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首页> 外文期刊>Journal of Electrical and Computer Engineering >FPGA Implementation of Gaussian Mixture Model Algorithm for 47 fps Segmentation of 1080p Video
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FPGA Implementation of Gaussian Mixture Model Algorithm for 47 fps Segmentation of 1080p Video

机译:高斯混合模型算法用于1080p视频47 fps分割的FPGA实现

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Circuits and systems able to process high quality video in real time are fundamental in nowadays imaging systems. The circuit proposed in the paper, aimed at the robust identification of the background in video streams, implements the improved formulation of the Gaussian Mixture Model (GMM) algorithm that is included in the OpenCV library. An innovative, hardware oriented, formulation of the GMM equations, the use of truncated binary multipliers, and ROM compression techniques allow reduced hardware complexity and increased processing capability. The proposed circuit has been designed having commercial FPGA devices as target and provides speed and logic resources occupation that overcome previously proposed implementations. The circuit, when implemented on Virtex6 or StratixIV, processes more than 45 frame per second in 1080p format and uses few percent of FPGA logic resources.
机译:能够实时处理高质量视频的电路和系统是当今成像系统的基础。本文中提出的电路旨在对视频流中的背景进行可靠的识别,实现了OpenCV库中包含的高斯混合模型(GMM)算法的改进公式。 GMM公式的创新,面向硬件的公式表示,使用截断的二进制乘法器以及ROM压缩技术,可降低硬件复杂性并提高处理能力。所设计的电路已经设计成以商用FPGA器件为目标,并提供了速度和逻辑资源占用,从而克服了先前提出的实现。当在Virtex6或StratixIV上实现时,该电路以1080p格式每秒处理45帧以上的帧,并且仅使用百分之几的FPGA逻辑资源。

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