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Compensating Motion Artifacts of 3D in vivo SD-OCT Scans

机译:补偿3D体内SD-OCT扫描的运动伪像

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摘要

We propose a probabilistic approach for compensating motion artifacts in 3D in vivo SD-OCT (spectral-domain optical coherence tomography) tomographs. Subject movement causing axial image shifting is a major problem for in vivo imaging. Our technique is applied to analyze the tissue at percutaneous implants recorded with SD-OCT in 3D. The key challenge is to distinguish between motion and the natural 3D spatial structure of the scanned subject. To achieve this, the motion estimation problem is formulated as a conditional random field (CRF). For efficient inference, the CRF is approximated by a Gaussian Markov random field. The method is verified on synthetic datasets and applied on* noisy in vivo recordings showing significant reduction of motion artifacts while preserving the tissue geometry.
机译:我们提出一种概率方法来补偿3D体内SD-OCT(光谱域光学相干断层扫描)断层扫描仪中的运动伪像。引起轴向图像移位的对象移动是体内成像的主要问题。我们的技术用于分析以3D SD-OCT记录的经皮植入物的组织。关键的挑战是区分运动和被扫描对象的自然3D空间结构。为此,将运动估计问题表述为条件随机场(CRF)。为了进行有效推断,CRF由高斯马尔可夫随机场近似。该方法在合成数据集上进行了验证,并应用于嘈杂的体内记录,显示出运动伪影显着减少,同时保留了组织的几何形状。

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