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Tile-Based Two-Dimensional Phase Unwrapping for Digital Holography Using a Modular Framework

机译:使用模块化框架的数字全息照相的基于图块的二维相位展开

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摘要

A variety of physical and biomedical imaging techniques, such as digital holography, interferometric synthetic aperture radar (InSAR), or magnetic resonance imaging (MRI) enable measurement of the phase of a physical quantity additionally to its amplitude. However, the phase can commonly only be measured modulo 2π, as a so called wrapped phase map. Phase unwrapping is the process of obtaining the underlying physical phase map from the wrapped phase. Tile-based phase unwrapping algorithms operate by first tessellating the phase map, then unwrapping individual tiles, and finally merging them to a continuous phase map. They can be implemented computationally efficiently and are robust to noise. However, they are prone to failure in the presence of phase residues or erroneous unwraps of single tiles. We tried to overcome these shortcomings by creating novel tile unwrapping and merging algorithms as well as creating a framework that allows to combine them in modular fashion. To increase the robustness of the tile unwrapping step, we implemented a model-based algorithm that makes efficient use of linear algebra to unwrap individual tiles. Furthermore, we adapted an established pixel-based unwrapping algorithm to create a quality guided tile merger. These original algorithms as well as previously existing ones were implemented in a modular phase unwrapping C++ framework. By examining different combinations of unwrapping and merging algorithms we compared our method to existing approaches. We could show that the appropriate choice of unwrapping and merging algorithms can significantly improve the unwrapped result in the presence of phase residues and noise. Beyond that, our modular framework allows for efficient design and test of new tile-based phase unwrapping algorithms. The software developed in this study is freely available.
机译:各种物理和生物医学成像技术,例如数字全息术,干涉式合成孔径雷达(InSAR)或磁共振成像(MRI),都可以测量除振幅之外的物理量的相位。但是,通常只能以2π模测量相位,即所谓的包裹相位图。相位展开是从封装的相位中获取基础物理相位图的过程。基于图块的相位展开算法通过首先细分相位图,然后展开单个图块,最后将它们合并为连续的相位图来进行操作。它们可以有效地通过计算实现,并且对噪声具有鲁棒性。但是,在存在相残留物或单个瓷砖错误包裹的情况下,它们很容易失效。我们试图通过创建新颖的图块展开和合并算法以及创建允许以模块化方式组合它们的框架来克服这些缺点。为了提高图块展开步骤的鲁棒性,我们实现了基于模型的算法,该算法有效利用线性代数来展开单个图块。此外,我们改编了已建立的基于像素的展开算法,以创建高质量的引导图块合并。这些原始算法以及以前存在的算法都是在模块化阶段展开的C ++框架中实现的。通过检查展开和合并算法的不同组合,我们将我们的方法与现有方法进行了比较。我们可以证明,在存在相位残留和噪声的情况下,适当选择解缠和合并算法可以显着改善解缠的结果。除此之外,我们的模块化框架还可以对新的基于图块的相位展开算法进行有效的设计和测试。本研究开发的软件可免费获得。

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