具有神经模糊监督的门禁系统

G. Adorni, S. Cagnoni, M. Gori, M. Mordonini
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引用次数: 16

摘要

本文介绍了一种用于限制区域访问控制的车牌识别系统。我们提出的系统是基于视觉、神经网络和神经模糊系统。视觉被用来检测车牌,并挑出其中包含的字符,而基于神经网络的分类器被用来“读取”车牌。然后将结果字符串与允许的车牌“白名单”相匹配,以检查过境授权。在匹配失败的情况下,神经模糊代理分析不匹配的特征,过滤掉可能的假警报,并优化必须验证警报的人类主管的工作量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Access control system with neuro-fuzzy supervision
In this paper we describe a plate-recognition system for access control to restricted areas. The system we propose is based on vision, neural networks and a neuro-fuzzy system. Vision is used to detect the license-plate and to single out the characters it contains, while a neural network-based classifier is used to "read" the plate. The resulting string is then matched to a "white list" of allowed plates, to check the transit authorization. In case matching fails, a neuro-fuzzy agent analyses the features of the mismatch, to filter out possible false alarms and to optimize the workload for the human supervisor that has to validate the alarm.
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