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Image segmentation for quantification of air-water interface in micro-CT soil images.

机译:图像分割,用于量化微CT土壤图像中的空气-水界面。

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摘要

Soils are complex environments comprising various biological (roots, water, air etc) and physical constituents (minerals, aggregates, etc). Synchrotron radiation based X-ray microtomography (XMT) is widely used in extracting qualitative and quantitative information regarding spatial distribution of biological and physical soil constituents. Segmentation of these micro-CT soil images is of interest to geologists, hydrologists, civil and petroleum engineers and soil scientists. In this present work, we study and implement segmentation algorithms for microhydrology studies, specifically for soil water conductivity. Three well-known image segmentation algorithms are studied for evaluating their performance for the task. We demonstrate the problems and ways to segment XMT images and extract data for evaluating the air pressure in the soil pores to promote soil hydrology studies. To this end we take the recommended in the literature approach to differentiate textures and segment images using Fuzzy C-means Clustering (FCM). Secondly, we demonstrate the performance of two state-of-the-art level-set based active contours methods followed by curve fitting for radii detection and air pressure calculation.
机译:土壤是复杂的环境,包括各种生物(根,水,空气等)和物理成分(矿物质,骨料等)。基于同步辐射的X射线显微断层摄影术(XMT)被广泛用于提取有关生物和物理土壤成分的空间分布的定性和定量信息。这些微型CT土壤图像的分割引起了地质学家,水文学家,土木和石油工程师以及土壤科学家的兴趣。在本工作中,我们研究并实现了用于微水文学研究的分段算法,尤其是针对土壤水电导率的分段算法。研究了三种众所周知的图像分割算法,以评估其在任务中的性能。我们演示了分割XMT图像和提取数据以评估土壤孔隙中的气压以促进土壤水文学研究的问题和方法。为此,我们采用文献中推荐的方法,使用模糊C均值聚类(FCM)区分纹理和分割图像。其次,我们演示了两种基于最新水平集的主动轮廓方法的性能,然后进行了半径检测和气压计算的曲线拟合。

著录项

  • 作者

    Potteti, Kranthi Kumar.;

  • 作者单位

    University of Nevada, Las Vegas.;

  • 授予单位 University of Nevada, Las Vegas.;
  • 学科 Hydrology.;Engineering Electronics and Electrical.;Agriculture Soil Science.
  • 学位 M.S.E.E.
  • 年度 2012
  • 页码 60 p.
  • 总页数 60
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:32

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