Sliding spotlight SAR three-dimensional imaging method based on compressed sensing
A sliding beamforming, compressed sensing technology, applied in the direction of reflection/re-radiation of radio waves, use of re-radiation, measurement devices, etc., can solve the problems of low imaging accuracy and small imaging area.
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specific Embodiment approach 1
[0026] Specific Embodiment 1: The compressive sensing-based sliding beam spotting SAR three-dimensional imaging method of this embodiment is implemented in the following steps:
[0027] 1. The airborne radar establishes the sliding spotlight SAR echo model according to the original echo signal received by the scene irradiation area;
[0028] 2. Two-dimensional sliding spotlight SAR imaging of a single radar in the model;
[0029] 3. Form a three-dimensional matrix from the SAR images of a plurality of radars after step 2 imaging;
[0030] 4. Perform compressed sensing processing on the three-dimensional matrix slice, that is, complete the sliding spotlight SAR three-dimensional imaging method based on compressed sensing.
specific Embodiment approach 2
[0031] Embodiment 2: The difference between this embodiment and Embodiment 1 is that the establishment of the sliding beam spotting SAR echo model in the step 1 is specifically:
[0032] S ( s , τ ) = A 0 · rect [ X - ( V g / V a ) s ...
specific Embodiment approach 3
[0037] Specific embodiment three: the difference between this embodiment and specific embodiment one or two is that: in the step two, the two-dimensional sliding poly-SAR imaging of a single radar in the model:
[0038] (1) Perform azimuth Fourier transform according to the original echo signal to obtain the range-Doppler domain
[0039] The azimuth Fourier transform is performed on the original echo signal, and the signal domain is changed into the range Doppler domain. According to the formula (1-1), the exact expression of the original echo signal in the range Doppler domain is:
[0040] S rd ( f s , τ ) = C 1 ...
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