signal comprising a predetermined code word; and

analyze the RF receive signal to determine whether the predetermined code word is received by the receive circuit.

7 . The communication circuit of claim 1 , wherein:

the transmit circuit further comprises:

digital transmit circuitry configured to generate a digital transmit signal comprising a plurality of digital baseband samples; and

analog transmit circuitry configured to convert the digital transmit signal into the RF transmit signal comprising the at least one predetermined signal characteristic and provide the RF transmit signal to the transmit signal output;

the receive circuit further comprises:

analog receive circuitry configured to receive the RF receive signal from the receive signal input and convert the RF receive signal into the plurality of digital baseband samples; and

digital receive circuitry configured to receive the plurality of digital baseband samples and generate a digital receive signal based on the plurality of digital baseband samples; and

the control and processing circuit comprises:

control circuitry configured to:

control the digital transmit circuitry to generate the digital transmit signal comprising the plurality of digital baseband samples;

control the analog transmit circuitry to convert the digital transmit signal into the RF transmit signal comprising the at least one predetermined signal characteristic; and

couple the transmit signal output to the receive signal input to provide the RF transmit signal from the transmit circuit to the receive circuit as the RF receive signal; and

digital signal processing circuitry configured to analyze the plurality of digital baseband samples associated with the digital receive signal to determine whether the at least one predetermined signal characteristic conforms to the at least one predefined pass/failure criteria.

8 . The communication circuit of claim 7 , wherein the digital signal processing circuitry is further configured to perform Fast Fourier Transform (FFT) on the plurality of digital baseband samples to determine whether the at least one predetermined signal characteristic conforms to the at least one predefined pass/failure criteria.

9 . The communication circuit of claim 7 , further comprising:

first switching circuitry coupled to the transmit signal output of the transmit circuit; and

second switching circuitry coupled to the first switching circuitry and the receive signal input of the receive circuit;

wherein, in the test mode operation, the control circuitry is further configured to control the first switching circuitry and the second switching circuitry to couple the transmit signal output to the receive signal input.

10 . The communication circuit of claim 9 , further comprising:

a digital signal input port configured to receive the digital transmit signal;

an RF signal output port configured to output the RF transmit signal;

an RF signal input port configured to receive the RF receive signal; and

a digital signal output port configured to output the digital receive signal.

11 . The communication circuit of claim 10 , wherein the control circuitry is further configured to:

configure the transmit circuit and the receive circuit to exit the test mode operation and to enter a normal mode operation in response to receiving a test disable signal;

control the first switching circuitry and the second switching circuitry to decouple transmit signal output of the transmit circuit from the receive signal input of the receive circuit;

couple the digital transmit circuitry to the digital signal input port to receive the digital transmit signal;

control the first switching circuitry to couple the transmit signal output to the RF signal output port to provide the RF transmit signal to the RF signal output port;

control the second switching circuitry to couple the receive signal input to the RF signal input port to receive the RF receive signal; and

couple the digital receive circuitry to the digital signal output port to provide the digital receive signal to the digital signal output port.

12 . The communication circuit of claim 11 , wherein:

the digital transmit circuitry is further configured to receive the digital transmit signal from the digital signal input port;

the analog transmit circuitry is further configured to convert the digital transmit signal into the RF transmit signal and provide the RF transmit signal to the transmit signal output;

the analog receive circuitry is further configured to receive the RF receive signal from the receive signal input and convert the RF receive signal into the digital receive signal; and

the digital receive circuitry is further configured to provide the digital receive signal to the digital signal output port.

13 . The communication circuit of claim 1 provided in a remote unit in the WDS.

14 . The communication circuit of claim 1 provided in a head-end unit (HEU) in the WDS.

15 . A method for supporting built-in test (BIT) in a communication circuit in a wireless distribution system (WDS), comprising:

configuring a transmit circuit and a receive circuit in the communication circuit to enter a test mode operation;

configuring the transmit circuit to generate a radio frequency (RF) transmit signal comprising at least one predetermined signal characteristic;

providing the RF transmit signal from the transmit circuit to the receive circuit as an RF receive signal;

analyzing the at least one predetermined signal characteristic associated with the RF receive signal; and

determining whether the at least one predetermined signal characteristic conforms to at least one predefined pass/failure criteria associated with the test mode operation.

16 . The method of claim 15 , further comprising generating a test indication signal indicative of whether the at least one predetermined signal characteristic conforms to the at least one predefined pass/failure criteria.

17 . The method of claim 15 , further comprising:

controlling the transmit circuit to generate the RF transmit signal at a predetermined power level; and

measuring the predetermined power level associated with the RF receive signal to determine whether the predetermined power level conforms to a predefined power threshold.

18 . The method of claim 17 , further comprising:

detecting a power level of the RF transmit signal at a transmit signal output; and

determining whether the detected power level conforms to the predefined power threshold based on the detected power level.

19 . The method of claim 15 , further comprising:

controlling the transmit circuit to generate the RF transmit signal at a predetermined frequency;

coupling a transmit signal output to a receive signal input to provide the RF transmit signal from the transmit circuit to the receive circuit as the RF receive signal; and

determining whether the RF receive signal is received by the receive circuit at the predetermined frequency.

20 . The method of claim 15 , further comprising:

controlling the transmit circuit to generate the RF transmit signal comprising a predetermined code word;

coupling a transmit signal output to a receive signal input to provide the RF transmit signal from the transmit circuit to the receive circuit as the RF receive signal; and

analyzing the RF receive signal to determine whether the predetermined code word is received by the receive circuit.

21 . The method of claim 15 , further comprising:

generating a digital transmit signal comprising a plurality of digital baseband samples;

converting the digital transmit signal into the RF transmit signal comprising the at least one predetermined signal characteristic;

receiving the RF receive signal and converting the RF receive signal into the plurality of digital baseband samples; and

analyzing the plurality of digital baseband samples associated with a digital receive signal to determine whether the at least one predetermined signal characteristic conforms to the at least one predefined pass/failure criteria.

22 . The method of claim 21 , further comprising performing Fast Fourier Transform (FFT) on the plurality of digital baseband samples to determine whether the at least one predetermined signal characteristic conforms to the at least one predefined pass/failure criteria.

23 .- 26 . (canceled)

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2019
From: CORNING OPTICAL COMMUNICATIONS WIRELESS LTD
To: CORNING OPTICAL COMMUNICATIONS LLC
Reel/Frame 048411/0787 →