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Phenotyping of xylem vessels for drought stress analysis in rice

机译:木质部容器表型分析水稻干旱胁迫

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Xylem vessels play a pivotal role in plant adaptation to drought stress. In this paper, we propose a novel framework that associates automatic segmentation of xylem vessels with its morphological features as a quantitative proxy to predict drought stress response (DSR). We develop an image processing pipeline that comprises of low level processing which enables high-throughput detection of xylem vessels. With no prior information about its size and location, the proposed detection methodology gives an accuracy of 98%. The labelled data for DSR are either not available or are subjectively developed, which is a low-throughput and error prone task. We resolve this problem by employing simplex volume maximization (SiVM) algorithm. The convex representations obtained from SiVM for each xylem in microscopic images based on its shape factors are aggregated to get an automated scoring of the whole plant. Bhattacharya distance is then employed to obtain the divergence of these responses w.r.t. the control group. The proposed framework successfully captures the phenotypic difference between MTU-1010 (drought susceptible rice cultivar) and Sahbhagi Dhan (drought tolerant rice cultivar).
机译:木质部容器在植物适应干旱胁迫中起着关键作用。在本文中,我们提出了一个新颖的框架,该框架将木质部脉管的自动分割与其形态特征相关联,以作为定量代理来预测干旱胁迫响应(DSR)。我们开发了包含低级处理的图像处理管道,该处理可实现木质部血管的高通量检测。由于没有关于其大小和位置的先前信息,因此所提出的检测方法的准确性为98%。 DSR的标记数据不可用或者是主观开发的,这是一种低吞吐量且易于出错的任务。我们通过采用单纯形体积最大化(SiVM)算法来解决此问题。从SiVM中根据形状因子对显微图像中的每个木质部获得的凸表示形式进行汇总,以获得整个植物的自动评分。然后采用Bhattacharya距离获得这些响应的离散度w.r.t.对照组。拟议的框架成功地捕获了MTU-1010(干旱易感水稻品种)和Sahbhagi Dhan(耐旱水稻品种)之间的表型差异。

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