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Boosting car plate recognition systems performances with agile re-training

机译:提升汽车板识别系统与敏捷重新培训表演

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In this work, we report an experimental study on an Automatic Licence Plate Recognition system developed and commercialized by a partner company, with the main goals of critically analysing the original system and of devising effective but minimally invasive design changes. From a scientific point of view, ours is an attempt of reducing the gap between the different experimental approaches in academia and industry. The system is organized in layers, with an initial car plate proposal step followed by a OCR step. To cope with the drawbacks of the pre-existing system, we inserted an intermediate CNN binary classification step to discriminate between plates and non plates independently from the OCR module. Our solution incorporates new data available from working installations, in a closed refinement loop. We evaluate the modified system on 8 different installations. With respect to the original performances, we obtained significant improvements with an impact on both false positive (-9.8%) and false negatives (-5%).
机译:在这项工作中,我们向合作伙伴公司开发和商业化的自动许可板识别系统报告了一个实验研究,主要是分析原始系统的主要目标,并设计有效但最小的侵入性设计变化。从科学的角度来看,我们的试图减少学术界和工业不同实验方法之间的差距。该系统在层中组织,具有初始车板提案步骤,然后是OCR步骤。为了应对预先存在的系统的缺点,我们插入了中间CNN二进制分类步骤以独立于OCR模块辨别板和非板。我们的解决方案在封闭的细化循环中包含了从工作装置提供的新数据。我们在8种不同的安装上评估了修改的系统。关于原始性能,我们对误报(-9.8%)和假否定(-5%)的影响产生了显着的改善。

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