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数字图像处理作为活性污泥生物量定量创新方法的发展

Development of Digital Image Processing as an Innovative Method for Activated Sludge Biomass Quantification.

作者信息

Asgharnejad Hashem, Sarrafzadeh Mohammad-Hossein

机构信息

School of Chemical Engineering, College of Engineering, University of Tehran, Tehran, Iran.

出版信息

Front Microbiol. 2020 Sep 18;11:574966. doi: 10.3389/fmicb.2020.574966. eCollection 2020.

Abstract

Activated sludge process is the most common method for biological treatment of industrial and municipal wastewater. One of the most important parameters in performance of activated sludge systems is quantitative monitoring of biomass to keep the cell concentration in an optimum range. In this study, a novel method for activated sludge quantification based on image processing and RGB analysis is proposed. According to the results, the intensity of blue color in the macroscopic image of activated sludge culture can be a very accurate index for cell concentration measurement and R coefficient, Root Mean Square Error (RMSE), Mean Absolute Error (MAE), and Mean Absolute Percentage Error (MAPE) which are 0.990, 2.000, 0.323, and 13.848, respectively, prove this claim. Besides, in order to avoid the difficulties of working in the three-parameter space of RGB, converting to grayscale space has been applied which can estimate cell concentration with = 0.99. Ultimately, an exponential correlation between RGB values and cell concentrations in lower amounts of biomass has been proposed based on Beer-Lambert law which can estimate activated sludge biomass concentration with = 0.97 based on B index.

摘要

活性污泥法是工业和城市废水生物处理最常用的方法。活性污泥系统运行中最重要的参数之一是对生物量进行定量监测,以使细胞浓度保持在最佳范围内。本研究提出了一种基于图像处理和RGB分析的活性污泥定量新方法。结果表明,活性污泥培养宏观图像中的蓝色强度可作为细胞浓度测量的非常准确的指标,相关系数R、均方根误差(RMSE)、平均绝对误差(MAE)和平均绝对百分比误差(MAPE)分别为0.990、2.000、0.323和13.848,证明了这一说法。此外,为避免在RGB三参数空间中工作的困难,已采用转换为灰度空间的方法,其可在相关系数为0.99时估算细胞浓度。最终,基于比尔-朗伯定律提出了较低生物量时RGB值与细胞浓度之间的指数相关性,其可基于B指数在相关系数为0.97时估算活性污泥生物量浓度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf6/7530208/6035ae4a9e3d/fmicb-11-574966-g001.jpg

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