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Reflection Removal Under Fast Forward Camera Motion

机译:快进相机运动下的反射消除

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The image quality of an in-vehicle black box camera is often degraded by the reflections of internal objects, dirt, and dust on the windshield. In this paper, we propose a novel algorithm that simultaneously removes the reflections and small dirt artifacts from in-vehicle black box videos under fast forward camera motion. The algorithm exploits the spatiotemporal coherence of the reflection and dirt, which remain stationary relative to the fast-moving background. Unlike previous algorithms, the algorithm first separates stationary reflection and then restores the background scene. To this end, we propose an average image prior, thereby imposing spatiotemporal coherence. The separation model is a two-layer model composed of stationary and background layers, where different gradient sparsity distributions are utilized in a region-based manner. Motion compensation in postprocessing is proposed to alleviate layer jitter due to vehicle vibrations. In evaluation experiments, the proposed algorithm successfully extracts the stationary layer from several real and synthetic black box videos.
机译:车载黑匣子相机的图像质量通常会由于挡风玻璃上的内部物体,灰尘和灰尘的反射而降低。在本文中,我们提出了一种新颖的算法,该算法可以在快进摄像头运动下同时去除车载黑匣子视频中的反射和小的污垢伪像。该算法利用了反射和污物的时空相干性,它们相对于快速移动的背景保持静止。与以前的算法不同,该算法首先分离静态反射,然后恢复背景场景。为此,我们先提出一个平均图像,从而施加时空相干性。分离模型是由固定层和背景层组成的两层模型,其中以基于区域的方式利用了不同的梯度稀疏分布。提出了后处理中的运动补偿以减轻由于车辆振动引起的层抖动。在评估实验中,该算法成功地从几个真实的和合成的黑匣子视频中提取了固定层。

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