首页> 外文期刊>Microscopy and microanalysis: The official journal of Microscopy Society of America, Microbeam Analysis Society, Microscopical Society of Canada >Segmentation Approach Towards Phase-Contrast Microscopic Images of Activated Sludge to Monitor the Wastewater Treatment
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Segmentation Approach Towards Phase-Contrast Microscopic Images of Activated Sludge to Monitor the Wastewater Treatment

机译:激活污泥相对比微观图像的分割方法,以监测废水处理

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摘要

Image processing and analysis is an effective tool for monitoring and fault diagnosis of activated sludge (AS) wastewater treatment plants. The AS image comprise of flocs (microbial aggregates) and filamentous bacteria. In this paper, nine different approaches are proposed for image segmentation of phase-contrast microscopic (PCM) images of AS samples. The proposed strategies are assessed for their effectiveness from the perspective of microscopic artifacts associated with PCM. The first approach uses an algorithm that is based on the idea that different color space representation of images other than red-green-blue may have better contrast. The second uses an edge detection approach. The third strategy, employs a clustering algorithm for the segmentation and the fourth applies local adaptive thresholding. The fifth technique is based on texture-based segmentation and the sixth uses watershed algorithm. The seventh adopts a split-and-merge approach. The eighth employs Kittler’s thresholding. Finally, the ninth uses a top-hat and bottom-hat filtering-based technique. The approaches are assessed, and analyzed critically with reference to the artifacts of PCM. Gold approximations of ground truth images are prepared to assess the segmentations. Overall, the edge detection-based approach exhibits the best results in terms of accuracy, and the texture-based algorithm in terms of false negative ratio. The respective scenarios are explained for suitability of edge detection and texture-based algorithms.
机译:图像处理和分析是对活性污泥(AS)废水处理厂的监测和故障诊断的有效工具。作为图像包括絮状物(微生物聚集体)和丝状细菌。本文提出了九种不同方法,用于样本的相位对比显微镜(PCM)图像的图像分割。从与PCM相关的微观伪影的角度来评估拟议的策略。第一方法使用基于不同颜色空间表示除了红绿蓝的图像的不同颜色空间表示可能具有更好的对比度。第二种使用边缘检测方法。第三次策略采用分段的聚类算法,第四个应用本地自适应阈值。第五技术基于基于纹理的分割,第六次使用流域算法。第七是采用分裂和合并的方法。第八次使用Kittler的门槛。最后,第九次使用顶帽和底帽滤波的技术。评估该方法,并参考PCM的伪像批判性分析。准备地面真相图像的金近似以评估分割。总的来说,基于边缘检测的方法在精度方面具有最佳结果,以及在假负比方面基于纹理的算法。针对边缘检测和基于纹理的算法的适用性解释了各个方案。

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