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SIFT-based low complexity keypoint extraction and its real-time hardware implementation for full-HD video

机译:基于SIFT的低复杂度关键点提取及其用于全高清视频的实时硬件实现

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Scale-Invariant Feature Transform (SIFT) has lately attracted attention in computer vision as a robust keypoint detection algorithm which is invariant for scale, rotation and illumination change. However, its computational complexity is too high to apply practical real-time applications. This paper proposes a low complexity keypoint extraction algorithm based on SIFT descriptor and utilization of the database, and its real-time hardware implementation for Full-HD resolution video. The proposed algorithm computes SIFT descriptor on the keypoint obtained by corner detection and selects a scale from the database. It is possible to parallelize the keypoint detection and descriptor computation modules in the hardware. These modules do not depend on each other in the proposed algorithm in contrast with SIFT that computes a scale. The processing time of descriptor computation in this hardware is independent of the number of keypoints because its descriptor generation is pipelining structure of pixel. Evaluation results show that the proposed algorithm on software is 12 times faster than SIFT. Moreover, the proposed hardware on FPGA is 427 times faster than SIFT and 61 times faster than the proposed algorithm on software. The proposed hardware performs keypoint extraction and matching at 60 fps for Full-HD video.
机译:比例尺不变特征变换(SIFT)作为一种健壮的关键点检测算法在计算机视觉中引起了人们的关注,该算法对于比例尺,旋转和照度变化是不变的。但是,其计算复杂度过高,无法应用实际的实时应用程序。提出了一种基于SIFT描述符和数据库利用的低复杂度关键点提取算法,并针对全高清分辨率视频进行了实时硬件实现。所提出的算法在通过角点检测获得的关键点上计算SIFT描述符,并从数据库中选择比例。可以在硬件中并行化关键点检测和描述符计算模块。与计算尺度的SIFT相比,这些模块在所提出的算法中彼此不依赖。此硬件中描述符计算的处理时间与关键点数量无关,因为其描述符生成是像素的流水线结构。评估结果表明,该算法在算法上比SIFT快12倍。此外,在FPGA上建议的硬件比SIFT快427倍,比在软件上建议的算法快61倍。拟议的硬件以60 fps对全高清视频执行关键点提取和匹配。

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