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Image-Registration-Based Local Noise Reduction for Noisy Video Sequences

机译:基于图像配准的嘈杂视频序列局部降噪

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This paper presents a method for localizing noise-corrupted areas in quality degraded video frames, and for reducing the additive noise by utilizing the temporal redundancy in the video sequence. In the proposed algorithm, the local variance of each pixel is computed to obtain the spatial distribution of noise. After adaptive thresholding, region clustering, and merging, the corrupted areas of highest energy are detected. Due to the high temporal redundancy in the video sequence, the corrupted information can be compensated by overlapping the corrupted regions with the appropriate regions from adjacent video frames. The corresponding pixel locations in the adjacent frames are computed by using image registration and warping techniques. New pixel values are calculated based upon multi-frame stacking. Pixel values in the adjacent frames are weighted according to registration errors, whereas the values in the noisy frame are evaluated according to local variance. Knowing the location of the local noise enables the denoising process to be much more specific and accurate. Moreover, since only a portion of the frame is processed, as compared to standard denoising methods that operate on the entire frame, the details and features in other areas of the frame are preserved. The proposed scheme is applied to UAV video sequences, where the outstanding noise localization and reduction properties are demonstrated.
机译:本文提出了一种方法来定位质量下降的视频帧中的噪声损坏区域,并通过利用视频序列中的时间冗余来减少附加噪声。在提出的算法中,计算每个像素的局部方差以获得噪声的空间分布。经过自适应阈值化,区域聚类和合并后,将检测到能量最高的损坏区域。由于视频序列中的高时间冗余性,可以通过将损坏的区域与相邻视频帧中的适当区域重叠来补偿损坏的信息。通过使用图像配准和翘曲技术计算相邻帧中的相应像素位置。基于多帧堆叠来计算新像素值。根据配准误差对相邻帧中的像素值进行加权,而根据局部方差评估有噪帧中的像素值。知道局部噪声的位置可以使去噪过程更加具体和准确。此外,由于仅处理了一部分帧,因此与在整个帧上进行操作的标准降噪方法相比,保留了帧其他区域中的细节和特征。所提出的方案被应用于无人机视频序列,在其中证明了出色的噪声定位和降低性能。

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