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Fitting-free algorithm for efficient quantification of collagen fiber alignment in SHG imaging applications

机译:在SHG成像应用中用于高效定量胶原纤维排列的免拟合算法

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摘要

Collagen fiber alignment derived from second harmonic generation (SHG) microscopy images can be important for disease diagnostics. Image processing algorithms are needed to robustly quantify the alignment in images with high sensitivity and reliability. Fourier transform (FT) magnitude, 2D power spectrum, and image autocorrelation have previously been used to extract fiber information from images by assuming a certain mathematical model (e.g. Gaussian distribution of the fiber-related parameters) and fitting. The fitting process is slow and fails to converge when the data is not Gaussian. Herein we present an efficient constant-time deterministic algorithm which characterizes the symmetricity of the FT magnitude image in terms of a single parameter, named the fiber alignment anisotropy R ranging from 0 (randomized fibers) to 1 (perfect alignment). This represents an important improvement of the technology and may bring us one step closer to utilizing the technology for various applications in real time. In addition, we present a digital image phantom-based framework for characterizing and validating the algorithm, as well as assessing the robustness of the algorithm against different perturbations.
机译:源自二次谐波(SHG)显微镜图像的胶原纤维排列对疾病诊断可能很重要。需要图像处理算法以高灵敏度和可靠性对图像中的对齐进行鲁棒性量化。傅立叶变换(FT)幅度,2D功率谱和图像自相关先前已通过假设某个数学模型(例如,与纤维相关的参数的高斯分布)和拟合来从图像中提取纤维信息。当数据不是高斯时,拟合过程很慢并且无法收敛。本文中,我们提出了一种有效的恒定时间确定性算法,该算法以单个参数来表征FT幅值图像的对称性,该参数被称为光纤排列各向异性R,其范围为0(随机光纤)至1(完美排列)。这代表了这项技术的一项重要改进,可能使我们更进一步地将技术实时用于各种应用。此外,我们提出了一种基于数字图像幻影的框架,用于表征和验证算法,以及评估算法针对不同扰动的鲁棒性。

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