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A Mobile Recognition System for Analog Energy Meter Scanning

机译:用于模拟电能表扫描的移动识别系统

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The work presents a mobile platform based system, scanning electricity, gas and water meters. The motivation is the automation of the manual procedure, increasing the reading accuracy and decreasing the human effort. The methodology comprises two stages - digits detection and Optical Character Recognition. The detection of digits is accomplished by a pipeline of operations. Optical Character Recognition is achieved, employing two different approaches - Tesseract OCR and Convolutional Neural Network. The performance evaluation on a vast number of images reports high precision for the algorithms of both stages. Furthermore, Convolutional Neural Network significantly outperforms the Tesseract OCR for all types of meters. The objective of functionality by the limited speed and data storage of mobile devices is also successfully met.
机译:这项工作提出了一个基于移动平台的系统,可以扫描电表,煤气表和水表。动机是手动操作的自动化,从而提高了读取精度并减少了人工。该方法包括两个阶段-数字检测和光学字符识别。数字的检测是通过一系列操作来完成的。通过使用两种不同的方法-Tesseract OCR和卷积神经网络,可以实现光学字符识别。对大量图像的性能评估表明,这两个阶段的算法都具有很高的精度。此外,对于所有类型的仪表,卷积神经网络的性能都大大优于Tesseract OCR。通过移动设备的有限速度和数据存储的功能性目标也得以成功实现。

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