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UNSUPERVISED SEGMENTATION OF SUBSURFACE RADAR IMAGES

机译:封面雷达图像的无监督分割

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The volume of image data generated in ground-penetrating radar surveys can severely restrict the practicality of this site investigation technique. This is particularly true in situations where automatic analysis or interpretation is required, as segmentation and classification tasks that utilise multivariate data are critically affected by the volume and dimensionality of the data. A general-purpose unsuper-vised image segmentation system is presented here for the automatic detection of image regions exhibiting different visual texture properties. A suboptimal feature selection procedure is proposed to automatically select the set of texture features best suited for the particular application. The reduction in the size of the feature set both reduces the computation time and improves the accuracy of the final classification.
机译:在接地雷达调查中产生的图像数据的体积可能严重限制该站点调查技术的实用性。在需要自动分析或解释的情况下,这尤其如此,因为利用多元数据的分割和分类任务受到数据的体积和维度的批判性影响。这里介绍了一种通用的无核图像分割系统,用于自动检测表现出不同的视觉纹理属性的图像区域。提出了一个次优特征选择过程,以自动选择最适合特定应用程序的纹理功能集。特征集的大小的减小均降低了计算时间并提高了最终分类的准确性。

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