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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Data-driven feature modeling, recognition and analysis in a discovery of supersonic cracks in multimillion-atom simulations
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Data-driven feature modeling, recognition and analysis in a discovery of supersonic cracks in multimillion-atom simulations

机译:数百万原子模拟中超音速裂纹发现中的数据驱动特征建模,识别和分析

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摘要

This paper presents a new, automated image- and feature-based pipeline of analysis algorithms to elucidate and quantify a discovery regarding supersonic cracks made using large-scale molecular dynamics computations. The first computational confirmation of supersonic cracks was made in recent years, along with the discovery of a two-step, discrete process of increasing crack velocity through the nucleation of a transonic daughter crack and the later nucleation of a supersonic granddaughter crack. This discovery was facilitated by the work presented here. The algorithm pipeline includes modeling, recognition and motion analysis of both the front most crack tips and the more subtle secondary wavefronts from the slower ancestor cracks. The algorithms employed include line extraction from Canny edge maps, feature modeling based on physical properties, and subsequent tracking of primary and secondary wavefronts. The model embeds anticipated propagation properties (physics-based framework) and adapts to changes in the data for unexpected aspects (data-driven modeling). This process is completely automated; it runs in real time on three different 834-frame sequences using 40 250 MHz processors. Results supporting the discovery of the two-step transition to supersonic crack propagation in bilayer materials are presented in terms of both feature tracking and velocity analysis. (c) 2007 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种新的,基于图像和特征的自动分析算法流水线,以阐明和量化有关使用大规模分子动力学计算产生的超音速裂缝的发现。近年来,对超音速裂纹的第一个计算确认是通过发现两步离散过程来实现的,该过程通过跨音速子裂纹和后来的超音速孙女裂纹成核来增加裂纹速度。此处介绍的工作促进了这一发现。算法流水线包括最前端裂纹尖端和较慢祖先裂纹的较细微次级波阵面的建模,识别和运动分析。所使用的算法包括从Canny边缘图提取线,基于物理属性的特征建模以及随后对主要和次要波前的跟踪。该模型嵌入了预期的传播属性(基于物理学的框架),并针对意外方面的数据更改(数据驱动的建模)。这个过程是完全自动化的。它使用40 250 MHz处理器在三个不同的834帧序列上实时运行。从特征跟踪和速度分析的角度,提出了支持发现双层材料向超声速裂纹扩展的两步过渡的结果。 (c)2007模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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