大肠杆菌检测与分类的机器学习框架

Bushra Naz, None Shahzad Hyder, None Azlan Ahmed, None Ali Hasnain
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引用次数: 0

摘要

水在生理过程中起着重要的作用,比如身体的热平衡,通过身体将营养物质转移到预定的目的地,以及关节的润滑。在巴基斯坦,现有的水资源利用率约为79%。饮用水质量不足和适足是一个重大的公共卫生问题。在项目中,我们解释了不同的机器学习技术,这些技术用于定位水样中的精确细菌,它们的形状和规模。该技术保证了充分的识别和划分。本发明可早期识别水质的细菌性污染,节省人工等。在没有人力的情况下,机器人框架将加快治疗时间。这将大大减少水的排放。现有的细菌检测方法是有效的,但需要等待很长时间才能得到结果,并且需要昂贵和费力的设备。通过PYTHON(其库)的图像,本研究旨在利用图像检测细菌。该系统往往是巴基斯坦不同部门水质监测的有效和高效的方法。例如,废水处理厂、发电厂、工业、反渗透工厂和实验室。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Machine Learning Framework for E. coli Bacteria Detection and Classification
Water plays an important role in physiological processes, such as the body's thermal equilibrium, the transfer of nutrients to the intended destination through the body, and the lubrication of joints. In Pakistan, the existing water availability is about 79%. Inadequate and adequate drinking water quality is a significant public health concern. In the project, we explain different machine learning techniques which are used to locate exact bacteria in a water sample, their shape, and scale. This technology promises sufficient identification and division. This invention allows for early identification of bacterial water pollution, requires minimal labor, etc. A robotic frame will speed up the treatment period without human power. It will reduce water emissions dramatically. The methods available for bacterial detection are effective but require lengthy waiting periods for results and expensive and laborious equipment. Via images with PYTHON (Its libraries), this research aims to detect bacteria utilizing images. This system tends to be effective and efficient way for water quality monitoring in different sectors in Pakistan. E.g., Wastewater treatment plants, Power plants, Industries, RO plants, and Laboratories.
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