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Fast detection of vascular plaque in optical coherence tomography images using a reduced feature set

机译:使用减少的特征集快速检测光学相干断层扫描图像中的血管斑块

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Optical coherence tomography (OCT) images are capable of detecting vascular plaque by using the full set of 26 Haralick textural features and a standard K-means clustering algorithm. However, the use of the full set of 26 textural features is computationally expensive and may not be feasible for real time implementation. In this work, we identified a reduced set of 3 textural feature which characterizes vascular plaque and used a generalized Fuzzy C-means clustering algorithm. Our work involves three steps: 1) the reduction of a full set 26 textural feature to a reduced set of 3 textural features by using genetic algorithm (GA) optimization method 2) the implementation of an unsupervised generalized clustering algorithm (Fuzzy C-means) on the reduced feature space, and 3) the validation of our results using histology and actual photographic images of vascular plaque. Our results show an excellent match with histology and actual photographic images of vascular tissue. Therefore, our results could provide an efficient pre-clinical tool for the detection of vascular plaque in real time OCT imaging.
机译:光学相干断层扫描(OCT)图像能够通过使用全套26个haralick纹理特征和标准K-means聚类算法来检测血管斑块。然而,使用全套26个纹理特征是计算昂贵的,对于实时实现可能不可行。在这项工作中,我们确定了一组减少的3个纹理特征,其特征在于血管斑块并使用广义模糊C均值聚类算法。我们的工作涉及三个步骤:1)通过使用遗传算法(GA)优化方法2)实现无监督的广义聚类算法(模糊C-Mears)的实现,将完整的26纹理特征减少到减少的3个纹理特征。(模糊C-inse)在减少的特征空间,3)使用组织学和血管牙菌斑的实际摄影图像的结果验证。我们的结果表明,与血管组织的组织学和实际​​摄影图像显示出优异的匹配。因此,我们的结果可以在OCT成像实时检测血管斑块的有效前临床工具。

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