Segmentation of activated sludge flocs with modeling of illumination noise

Muhammad Burhan Khan, H. Nisar, C. Ng, P. K. Lo, Yap Vooi Voon
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引用次数: 1

Abstract

Fault diagnosis of activated sludge wastewater treatment plant for abnormal operation can be done using image processing and analysis of microscopic images of samples collected from aeration tank of the plant. In this paper, a novel illumination compensated segmentation technique is proposed for bright field microscopic images of the activated sludge wastewater samples. The illumination noise is modeled as Gaussian distribution and used with global Otsu thresholding. The performance of the algorithm is assessed using accuracy and Rand index. The segmentation is assessed using gold approximations of ground truth images, which were prepared manually. The proposed algorithm is compared with the local adaptive algorithms of Sauvola and Bradley. The performance metrics showed better performance of the proposed algorithm.
基于光照噪声建模的活性污泥絮凝体分割
通过对活性污泥污水处理厂曝气池采集的样品进行图像处理和显微图像分析,可以对活性污泥污水处理厂的异常运行进行故障诊断。本文提出了一种针对活性污泥废水样品明光场图像的光照补偿分割方法。光照噪声建模为高斯分布,采用全局Otsu阈值。通过精度和Rand指数对算法的性能进行了评价。分割是使用人工准备的地面真实图像的金近似来评估的。将该算法与Sauvola和Bradley的局部自适应算法进行了比较。性能指标表明该算法具有较好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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