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Advantages of adaptive speckle filtering prior to application of iterative deconvolution methods for optical coherent tomography imaging

机译:在光学相干断层成像中应用迭代解卷积方法之前自适应散斑滤波的优势

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The axial resolution of optical coherence tomography (OCT) is closely related to the light source spectrum width. Unfortunately, most basic sources providing the required power for decent OCT image have narrow spectra, which generate a resolution loss. Assuming the OCT system is linear shift-invariant, we can consider the system output as the convolution of the theoretical signal with a system impulse response due to this spectrum narrowness. It becomes then possible to enhance this resolution through iterative deconvolution methods (IDM). However those methods have a significant drawback, as they usually significantly enhance speckle, which is another consequence of the source spectrum narrowness. To compensate this, we rely on preliminary speckle filtering, and especially the adaptative ones, which allow tackling the speckle without blurring the image. We first studied enhancement proposed by most popular IDMs on OCT images, and then the effect of preliminary adaptive speckle filtering (ASF) by different common adaptive methods. Then, among those methods, we combined Frost filter and Richardson-Lucy deconvolution in the appropriated way; this way we both enhanced resolution by 2 and reduced speckle (raising CNR from 0.7 to 1.3).
机译:光学相干断层扫描(OCT)的轴向分辨率与光源光谱宽度密切相关。不幸的是,大多数基本信号源为体面的OCT图像提供所需的功率,其光谱较窄,会产生分辨率损失。假设OCT系统是线性不变的,我们可以将系统输出视为理论信号的卷积,这是由于该频谱窄而产生的系统脉冲响应。这样就可以通过迭代解卷积方法(IDM)来提高此分辨率。然而,那些方法具有显着的缺点,因为它们通常显着增强斑点,这是源光谱狭窄的另一结果。为了弥补这一点,我们依赖于初步的斑点过滤,尤其是自适应斑点过滤,可以处理斑点而不会使图像模糊。我们首先研究了最流行的IDM在OCT图像上提出的增强,然后研究了通过不同的常见自适应方法进行的初步自适应散斑滤波(ASF)的效果。然后,在这些方法中,我们以适当的方式结合了Frost滤波器和Richardson-Lucy反卷积。这样,我们既可以将分辨率提高2倍,又可以减少斑点(CNR从0.7提高到1.3)。

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