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COVASIAM: an Image Analysis Method That Allows Detection of Confluent Microbial Colonies and Colonies of Various Sizes for Automated Counting

机译:COVASIAM:一种图像分析方法,可检测汇合的微生物菌落和各种大小的菌落以进行自动计数

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In this work we introduce the confluent and various sizes image analysis method (COVASIAM), an automated colony count technique that uses digital imaging technology for detection and separation of confluent microbial colonies and colonies of various sizes growing on petri dishes. The proposed method takes advantage of the optical properties of the surfaces of most microbial colonies. Colonies in the petri dish are epi-illuminated in order to direct the reflection of concentrated light coming from a halogen lamp towards an image-sensing device. In conjunction, a multilevel threshold algorithm is proposed for colony separation and counting. These procedures improved the quantification of colonies showing confluence or differences in size. We tested COVASIAM with a sample set of microorganisms that form colonies with contrasting physical properties:Saccharomyces cerevisiae, Aspergillus nidulans,Escherichia coli, Azotobacter vinelandii,Pseudomonas aeruginosa, and Rhizobium etli. These physical properties range from smooth to hairy, from bright to opaque, and from high to low convexities. COVASIAM estimated an average of 95.47% (? = 8.55%) of the manually counted colonies, while an automated method based on a single-threshold segmentation procedure estimated an average of 76% (? = 16.27) of the manually counted colonies. This method can be easily transposed to almost every image-processing analyzer since the procedures to compile it are generically standard.
机译:在这项工作中,我们介绍了融合和各种大小的图像分析方法(COVASIAM),这是一种自动菌落计数技术,使用数字成像技术来检测和分离融合的微生物菌落和培养皿上生长的各种大小的菌落。所提出的方法利用了大多数微生物菌落表面的光学特性。培养皿中的菌落被落射照明,以将来自卤素灯的聚光反射引导至图像传感装置。结合提出了一种多级阈值算法,用于菌落的分离和计数。这些程序改善了显示融合或大小差异的菌落的定量。我们用一组样品形成了具有相反物理特性的微生物来测试COVASIAM:酿酒酵母,构巢曲霉,大肠杆菌,葡萄固氮菌,铜绿假单胞菌和根瘤菌。这些物理性质从光滑到毛发,从明亮到不透明,以及从高到低的凸度。 COVASIAM估计手动计数的菌落平均为95.47%(?= 8.55 %),而基于单阈值分割程序的自动化方法估计平均为手动计数的菌落为76%(%= 16.27)。 。由于该方法的编译过程通常是标准的,因此可以轻松地将其转换为几乎所有图像处理分析仪。

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