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Reconstruction of plant microstructure using distance weighted tessellation algorithm optimized by virtual segmentation

机译:虚拟分割优化距离加权曲面算法的植物微观结构重建

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摘要

The accurate reconstruction model of plant microstructure is important for obtaining the mechanical properties of plant tissues. In this paper, a virtual segmentation technique is proposed to optimize Delaunay triangulation. Based on the optimized Delaunay triangulation, an Optimized Distance Weighted Tessellation (ODWT) algorithm is developed. Two different structures, namely carrot and retting maize vascular bundles, were reconstructed via the ODWT algorithm. The accuracy of ODWT is evaluated statistically by comparing with Centroid-based Voronoi Tessellation (CVT) and Area Weighted Tessellation (AWT). The results show that ODWT has distinct advantages over CVT and AWT. It is worth mentioning that ODWT has better performance than CVT when there exists large diversity in adjacent cell area. It is found that CVT and AWT fail to reconstruct cells with elongated and concave shapes, while ODWT shows excellent feasibility and reliability. Furthermore, ODWT is capable of establishing finite tissue boundary, which CVT and AWT have failed to realize. The purpose of this work is to develop an algorithm with higher accuracy to implement the preprocessing for further numerical study of plants properties. The comparison results of the simulated values of the longitudinal tensile modulus with the experimental value show that ODWT algorithm can improve the prediction accuracy of multi-scale models on mechanical properties.
机译:植物微观结构的精确重建模型对于获得植物组织的机械性能是重要的。本文提出了一种虚拟分割技术来优化Delaunay三角测量。基于优化的Delaunay三角测量,开发了优化的距离加权曲面(ODWT)算法。通过ODWT算法重建两种不同的结构,即胡萝卜和Retting玉米血管束。通过与基于质心的voronoi曲面细分(CVT)和面积加权曲面(AWT)进行比较来统计评估ODWT的准确性。结果表明,ODWT在CVT和AWT上具有明显的优势。值得一提的是,当相邻的单元区域存在大的多样性时,ODWT具有比CVT更好的性能。发现CVT和AWT无法重建具有细长和凹形形状的细胞,而ODWT则显示出优异的可行性和可靠性。此外,ODWT能够建立有限组织边界,CVT和AWT未能实现。这项工作的目的是开发一种具有更高准确性的算法,以实现预处理的植物特性的进一步数值研究。具有实验值的纵向拉伸模量的模拟值的比较结果表明,ODWT算法可以提高多尺度模型对机械性能的预测精度。

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