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Real-time optical character recognition on field programmable gate array for automatic number plate recognition system

机译:用于自动车牌识别系统的现场可编程门阵列上的实时光学字符识别

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摘要

The last main stage in an automatic number plate recognition system (ANPRs) is optical character recognition (OCR), where the number plate characters on the number plate image are converted into encoded texts. In this study, an artificial neural network-based OCR algorithm for ANPR application and its efficient architecture are presented. The proposed architecture has been successfully implemented and tested using the Mentor Graphics RC240 field programmable gate arrays (FPGA) development board equipped with a 4M Gates Xilinx Virtex-4 LX40. A database of 3570 UK binary character images have been used for testing the performance of the proposed architecture. Results achieved have shown that the proposed architecture can meet the real-time requirement of an ANPR system and can process a character image in 0.7 ms with 97.3% successful character recognition rate and consumes only 23% of the available area in the used FPGA.
机译:自动车牌识别系统(ANPR)的最后一个主要阶段是光学字符识别(OCR),其中车牌图像上的车牌字符被转换为编码文本。在这项研究中,提出了一种基于人工神经网络的OCR算法在ANPR中的应用及其高效架构。使用配备4M Gates Xilinx Virtex-4 LX40的Mentor Graphics RC240现场可编程门阵列(FPGA)开发板,已成功实施和测试了所建议的体系结构。 3570个英国二进制字符图像的数据库已用于测试所提出体系结构的性能。取得的结果表明,所提出的体系结构可以满足ANPR系统的实时要求,并且可以在0.7 ms内处理字符图像,成功字符识别率达到97.3%,并且仅占用所用FPGA中23%的可用区域。

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