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Segmentation of Activated Sludge Filaments using Phase Contrast Microscopic Images

机译:使用相差显微镜图像对活性污泥细丝进行分割

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Segmentation algorithms play an important role in image processing and analysis. The identification of objects and process monitoring strongly depends on the accuracy of the segmentation algorithms. Waste water treatment plants are used to treat wastewater from municipal and industrial plants. Activated sludge process is used in wastewater treatment plants to biodegrade the organic constituents present in waste water. This biodegradation is done with the help of microorganisms and bacteria. There are two important types of microscopic organisms present in the activated sludge plants, named as flocs as filaments, which are visible under microscope. In this paper we study the microscopic images of wastewater using phase contrast microscopy. The images are acquired from wastewater sample using a microscope. The samples of wastewater are collected from domestic wastewater treatment plant aeration tank. Our main aim is to segment threadlike organisms knows as filaments. Several segmentation algorithms (such as edge based algorithm, k-means algorithm, texture based algorithm, and watershed algorithm) will be explored and their performance will be compared using gold approximations of the images. The performance of the algorithms are evaluated using different performance metrics, such as Rand Index, specificity, variation of information, and accuracy. We have found that edge based segmentation works well for phase contrast microscopic images of activated sludge wastewater.
机译:分割算法在图像处理和分析中起着重要作用。对象的识别和过程监控在很大程度上取决于分段算法的准确性。废水处理厂用于处理市政和工业厂的废水。废水处理厂使用活性污泥法对废水中存在的有机成分进行生物降解。这种生物降解是在微生物和细菌的帮助下完成的。活性污泥厂中存在两种重要的微生物,即絮状细丝,在显微镜下可见。在本文中,我们使用相衬显微镜研究了废水的显微图像。使用显微镜从废水样品中获取图像。废水样品是从生活废水处理厂曝气池收集的。我们的主要目的是将被称为细丝的线状生物进行细分。将探索几种分割算法(例如基于边缘的算法,k-means算法,基于纹理的算法和分水岭算法),并使用图像的黄金近似值比较它们的性能。使用不同的性能指标(例如兰德指数,特异性,信息变化和准确性)评估算法的性能。我们发现基于边缘的分割对于活性污泥废水的相衬显微图像效果很好。

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