Publication | Open Access
Locating and Imaging through Scattering Medium in a Large Depth
16
Citations
27
References
2020
Year
EngineeringMicroscopyLarge DepthLocalizationSuper-resolution ImagingImage AnalysisLight Field ImagingImage FormationMachine VisionMedical ImagingSynthetic Aperture RadarAutomatic Target RecognitionInverse Scattering TransformsInverse ProblemsRange ImagingConstructed DinetComputer VisionRadarArray ProcessingBiomedical ImagingWave ScatteringLight ScatteringSingle Speckle PatternCaptured Speckle PatternImaging
Scattering medium brings great difficulties to locate and reconstruct objects especially when the objects are distributed in different positions. In this paper, a novel physics and learning-heuristic method is presented to locate and image the object through a strong scattering medium. A novel physics-informed framework, named DINet, is constructed to predict the depth and the image of the hidden object from the captured speckle pattern. With the phase-space constraint and the efficient network structure, the proposed method enables to locate the object with a depth mean error less than 0.05 mm, and image the object with an average peak signal-to-noise ratio (PSNR) above 24 dB, ranging from 350 mm to 1150 mm. The constructed DINet firstly solves the problem of quantitative locating and imaging via a single speckle pattern in a large depth. Comparing with the traditional methods, it paves the way to the practical applications requiring multi-physics through scattering media.
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