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Drink Bottle Defect Detection Based on Machine Vision Large Data Analysis

机译:基于机器视觉的饮料瓶缺陷检测大数据分析

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Aiming at the problem of low efficiency, low quality and uncertainty of the subjective control of the beverage bottle defect, this paper designs a kind of beverage bottle defect detection based on machine vision large data analysis and multi-sensor information fusion. System. At the same time, a large data sample base is set up in the image data of the beverage bottle product. When the quality of the new beverage bottle is detected, a plurality of features of the image of the beverage bottle are extracted by machine learning and then compared with the large data sample database to identify the possible The existence of bottlenecks, improve the quality of beverage bottles detection efficiency. Through the use of the system to detect and use the artificial test to compare the test, fully demonstrated the system in the beverage bottle flaw detection of high efficiency and high pass rate, reached the beverage bottle product testing and packaging automation requirements are very good Of the application value.
机译:旨在效率低,质量低,质量不确定性的饮料瓶缺陷的主观控制的问题,本文设计了一种基于机器视觉大数据分析和多传感器信息融合的饮料瓶缺陷检测。系统。同时,在饮料瓶产品的图像数据中设置大数据样本基座。当检测到新饮料瓶的质量时,通过机器学习提取饮料瓶图像的多个特征,然后与大数据样本数据库进行比较,以识别可能的瓶颈的存在,提高饮料的质量瓶子检测效率。通过使用系统来检测和使用人工测试来比较测试,完全证明了该系统在饮料瓶探险检测高效率和高通率,达到饮料瓶产品测试和包装自动化要求非常好申请价值。

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