Method and systems for phaseless frequency-modulated continuous-wave multistatic radar imaging

US12487351B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-12487351-B2
Application numberUS-202318457984-A
CountryUS
Kind codeB2
Filing dateAug 29, 2023
Priority dateOct 28, 2022
Publication dateDec 2, 2025
Grant dateDec 2, 2025

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Abstract

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Existing multistatic configurations of Radar systems requires a direct LoS signal and/or time synchronization among the Radar transmitter and the multistatic distributed Radar receivers. The present disclosure provides a phaseless frequency-modulated continuous-wave multistatic Radar (PFMR) imaging that relaxes requirement of the direct LoS signal and only requires a plurality of parameters of a FMCW signal comprising a chirp signal rate, a carrier frequency and, a period of chirp to be known. Further, it also removes condition of the time synchronization among a plurality of FMCW multistatic distributed Radar receivers. However, because of absence of the time synchronization among a plurality of FMCW multistatic distributed Radar receivers, an unknown random phase offset appears after deramping. The present disclosure eliminates the unknown random phase offset, by performing autocorrelation function on a mixed signal, resulting in a phaseless measurement data corresponding to a plurality of FMCW Radar imaging signals.

First claim

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What is claimed is: 1 . A processor implemented method comprising: transmitting, via a frequency-modulated continuous-wave (FMCW) non-cooperative transmitter controlled by one or more hardware processors, a plurality of chirp signals, over a scene of interest; receiving, via a plurality of FMCW multistatic distributed Radio Detection And Ranging (Radar) receivers controlled by the one or more hardware processors, a plurality of FMCW Radar imaging signals back scattered from the scene of interest; generating, via the one or more hardware processors, a reference chirp signal at each of the plurality of FMCW multistatic distributed Radar receivers, with an unknown random phase offset between a location of the non-cooperative FMCW transmitter and position of corresponding FMCW Radar receiver; mixing, via the one or more hardware processors, the plurality of FMCW Radar imaging signals at each of the plurality of FMCW multistatic distributed Radar receivers with the corresponding generated reference chirp signal, to obtain a mixed signal with unknown random phase offset; performing, via the one or more hardware processors, an auto-correlation function, on to the mixed signal for eliminating the unknown random phase offset, resulting in a phaseless measurement data corresponding to the plurality of FMCW Radar imaging signals; discretizing, via the one or more hardware processors, the scene of interest, into a plurality of small cells, and generate a forward model (L) corresponding to the location of the plurality of FMCW multistatic distributed Radar receivers, the non-cooperative FMCW transmitter and, a plurality of discretized locations of the scene of interest; expressing, via the one or more hardware processors, the phaseless measurement data, by concatenating the phaseless measurement data in terms of the forward model and a plurality of reflectivities to be estimated; formulating, via the one or more hardware processors, an optimization problem and converting to a constrained optimization problem by using a variable splitting approach, to estimate the plurality of reflectivities from the phaseless measurement data; obtaining, via the one or more hardware processors, the plurality of reflectivities (ρ), by solving a first subproblem and a second subproblem of the constrained optimization problem; and obtaining, via the one or more hardware processors, a plurality of reconstructed phaseless frequency-modulated continuous-wave multistatic Radar (PFMR) image signals from the obtained plurality of reflectivities. 2 . The method of claim 1 , wherein the plurality of FMCW multistatic distributed Radar receivers are asynchronous distributed receivers, and a Line-of Sight (LoS) signal is absent between the FMCW non-cooperative transmitter and the plurality of FMCW multistatic distributed Radar receivers. 3 . The method of claim 1 , wherein the unknown random phase offset appears because of the absence of LoS signal and the asynchronous distributed receivers. 4 . The method of claim 1 , wherein a plurality of parameters comprises a chirp signal rate, a carrier frequency and a period of chirp corresponding to the plurality of chirp signals, and wherein the plurality of parameters are known to the plurality of FMCW multistatic distributed Radar receivers. 5 . The method of claim 1 , wherein the reference chirp signal is different for each of the plurality of FMCW multistatic distributed Radar receivers. 6 . The method of claim 1 , wherein in each element of the forward model depends only on the location of the FMCW non-cooperative transmitter, and wherein if the location of the FMCW non-cooperative transmitter is unknown, each element of the forward model is approximated by using far-field and small-scene approximations. 7 . A system comprising: a memory storing instructions; one or more communication interfaces; and one or more hardware processors coupled to the memory via the one or more communication interfaces, wherein the one or more hardware processors are configured by the instructions to: transmit, via a frequency-modulated continuous-wave (FMCW) non-cooperative transmitter, a plurality of chirp signals, over a scene of interest; receive, via a plurality of FMCW multistatic distributed Radio Detection And Ranging (Radar) receivers, a plurality of FMCW Radar imaging signals back scattered from the scene of interest; generate a reference chirp signal at each of the plurality of FMCW multistatic distributed Radar receivers, with an unknown random phase offset between a location of the non-cooperative FMCW transmitter and position of corresponding FMCW Radar receiver; mix the plurality of FMCW Radar imaging signals at each of the plurality of FMCW multistatic distributed Radar receivers with the corresponding generated reference chirp signal, to obtain a mixed signal with unknown random phase offset; perform an auto-correlation function, on to the mixed signal for eliminating the unknown random phase offset, resulting in a phaseless measurement data corresponding to the plurality of FMCW Radar imaging signals; discretize the scene of interest, into a plurality of small cells, and generate a forward model(L) corresponding to the location of the plurality of FMCW multistatic distributed Radar receivers, the non-cooperative FMCW transmitter and, a plurality of discretized locations of the scene of interest; express the phaseless measurement data, by concatenating the phaseless measurement data in terms of the forward model and a plurality of reflectivities to be estimated; formulate an optimization problem and converting to a constrained optimization problem by using a variable splitting approach, to estimate the plurality of reflectivities from the phaseless measurement data; obtain the plurality of reflectivities (ρ), by solving a first subproblem and a second subproblem of the constrained optimization problem; and obtain a plurality of reconstructed phaseless frequency-modulated continuous-wave multistatic Radar (PFMR) image signals from the obtained plurality of reflectivities. 8 . The system of claim 7 , wherein the plurality of FMCW multistatic distributed Radar receivers are asynchronous distributed receivers, and a Line-of Sight (LoS) signal is absent between the FMCW non-cooperative transmitter and the plurality of FMCW multistatic distributed Radar receivers. 9 . The system of claim 7 , wherein the unknown random phase offset appears because of the absence of LoS signal and the asynchronous distributed receivers. 10 . The system of claim 7 , wherein a plurality of parameters comprises a chirp signal rate, a carrier frequency and a period of chirp are corresponding to the plurality of chirp signals, and wherein the plurality of parameters are known to the plurality of FMCW multistatic distributed Radar receivers. 11 . The system of claim 7 , wherein the reference chirp signal is different for each of the plurality of FMCW multistatic distributed Radar receivers. 12 . The system of claim 7 , wherein in each element of the forward model depends only on the location of the FMCW non-cooperative transmitter, wherein if the location of the FMCW non-cooperative transmitter is unknown, each element of the forward model is approximated by using far-field and small-scene approximations. 13 . One or more non-transitory machine-readable information storage mediums comprising one or more instructions which when executed by one or more hardware processors cause: transmitting, via a frequency-modulated continuous-wave (FMCW) non-cooperative transmitter, a plurality of chirp signals, over a scene of interest; receiving, via a plural

Assignees

Inventors

Classifications

  • using analysis of echo signal for target characterisation; Target signature; Target cross-section · CPC title

  • using transmission of continuous, frequency-modulated waves while heterodyning the received signal, or a signal derived therefrom, with a locally-generated signal related to the contemporaneously transmitted signal · CPC title

  • G01S13/89Primary

    for mapping or imaging · CPC title

  • G01S13/003Primary

    Bistatic radar systems; Multistatic radar systems · CPC title

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What does patent US12487351B2 cover?
Existing multistatic configurations of Radar systems requires a direct LoS signal and/or time synchronization among the Radar transmitter and the multistatic distributed Radar receivers. The present disclosure provides a phaseless frequency-modulated continuous-wave multistatic Radar (PFMR) imaging that relaxes requirement of the direct LoS signal and only requires a plurality of parameters of …
Who is the assignee on this patent?
Tata Consultancy Services Ltd
What technology area does this patent fall under?
Primary CPC classification G01S13/89. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Dec 02 2025 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).