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Image Signature Robust to Caption Superimposition for Video Sequence Identification

机译:图像签名强大到视频序列识别的标题叠加

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This paper proposes an image signature robust to caption superimposition for video sequence identification. A new image signature which is a set of local features is developed for a high-speed frame-by-frame matching of video sequences. The signature of a frame is obtained by partitioning the image into blocks and extracting the local feature representing the dominant type of edge direction from each block. The similarity between the signatures is calculated by comparing the edge types of the corresponding blocks, and counting the number of the blocks having the same edge type. A weighting scheme based on the probability of caption superimposition for each block can be applied to the similarity calculation to improve the matching performance. The experimental results of the video sequence identification show that the proposed signature achieves precision of 99.65% and recall of 99.45%, improving both the precision and the recall by more than 30% compared with the conventional signature
机译:本文提出了一种对视频序列识别的标题叠加的图像签名稳健。 为视频序列的高速帧逐帧匹配开发了一组本地特征的新图像签名。 通过将图像划分为块来获得帧的签名,并从每个块中提取表示主要类型的边缘方向的本地特征。 通过比较相应块的边缘类型的边缘类型来计算签名之间的相似性,并计算具有相同边缘类型的块的数量。 基于每个块的标题叠加概率的加权方案可以应用于相似性计算以改善匹配性能。 视频序列鉴定的实验结果表明,与传统签名相比,所提出的签名达到99.65%的精度为99.65%,再调用99.45%,提高了精度,召回超过30%以上

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