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Specular Reflectance Suppression in Endoscopic Imagery via Stochastic Bayesian Estimation

机译:通过随机贝叶斯估计抑制内镜图像中的镜面反射

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A novel stochastic Bayesian estimation method is introduced for the purpose of suppressing specular reflectance in endoscopic imagery, benefiting both computer aided and manual analysis of endoscopic data. The maximum diffuse chromaticity, which is necessary for the calculation of the specular reflectance, is estimated via Bayesian least-squares minimization, with the posterior probability of maximum diffuse chromaticity given maximum chromaticity constructed via an adaptive Monte Carlo sampling approach. Experimental results using a set of clinical endoscopic imagery showed that the proposed method resulted in lower coefficient of variation values when compared to existing methods in homogeneous regions contaminated by strong specular highlights, which is indicative of improved specular reflectance suppression. These findings axe further reinforced by visual assessment of the specular suppressed endoscopic imagery produced by the proposed method.
机译:为了抑制内窥镜图像中的镜面反射,引入了一种新颖的随机贝叶斯估计方法,这有利于内窥镜数据的计算机辅助和人工分析。计算镜面反射率所必需的最大扩散色度是通过贝叶斯最小二乘最小化来估计的,最大扩散色度的后验概率是通过自适应蒙特卡洛采样方法构造的,给出了最大色度。使用一组临床内窥镜图像的实验结果表明,与现有方法相比,该方法在受强镜面高光污染的均匀区域中的变异系数值更低,这表明镜面反射抑制得到了改善。通过对所提出的方法产生的镜面反射抑制的内窥镜图像进行视觉评估,这些发现进一步得到了加强。

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