IP Library Granted Patent US 11,374,599
Granted Patent B2
US 11,374,599 · App. 16/331,086 · Granted Jun 28, 2022

Circuits for identifying interferers using compressed-sampling

Inventors: Tanbir Haque (Jackson Heights, NY); Peter R. Kinget (Summit, NJ); Matthew W. Bajor (Bayonne, NJ)
Assignee: The Trustees of Columbia University in the City of New York
H04B1/10H04B1/16
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Quick Facts
Patent No.
US 11,374,599
App. No.
16/331,086
Granted
Jun 28, 2022
Kind
B2
Abstract

Circuits for identifying interferers using compressed-sampling, comprising: a low noise amplifier (LNA); a passive mixer having a first input coupled to an output of the LNA; a local oscillator (LO) source having an output coupled to a second input of the passive mixer; a low pass filter having an input coupled to an output of the passive mixer; an analog-to-digital converter (ADC) having an input coupled to the output of the low pass filter; a digital baseband (DBB) circuit having an input coupled to an output of the ADC; and a compression-sampling digital-signal-processor (DSP) having an input coupled to the output of the DBB circuit, wherein the compression-sampling DSP is configured to output identifiers of frequency locations of interferers, wherein, in a first mode, the LO source outputs a modulated LO signal that is formed by modulating an LO signal with a pseudo-random sequence.

Claims (65)

1. A circuit for identifying interferers using compressed-sampling, comprising:

a first low noise amplifier (LNA) having an input that receives a radio frequency (RF) signal and having an output;

a first passive mixer having a first input coupled to the output of the first LNA, having a second input, and having an output;

a first local oscillator (LO) source having an output coupled to the second input of the first passive mixer;

a first low pass filter having an input coupled to the output of the first passive mixer and having an output;

a first analog-to-digital converter (ADC) having an input coupled to the output of the first low pass filter and having an output;

a first digital baseband (DBB) circuit having an input coupled to the output of the first ADC and having an output;

a compression-sampling digital signal processor (DSP) having an input coupled to the output of the first DBB circuit and having a plurality of outputs, wherein the compression-sampling DSP is configured to output identifiers of frequency locations of interferers;

a second passive mixer having a first input coupled to the output of the first LNA, having a second input, and having an output;

a second local oscillator (LO) source having an output coupled to the second input of the second passive mixer;

a second low pass filter having an input coupled to the output of the second passive mixer and having an output;

a second analog-to-digital converter (ADC) having an input coupled to the output of the second low pass filter and having an output coupled to the input of the first DBB circuit,

wherein, in a first mode, the first LO source outputs a first modulated LO signal that is formed by modulating a first local oscillator signal with a pseudo-random sequence, and

wherein, in the first mode, the second LO source outputs a second modulated LO signal that is formed by modulating a second local oscillator signal with the pseudo-random sequence.

2. The circuit of claim 1 , wherein the first LNA is a low noise transconductance amplifier (LNTA).

3. The circuit of claim 1 , wherein the first passive mixer comprises at least one switch.

4. The circuit of claim 1 , wherein the first LO source comprises:

an LO source mixer having a first input, a second input, and an output, wherein the output is coupled to the output of the LO source;

an LO source local oscillator having an output couple to first input of the LO source mixer; and

a pseudo-random sequence generator having an output coupled to the second input of the LO source mixer.

5. The circuit of claim 1 , wherein the first low pass filter is implemented using a trans-impedance amplifier (TIA).

6. The circuit of claim 1 , wherein a frequency of the first local oscillator signal equals a frequency of the second local oscillator signal.

7. The circuit of claim 1 , wherein a frequency of the first local oscillator signal is different from a frequency of the second local oscillator signal.

8. The circuit of claim 1 , wherein in a second mode, the first LO source outputs the first local oscillator signal.

9. The circuit of claim 1 , wherein in a third mode, the first LO source outputs a square wave modulated LO signal that is formed by modulating the first local oscillator signal with a square wave.

10. The circuit of claim 1 , further comprising:

a second low noise amplifier (LNA) having an input that receives the radio frequency (RF) signal and having an output;

a third passive mixer having a first input coupled to the output of the second LNA, having a second input, and having an output;

a third local oscillator (LO) source having an output coupled to the second input of the third passive mixer;

a third low pass filter having an input coupled to the output of the third passive mixer and having an output;

a third analog-to-digital converter (ADC) having an input coupled to the output of the third low pass filter and having an output; and

a second digital baseband (DBB) circuit having an input coupled to the output of the third ADC and having an output,

wherein the output of the second DBB circuit is coupled to the input of the compression-sampling digital signal processor (DSP).

11. The circuit of claim 10 , wherein the first LNA is a common-source low noise transconductance amplifier (LNTA), and wherein the second LNA is a common-gate LNTA.

12. The circuit of claim 1 , wherein the compression-sampling DSP is configured to perform an orthogonal matching pursuit algorithm to identify frequencies of the interferers.

13. The circuit of claim 1 , wherein the pseudo-random sequence is a pseudo-random bit sequence.

14. A circuit for identifying interferers using compressed-sampling, further comprising:

a first low noise amplifier (LNA) having an input that receives a radio frequency (RF) signal and having an output;

a first passive mixer having a first input coupled to the output of the first LNA, having a second input, and having an output;

a first local oscillator (LO) source having an output coupled to the second input of the first passive mixer;

a first low pass filter having an input coupled to the output of the first passive mixer and having an output;

a first analog-to-digital converter (ADC) having an input coupled to the output of the first low pass filter and having an output;

a first digital baseband (DBB) circuit having an input coupled to the output of the first ADC and having an output;

a compression-sampling digital signal processor (DSP) having an input coupled to the output of the first DBB circuit and having a plurality of outputs, wherein the compression-sampling DSP is configured to output identifiers of frequency locations of interferers;

a second low noise amplifier (LNA) having an input that receives the radio frequency (RF) signal and having an output;

a third passive mixer having a first input coupled to the output of the second LNA, having a second input, and having an output;

a third local oscillator (LO) source having an output coupled to the second input of the third passive mixer;

a third low pass filter having an input coupled to the output of the third passive mixer and having an output;

a third analog-to-digital converter (ADC) having an input coupled to the output of the third low pass filter and having an output; and

a second digital baseband (DBB) circuit having an input coupled to the output of the third ADC and having an output,

wherein, in a first mode, the first LO source outputs a first modulated LO signal that is formed by modulating a first local oscillator signal with a pseudo-random sequence, and

wherein the output of the second DBB circuit is coupled to the input of the compression-sampling digital signal processor (DSP).

15. The circuit of claim 14 , wherein the first LNA is a common-source low noise transconductance amplifier (LNTA), and wherein the second LNA is a common-gate LNTA.

16. The circuit of claim 14 , wherein the compression-sampling DSP is configured to perform an orthogonal matching pursuit algorithm to identify frequencies of the interferers.

17. The circuit of claim 14 , wherein the first LNA is a low noise transconductance amplifier (LNTA).

18. The circuit of claim 14 , wherein the first passive mixer comprises at least one switch.

19. The circuit of claim 14 , wherein the first LO source comprises:

an LO source mixer having a first input, a second input, and an output, wherein the output is coupled to the output of the LO source;

an LO source local oscillator having an output couple to first input of the LO source mixer; and

a pseudo-random sequence generator having an output coupled to the second input of the LO source mixer.

20. The circuit of claim 14 , wherein the first low pass filter is implemented using a trans-impedance amplifier (TIA).

21. The circuit of claim 14 , wherein in a second mode, the first LO source outputs the first local oscillator signal.

22. The circuit of claim 14 , wherein in a third mode, the first LO source outputs a square wave modulated LO signal that is formed by modulating the first local oscillator signal with a square wave.

23. The circuit of claim 14 , wherein the compression-sampling DSP is configured to perform an orthogonal matching pursuit algorithm to identify frequencies of the interferers.

24. The circuit of claim 14 , wherein the pseudo-random sequence is a pseudo-random bit sequence.

Assignments (2)
CONFIRMATORY LICENSE Recorded Oct 16, 2019
From: COLUMBIA UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 050741/0747 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 17, 2019
From: HAQUE, TANBIR; KINGET, PETER R.; BAJOR, MATTHEW
To: THE TRUSTEES OF COLUMBIA UNIVERSITY IN THE CITY OF NEW YORK
Reel/Frame 049779/0742 →
Continuity (2)
Provisional Application 62411626 · Oct 23, 2016
Related Publication 20210297098A1 · Sep 23, 2021