An FPGA-Based Architecture for Local Similarity Measure for Image/Video Processing Applications

J. Pandey, Arindam Karmakar, C. Shekhar, S. Gurunarayanan
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引用次数: 11

Abstract

Similarity measures are used in diverse signal-processing applications. Bhattacharyya coefficient is one of the most popular similarity measures that is widely used in many image/video processing applications. Several of these applications need to compute similarity measure between probability density functions of local image statistics. In this paper, an efficient hardware architecture is proposed for accelerating the local similarity measure (LSM) computation using Bhattacharyya coefficient. Direct hardware implementation of Bhattacharyya coefficient requires many compute-intensive hardware resources, which slow down the overall computation process. Data path of the proposed architecture utilizes fixed-point arithmetic and is based on the logarithmic number system. Fast binary logarithmic and antilogarithmic computing units are deployed to realize the required complex arithmetic operations. The histogram computation is accomplished using single-cycle read-modify-write operations on the received image data stored in DDR2 SDRAM. The proposed architecture is realized in the Virtex-5 xc5vfx70t FPGA device of Xilinx ML-507 platform. The device utilization of the implemented architecture shows that it utilizes 4.5% FPGA slices, 5.4% Block RAMs and 27.34% DSP48E slices.
基于fpga的图像/视频处理应用的局部相似度度量体系结构
相似度量在不同的信号处理应用中使用。Bhattacharyya系数是最流行的相似性度量之一,广泛应用于许多图像/视频处理应用。其中一些应用需要计算局部图像统计的概率密度函数之间的相似性度量。本文提出了一种利用Bhattacharyya系数加速局部相似度量(LSM)计算的有效硬件架构。Bhattacharyya系数的直接硬件实现需要大量的计算密集型硬件资源,这减慢了整个计算过程。该结构的数据路径采用定点算法,并基于对数系统。采用快速二进制对数和反对数计算单元来实现所需的复杂算术运算。直方图计算是通过对存储在DDR2 SDRAM中的接收图像数据进行单周期读-修改-写操作来完成的。该架构在Xilinx ML-507平台的Virtex-5 xc5vfx70t FPGA器件上实现。所实现架构的器件利用率表明,它使用4.5%的FPGA片,5.4%的块ram和27.34%的DSP48E片。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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