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An FPGA based human detection system with embedded platform

机译:具有嵌入式平台的基于FPGA的人体检测系统

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摘要

Focusing on the computing speed of the practical machine learning based human detection system at the testing (detecting) stage to reach the real-time requirement in an embedded platform, the idea of iterative computing HOG with FPGA circuit design is proposed. The completed HOG accelerator contains gradient calculation circuit module and histogram accumulation circuit module. The linear SVM classification algorithm producing a number of necessary weak classifiers is combined with Adaboost algorithm to establish a strong classifier. The human detection is successfully implemented on a portable embedded platform to reduce the system cost and size. Experimental result shows that the performance error of accuracy appears merely about 0.1-0.4% in comparison between the presented FPGA based HW/SW co-design and the PC based pure software. Meanwhile, the computing speed achieves the requirement of a real-time embedded system, 15 fps. (C) 2015 Elsevier B.V. All rights reserved.
机译:着眼于在测试(检测)阶段基于实际机器学习的人体检测系统的计算速度,以达到嵌入式平台的实时性,提出了一种采用FPGA电路设计的迭代计算HOG的思想。完整的HOG加速器包含梯度计算电路模块和直方图累积电路模块。将产生多个必要的弱分类器的线性SVM分类算法与Adaboost算法结合,以建立一个强分类器。人体检测成功地在便携式嵌入式平台上实现,以降低系统成本和尺寸。实验结果表明,与提出的基于FPGA的硬件/软件协同设计和基于PC的纯软件相比,精度的性能误差仅出现约0.1-0.4%。同时,计算速度达到了实时嵌入式系统15 fps的要求。 (C)2015 Elsevier B.V.保留所有权利。

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