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Three-dimensional speckle-noise reduction by using coherent integral imaging

机译:通过相干积分成像减少三维斑点噪声

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摘要

We present a 3D imaging method to reduce speckle noise that exists in coherent imaging systems. This approach is based on integral imaging (II). The elemental images set having speckle-noise patterns of a 3D object is obtained by II technique under coherent illumination. The computational geometrical ray-propagation algorithm is applied to the elemental images in order to reconstruct the original 3D object. A uniform probability-density function is assumed for modeling the phase distribution of the speckle patterns. The statistical point estimator is used for 3D speckle removal. Speckle index is calculated to compare the computational reconstruction using the proposed method with that of conventional coherent image degraded by speckle patterns for 3D object reconstruction and by object recognition. Experimental results are presented. The speckle index, mean square error, and signal-to-noise ratio are used as performance metrics and are shown to have been significantly improved by the proposed method to reduce speckle noise in the 3D object reconstruction. 3D reconstruction experiments of objects with reduced speckle noise are presented. To the best of our knowledge, this is the first report on 3D speckle removal using II and statistical estimation algorithms.
机译:我们提出了一种3D成像方法,以减少相干成像​​系统中存在的斑点噪声。此方法基于积分成像(II)。通过II技术在相干照明下获得具有3D物体的斑点噪声图案的基本图像集。计算几何射线传播算法应用于基本图像,以重建原始3D对象。假设使用统一的概率密度函数来对斑点图案的相位分布进行建模。统计点估计器用于3D斑点去除。计算斑点指数以将使用所提出的方法的计算重建与通过斑点图案进行3D对象重建和对象识别而退化的传统相干图像的重建进行比较。给出实验结果。散斑指数,均方误差和信噪比用作性能指标,并显示通过所提出的减少3D对象重建中的散斑噪声的方法得到了显着改善。提出了减少斑点噪声的物体的3D重建实验。据我们所知,这是有关使用II和统计估计算法去除3D斑点的第一份报告。

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