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Reference image-independent fault detection in transportation camera systems for nighttime scenes

机译:夜间场景运输相机系统中与参考图像无关的故障检测

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Automated, unattended camera systems used for various transportation applications such as toll collection and photo enforcement need to capture high quality images in a variety of outdoor scenarios. In particular, they need to remain functional in low ambient illumination conditions (nighttime and cloudy day situations) to enable identification of objects or persons involved in incidents being monitored or extracting relevant information. Over time, for installed camera systems in the field, several problems can develop, such as external flash unit failures, focus drifts, and exposure issues. Thus, it is important to periodically monitor the nighttime images/videos taken by the camera system to ensure nominal functionality. However, due to constantly changing scene elements, it is not practical to compare a historical reference image with an identical scene against current camera output to detect problems. To address this, we present image quality metrics that can be extracted without a nominal reference image and can be used to characterize these problems. These can be incorporated into algorithms that can enable automated camera diagnostics for intelligent transportation systems.
机译:用于各种交通应用(例如收费和照片执法)的自动无人值守相机系统需要在各种室外场景中捕获高质量图像。特别是,它们需要在低环境光照条件下(夜间和阴天情况下)保持功能,以识别参与监视的事件的对象或人员或提取相关信息。随着时间的流逝,对于在现场安装的相机系统,可能会出现一些问题,例如外部闪光灯组件故障,聚焦偏移和曝光问题。因此,定期监视摄像机系统拍摄的夜间图像/视频以确保正常工作很重要。但是,由于场景元素不断变化,因此将具有相同场景的历史参考图像与当前相机输出进行比较以检测问题是不切实际的。为了解决这个问题,我们提出了可以在没有标称参考图像的情况下提取图像质量的指标,并且可以用来表征这些问题。这些可以合并到算法中,从而可以对智能交通系统进行自动摄像机诊断。

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