Method and devices for processing radar signals

US9239379B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9239379-B2
Application numberUS-201313888025-A
CountryUS
Kind codeB2
Filing dateMay 6, 2013
Priority dateMay 9, 2012
Publication dateJan 19, 2016
Grant dateJan 19, 2016

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  5. First independent claim

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Abstract

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A method for processing signals received by a plurality of receiving antennas in a radar system, for example for road safety, which emits sequences of chirp-modulated signals, wherein the received signals are mixed with local replicas of the transmitted signals so as to generate, for each receiving antenna, a sequence of detection signals. The detection signals are subjected to Fourier-transform processing and beam-forming processing for generating values of range, azimuth, and speed for at least one obstacle or “target” detected by the radar system. The method includes an acquisition process for yielding approximate values of range and azimuth of the obstacle, and a tracking process for yielding accurate range, azimuth and speed values of the obstacle itself.

First claim

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What is claimed is: 1. A method comprising: receiving signals using a plurality of receiving antennas comprising sequences of chirp-modulated signals, and using a memory and a processor cooperating therewith to mix the received signals with replicas of the modulated signals to produce, for each antenna in the plurality of receiving antennas, a sequence of detection signals, the detection signals being subjected to Fourier transform processing, and beam-forming processing to generate range, azimuth and speed values for at least one target of the radar system, perform a target acquisition process including subjecting the sequence of detection signals for each antenna in the plurality of receiving antennas to mono-dimensional FFT processing and the detection signals for the plurality of receiving antennas to beam-forming processing to produce mono-dimensional FFT, and beam-forming processed detection signals adapted to provide approximate range and azimuth values for at least one target of the radar system, and perform a target tracking process including tracking, in a subset of detection signals for the at least one target selected as a function of the approximate range and azimuth values provided by the acquisition process, a complex-valued target signal, the variation of the phase of the complex-valued target signal providing a speed value for the at least one target, wherein the tracking process includes tracking the complex-valued target signal over a set of adjacent cells located about the approximate range and azimuth values provided by the acquisition process, whereby the presence of a peak value of the complex-valued target signal in a cell of the set of adjacent cells is indicative of the location of the at least one target at the cell and the passage of the peak value of the complex-value target signal to another cell of the set of adjacent cells is indicative of the displacement of the at least one target to the another cell. 2. The method of claim 1 further comprising using the memory and processor to select the set of adjacent cells to include a central cell of the set identified by the approximate range and azimuth values provided by the acquisition process, a first pair of neighboring cells having lower and higher range values, respectively, and the same azimuth value of the central cell, and a second pair of neighboring cells having lower and higher respectively, azimuth values and the same range value of the central cell. 3. The method of claim 1 further comprising using the memory and processor to subject the mono-dimensional FFT and beam-forming processed detection signals to at least one of de-noising power integration and CFAR processing. 4. The method of claim 1 further comprising using the memory and processor to perform the tracking process on detection signals not subjected to the mono-dimensional FFT and beam-forming processing, the tracking process including: discrete Fourier transform processing the detection signals for a plurality of range values and beam-forming processing the detection signals for a plurality of azimuth values starting from the approximate range and azimuth values provided by the acquisition process; and updating the range and azimuth values for the OFT processing and beam-forming processing based on feedback values provided from the tracking of the complex-valued target signal, whereby the OFT processing and beam-forming processing provide accurate range and azimuth values for the at least one target. 5. The method of claim 4 further comprising using the memory and processor to track the complex-valued target signal in detection signals subjected to mixing with a complex exponential signal to counter the variation of the phase of the complex-valued target signal, and coherently de-noising the complex-valued target signal after mixing with the complex exponential signal. 6. The method of claim 5 further comprising using the memory and processor to generate the complex exponential signal within a frequency-lock loop driven by the variation of the phase of the complex-valued target signal. 7. The method of claim 5 further comprising using the memory and processor to generate the complex exponential signal within a phase-lock loop driven by the phase of the complex-valued target signal. 8. The method of claim 1 further comprising using the memory and processor to derive from the speed value for the at least one target an acceleration value for the at least one target. 9. The method of claim 1 further comprising using the memory and processor to track the complex-valued target signal by complex adaptive filtering of the subset of detection signals. 10. The method of claim 1 further comprising using the memory and processor to produce, as a function of the approximate range and azimuth values provided by the acquisition process, a list of targets covered by the radar system and updating the list when a target enters or leaves the radar system coverage. 11. A device for a processing signals received from a plurality of receiving antennas comprising sequences of chirp-modulated signals, the device comprising: a memory and a processor cooperating therewith to mix the received signals with replicas of the modulated signals to produce, for each antenna in the plurality of receiving antennas, a sequence of detection signals, the detection signals being subjected to Fourier transform processing and beam-forming processing to generate range, azimuth and speed values for at least one target of the radar system, perform a target acquisition process including subjecting the sequence of detection signals for each antenna in the plurality of receiving antennas to mono-dimensional FFT processing and the detection signals for the plurality of receiving antennas to beam-forming processing to produce mono-dimensional FFT, and beam-forming processed detection signals adapted to provide approximate range and azimuth values for at least one target of the radar system, and perform a target tracking process including tracking, in a subset of detection signals for the at least one target selected as a function of the approximate range and azimuth values provided by the acquisition process, a complex-valued target signal, the variation of the phase of the complex-valued target signal providing a speed value for the at least one target, wherein the tracking process includes tracking the complex-valued target signal over a set of adjacent cells located about the approximate range and azimuth values provided by the acquisition process, whereby the presence of a peak value of the complex-valued target signal in a cell of the set of adjacent cells is indicative of the location of the at least one target at the cell and the passage of the peak value of the complex-value target signal to another cell of the set of adjacent cells is indicative of the displacement of the at least one target to the another cell. 12. The device of claim 11 wherein the processor is configured to select the set of adjacent cells to include a central cell of the set identified by the approximate range and azimuth values provided by the acquisition process, a first pair of neighboring cells having lower and higher range values, respectively, and the same azimuth value of the central cell, and a second pair of neighboring cells having lower and higher respectively, azimuth values and the same range value of the central cell. 13. The device of claim 11 wherein the processor is configured to subject the mono-dimensional FFT and beam-forming processed detection signals to at least one of de-noising power integration and CFAR processing. 14. The

Assignees

Inventors

Classifications

  • using transmission of continuous unmodulated waves, amplitude-, frequency-, or phase-modulated waves · CPC title

  • Extracting wanted echo-signals (Doppler systems G01S13/50) · CPC title

  • Simultaneous measurement of distance and other co-ordinates (indirect measurement G01S13/46) · CPC title

  • using sawtooth modulation · CPC title

  • Radar with phased array antenna · CPC title

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What does patent US9239379B2 cover?
A method for processing signals received by a plurality of receiving antennas in a radar system, for example for road safety, which emits sequences of chirp-modulated signals, wherein the received signals are mixed with local replicas of the transmitted signals so as to generate, for each receiving antenna, a sequence of detection signals. The detection signals are subjected to Fourier-transfor…
Who is the assignee on this patent?
St Microelectronics Srl
What technology area does this patent fall under?
Primary CPC classification G01S13/72. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Jan 19 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).