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A fully-automated image processing technique to improve measurement of suspended particles and flocs by removing out-of-focus objects

机译:全自动图像处理技术,可通过去除散焦物体来改善对悬浮颗粒和絮凝物的测量

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摘要

A fully-automated image processing script was developed to analyze large datasets of imaged flocs in dilute turbulent suspensions of mud. In the procedure, out-of-focus flocs are automatically removed from the dataset to attain a more precise floc size distribution. This automated technique was tested against visual inspection of images to ensure that the procedure was only selecting in-focus flocs for inclusion in the size measurements, and the resulting measured sizes were compared to floc measured through manual image processing of the same data. The results show that the automated method is able to accurately measure the floc size distribution by correctly sizing in-focus flocs and removing out-of-focus flocs. The processing procedures were developed with sizing of suspended mud flocs in mind, but the process is general and can be applied for other applications. We show the ability of the method to handle large numbers of images (over 15,000 at a time) by tracking the change in floc size population with time at 1-min intervals over the course of a 160 min floc growth experiment.
机译:开发了一个全自动图像处理脚本,以分析稀湍流泥浆中成像絮凝物的大型数据集。在此过程中,会自动从数据集中删除散焦絮状物,以获得更精确的絮状物尺寸分布。测试了该自动化技术,以防止对图像进行肉眼检查,以确保该过程仅选择焦点絮凝物以包括在尺寸测量中,并将所得的测量尺寸与通过相同数据的手动图像处理测量的絮凝物进行比较。结果表明,该自动化方法能够通过正确调整焦点内絮凝物的大小并去除焦点外絮凝物来准确测量絮状物的大小分布。开发过程时要考虑悬浮泥絮的大小,但是该过程是通用的,可以应用于其他应用程序。我们通过在160分钟的絮凝物生长实验过程中以1分钟的间隔跟踪絮凝物大小种群随时间的变化,展示了该方法处理大量图像(一次超过15,000张)的能力。

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