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Accelerating earth movers distance with instruction set extension for image retrieval

机译:通过指令集扩展来加速推土机距离,以进行图像检索

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Image retrieval is one of the most popular applications for computer vision and pattern recognition, in which similarity computation is the computational bottleneck. Earth Movers Distance (EMD) is one of the most popular similarity measure for image retrieval, which has a high time complexity of O(n3 log n). Recently, with the explosion of image data, EMD acceleration has been emerging. In this paper, we propose an EMD acceleration architecture based on instruction set extensions for image retrieval. The EMD acceleration architecture achieves a speedup of 1.3x-2.2x over software implementations. The main advantage of the proposed architecture over existing hardware accelerations is that it can support larger histograms. Specifically, the number of supported variables in histograms has 1-2 orders of magnitude improvement.
机译:图像检索是计算机视觉和模式识别最流行的应用之一,其中相似性计算是计算瓶颈。地移动距离(EMD)是图像检索中最流行的相似性度量之一,其时间复杂度为O(n 3 log n)。近来,随着图像数据的爆炸式增长,EMD加速已经出现。在本文中,我们提出了一种基于指令集扩展的EMD加速架构,用于图像检索。与软件实现相比,EMD加速体系结构可将速度提高1.3倍至2.2倍。与现有的硬件加速相比,所提出的体系结构的主要优势在于它可以支持更大的直方图。具体而言,直方图中支持的变量的数量提高了1-2个数量级。

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