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基于目标众包的使用示踪粒子的筒仓流动参数的X射线成像分析

X-ray Imaging Analysis of Silo Flow Parameters Based on Trace Particles Using Targeted Crowdsourcing.

作者信息

Romanowski Andrzej, Łuczak Piotr, Grudzień Krzysztof

机构信息

Institute of Applied Computer Science, Lodz University of Technology, 90924 Lodz, Stefanowskiego 18/22 str., Poland.

出版信息

Sensors (Basel). 2019 Jul 28;19(15):3317. doi: 10.3390/s19153317.

Abstract

This paper presents a novel method for tomographic measurement and data analysis based on crowdsourcing. X-ray radiography imaging was initially applied to determine silo flow parameters. We used traced particles immersed in the bulk to investigate gravitational silo flow. The reconstructed images were not perfect, due to inhomogeneous silo filling and nonlinear attenuation of the X-rays on the way to the detector. Automatic processing of such data is not feasible. Therefore, we used crowdsourcing for human-driven annotation of the trace particles. As we aimed to extract meaningful flow parameters, we developed a modified crowdsourcing annotation method, focusing on selected important areas of the silo pictures only. We call this method "targeted crowdsourcing", and it enables more efficient crowd work, as it is focused on the most important areas of the image that allow determination of the flow parameters. The results show that it is possible to analyze volumetric material structure movement based on 2D radiography data showing the location and movement of tiny metal trace particles. A quantitative description of the flow obtained from the horizontal and vertical velocity components was derived for different parts of the model silo volume. Targeting the attention of crowd workers towards either a specific zone or a particular particle speeds up the pre-processing stage while preserving the same quality of the output, quantified by important flow parameters.

摘要

本文提出了一种基于众包的断层测量和数据分析新方法。最初应用X射线摄影成像来确定筒仓流动参数。我们使用浸入物料中的示踪颗粒来研究重力作用下的筒仓流动。由于筒仓填充不均匀以及X射线在到达探测器途中的非线性衰减,重建图像并不完美。对这类数据进行自动处理是不可行的。因此,我们利用众包进行人工驱动的示踪颗粒标注。由于我们旨在提取有意义的流动参数,我们开发了一种改进的众包标注方法,仅关注筒仓图片中选定的重要区域。我们将这种方法称为“目标众包”,它能够实现更高效的众包工作,因为它聚焦于图像中能够确定流动参数的最重要区域。结果表明,基于显示微小金属示踪颗粒位置和运动的二维射线照相数据,有可能分析体积物料结构的运动。针对模型筒仓体积的不同部分,从水平和垂直速度分量得出了流动的定量描述。将众包工作者的注意力集中在特定区域或特定颗粒上,在保持由重要流动参数量化的相同输出质量的同时,加快了预处理阶段的速度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/370b/6695825/06dfa0027a9a/sensors-19-03317-g001.jpg

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