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An Intelligent Despeckling method for swept source optical coherence tomography images of skin

机译:皮肤扫掠光源光相干断层扫描图像的智能机除方法

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Optical Coherence Optical coherence tomography is a powerful high-resolution imaging method with a broad biomedical application. Nonetheless, OCT images suffer from a multiplicative artefacts so-called speckle, a result of coherent imaging of system. Digital filters become ubiquitous means for speckle reduction. Addressing the fact that there still a room for despeckling in OCT, we proposed an intelligent speckle reduction framework based on OCT tissue morphological, textural and optical features that through a trained network selects the winner filter in which adaptively suppress the speckle noise while preserve structural information of OCT signal. These parameters are calculated for different steps of the procedure to be used in designed Artificial Neural Network decider that select the best denoising technique for each segment of the image. Results of training shows the dominant filter is BM3D from the last category.
机译:光学相干光学相干断层扫描是一种具有广泛生物医学应用的强大的高分辨率成像方法。尽管如此,OCT图像遭受了所谓的斑点的乘法人工制品,其系统的相干成像的结果。数字滤光片变得无处不在的散斑减少手段。解决了OCT仍然有一个故障空间的事实,我们提出了一种基于OCT组织形态,纹理和光学特征的智能散斑减少框架,通过训练有素的网络选择胜利滤波器,其中自适应地抑制了散斑噪声,同时保留了结构信息OCT信号。对于用于设计的人工神经网络决策者的程序的不同步骤计算这些参数,该方法为图像的每个段选择最佳的去噪技术。培训结果显示主导过滤器是来自最后一类的BM3D。

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