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Removing Motion Blur With Space–Time Processing

机译:通过时空处理消除运动模糊

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Although spatial deblurring is relatively well understood by assuming that the blur kernel is shift invariant, motion blur is not so when we attempt to deconvolve on a frame-by-frame basis: this is because, in general, videos include complex, multilayer transitions. Indeed, we face an exceedingly difficult problem in motion deblurring of a single frame when the scene contains motion occlusions. Instead of deblurring video frames individually, a fully 3-D deblurring method is proposed in this paper to reduce motion blur from a single motion-blurred video to produce a high-resolution video in both space and time. Unlike other existing approaches, the proposed deblurring kernel is free from knowledge of the local motions. Most importantly, due to its inherent locally adaptive nature, the 3-D deblurring is capable of automatically deblurring the portions of the sequence, which are motion blurred, without segmentation and without adversely affecting the rest of the spatiotemporal domain, where such blur is not present. Our method is a two-step approach; first we upscale the input video in space and time without explicit estimates of local motions, and then perform 3-D deblurring to obtain the restored sequence.
机译:尽管通过假设模糊内核是不变位移来相对较好地理解空间去模糊的,但是当我们尝试逐帧进行去卷积时,运动模糊却并非如此:这是因为,通常,视频包含复杂的多层过渡。确实,当场景包含运动遮挡时,在单个帧的运动去模糊方面我们面临着极其困难的问题。代替单独对视频帧进行去模糊,本文提出了一种全3D去模糊方法,以减少单个运动模糊视频的运动模糊,从而在空间和时间上生成高分辨率视频。与其他现有方法不同,所提出的去模糊内核没有本地运动的知识。最重要的是,由于其固有的局部适应性,因此3-D去模糊能够自动对序列中运动模糊的部分进行去模糊,而不会进行分割,并且不会对时空域的其余部分产生不利影响,而这种模糊不会当下。我们的方法分两个步骤:首先,我们在不显式估计局部运动的情况下按时空扩展输入视频,然后执行3-D去模糊以获得恢复的序列。

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