IP Library Granted Patent US 10,067,221
Granted Patent B2
US 10,067,221 · App. 14/679,461 · Granted Sep 4, 2018

Interference detection in a frequency modulated continuous wave (FMCW) radar system

Inventors: Brian Paul Ginsburg (Allen, TX); Karthik Subburaj (Bangalore, IN); Karthik Ramasubramanian (Bangalore, IN); Sachin Bhardwaj (Bangalore, IN); Sriram Murali (Bangalore, IN); Sandeep Rao (Bangalore, IN)
Assignee: TEXAS INSTRUMENTS INCORPORATED
G01S7/352G01S7/023G01S7/40G01S13/32G01S13/931
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Quick Facts
Patent No.
US 10,067,221
App. No.
14/679,461
Granted
Sep 4, 2018
Kind
B2
Abstract

A frequency modulated continuous wave (FMCW) radar system is provided that includes a receiver configured to generate a digital intermediate frequency (IF) signal, and an interference monitoring component coupled to the receiver to receive the digital IF signal, in which the interference monitoring component is configured to monitor at least one sub-band in the digital IF signal for interference, in which the at least one sub-band does not include a radar signal.

Claims (29)

1. A frequency modulated continuous wave (FMCW) radar system comprising:

a receiver configured to generate a digital intermediate frequency (IF) signal; and

an interference monitoring component coupled to the receiver to receive the digital IF signal, in which the interference monitoring component is configured to monitor at least one sub-band in the digital IF signal for interference, in which the at least one sub-band does not include a radar signal transmitted by the FMCW radar system,

in which the interference monitoring component is configured to compute received signal strength indicator (RSSI) values as a function of time for each sub-band of the at least one sub-band to determine whether or not interference is present in the sub-band.

2. The FMCW radar system of claim 1 , in which the interference monitoring component is configured to quantize each RSSI value based on at least one interference threshold to generate at least one interference impact indicator.

3. The FMCW radar system of claim 1 , in which the at least one sub-band includes one or both of a sub-band in an image band of the digital IF signal and a sub-band in an upper Nyquist band of the digital IF signal.

4. The FMCW radar system of claim 1 , in which RSSI values are generated for each chirp of a frame of chirps while a transmitter in the FMCW radar system is on.

5. The FMCW radar system of claim 1 , in which the digital IF signal is generated while a transmitter in the FMCW radar system is off.

6. The FMCW radar system of claim 1 , in which RSSI values are generated for each chirp of a frame of chirps while any transmitters in the FMCW radar system are off between chirps, and in which the digital IF signal is generated during each chirp ramp back and the at least one sub-band is a full bandwidth of the IF signal.

7. The FMCW radar system of claim 1 , in which the digital IF signal is generated by a scan of a full frequency range of the FMCW radar system prior to transmission of a frame of chirps while any transmitters in the FMCW radar system are off, and in which the at least one sub-band is a full bandwidth of the frequency range.

8. The FMCW radar system of claim 1 , in which RSSI values are generated after one or more chirps of a frame of chirps while any transmitters in the FMCW radar system are off between the one or more chirps, in which the digital IF signal is generated by a scan of a full frequency range of the FMCW radar system, and in which the at least one sub-band is a full bandwidth of the frequency range.

9. A method for interference detection in a frequency modulated continuous wave (FMCW) radar, the method comprising:

receiving, in an interference monitoring component of the FMCW radar, a digital intermediate frequency (IF) signal from a receiver in the FMCW radar; and

monitoring, by the interference monitoring component, at least one sub-band in the digital IF signal for interference, in which the at least one sub-band does not include a radar signal transmitted by the FMCW radar, and in which monitoring includes computing received signal strength indicator (RSSI) values as a function of time for each sub-band of the at least one sub-band to determine whether or not interference is present the sub-band.

10. The method of claim 9 , in which monitoring includes quantizing each RSSI value based on at least one interference threshold to generate at least one interference impact indicator.

11. The method of claim 9 , in which the at least one sub-band includes one or both of a sub-band of an image band of the digital IF signal and a sub-band of an upper Nyquist band of the digital IF signal.

12. The method of claim 9 , in which RSSI values are generated for each chirp of a frame of chirps while a transmitter in the FMCW radar system is on.

13. The method of claim 9 , in which the digital IF signal is generated while a transmitter in the FMCW radar system is off.

14. The method of claim 9 , in which RSSI values are generated for each chirp of a frame of chirps while any transmitters in the FMCW radar system are off between chirps, and in which the digital IF signal is generated during each chirp ramp back and the at least one sub-band is a full bandwidth of the IF signal.

15. The method of claim 9 , in which the digital IF signal is generated by a scan of a full frequency range of the FMCW radar system prior to transmission of a frame of chirps while any transmitters in the FMCW radar system are off, and in which the at least one sub-band is a full bandwidth of the frequency range.

16. The method of claim 9 , in which RSSI values are generated after one or more chirps of a frame of chirps while any transmitters in the FMCW radar system are off between the one or more chirps, in which the digital IF signal is generated by a scan of a full frequency range of the FMCW radar system, and in which the at least one sub-band is a full bandwidth of the frequency range.

17. A frequency modulated continuous wave (FMCW) radar system comprising:

a receiver configured to generate a digital intermediate frequency (IF) signal during transmission of a frame of chirps;

a digital front end (DFE) component coupled to the receiver to receive the digital IF signal, in which DFE is configured to extract a radar signal band from the digital IF signal; and

an interference monitoring component coupled to the receiver to receive the digital IF signal, in which the interference monitoring component is configured to monitor each sub-band of a plurality of sub-bands in the digital IF signal for interference, in which the radar signal band is not included in the plurality of sub-bands,

in which the interference monitoring component is configured to compute received signal strength indicator (RSSI) values as a function of time for each sub-band of the plurality of sub-bands to determine whether or not interference is present in the sub-band.

18. The FMCW radar system of claim 17 , in which the interference monitoring component is configured to quantize each RSSI value based on at least one interference threshold to generate at least one interference impact indicator.

19. The FMCW radar system of claim 17 , in which the plurality of sub-bands includes one or both of a sub-band in an image band of the digital IF signal and a sub-band in an upper Nyquist band of the digital IF signal.

20. The FMCW radar system of claim 17 , in which the plurality of sub-bands do not include a radar signal transmitted by the FMCW radar system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2015
From: GINSBURG, BRIAN PAUL; SUBBURAJ, KARTHIK; RAMASUBRAMANIAN, KARTHIK; BHARDWAJ, SACHIN; MURALI, SRIRAM; RAO, SANDEEP
To: TEXAS INSTRUMENTS INCORPORATED
Reel/Frame 035368/0011 →
Continuity (1)
Related Publication 20160291130A1 · Oct 6, 2016
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