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Camera anomaly detection based on morphological analysis and deep learning

机译:基于形态分析和深度学习的相机异常检测

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Recently, camera anomaly detection has attracted increasing interest in order to generate real-time alerts of camera malfunction for video surveillance systems. The existing camera anomaly detection methods still haven't enough ability to detect comprehensive types of anomaly, and lack the self-improvement ability in the case of miscarriage of justice by self-learning. So, this paper proposes a morphological analysis and deep learning based camera anomaly detection method to detect comprehensive types of anomaly. Morphological analysis is used to detect simple camera anomalies to accelerate the processing speed, and deep learning is utilized to detect complicated camera anomalies to improve the accuracy. The experimental results show that the detection accuracy of the proposed method achieves more than 95%.
机译:最近,相机异常检测吸引了越来越兴趣的兴趣,以便为视频监控系统产生相机故障的实时警报。现有的相机异常检测方法仍然没有足够的能力来检测全面类型的异常类型,并缺乏自我学习流产的自我提升能力。因此,本文提出了一种综合异常类型的形态学分析和基于深度学习的相机异常检测方法。形态学分析用于检测简单的相机异常以加速处理速度,利用深度学习来检测复杂的相机异常以提高准确性。实验结果表明,所提出的方法的检测精度达到95%以上。

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