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An automatic image analysis methodology for the measurement of droplet size distributions in liquid-liquid dispersion: round object detection

机译:测量液-液分散体中液滴尺寸分布的自动图像分析方法:圆形物体检测

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This article presents an efficient and economical automatic image analysis technique for the droplet char-acterization in a liquid-liquid dispersion. The methodology employs a combination of the Satoshi Suzuki's [Topological structural analysis of digitized binary images by border following. Comput Vis Graph Image Process. 1985;30:32-46] find contours algorithm and the method of minimal enclosing circle identification, proposed by Emo Welzl [Smallest enclosing disks (balls and ellipsoids). Berlin, Heidelberg: Springer; 1991. p. 359-370. chapter 24], to achieve the objectives. The round object detection algorithm has been designed for the identification and verification of correct droplets in the mixture which helped to increase the accu-racy of automatic detection. Tests have been performed on various sets of images obtained during several emulsification processes and contain examples of droplets which differ in size, density, volume and appear-ance etc. An effective communication between the two methodologies and newly introduced algorithms demonstrated an accuracy of 90% or above in the measurement of droplet size distribution and Sauter mean diameters through an automatic vision-based system.
机译:本文提出了一种有效且经济的自动图像分析技术,用于液-液分散体中的液滴表征。该方法采用了Satoshi Suzuki的[通过边界跟随对数字化二进制图像进行拓扑结构分析]的组合。计算可见图图像处理。 1985; 30:32-46]找到了轮廓算法和最小包围圆识别的方法,由Emo Welzl提出[最小的包围盘(球和椭球)。柏林,海德堡:施普林格; 1991年。 359-370。第24章],以实现目标。设计了圆形物体检测算法,用于识别和验证混合物中的正确液滴,这有助于提高自动检测的准确性。已经对在多个乳化过程中获得的各种图像进行了测试,并包含大小,密度,体积和外观等不同的液滴示例。两种方法之间的有效交流和新引入的算法证明了90%的精度通过基于视觉的自动系统测量液滴尺寸分布和Sauter平均直径,则为或以上。

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