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Fast FPGA-Based Multiobject Feature Extraction

机译:基于FPGA的快速多对象特征提取

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摘要

This paper describes a high-frame-rate (HFR) vision system that can extract locations and features of multiple objects in an image at 2000 f/s for 512$,times,$512 images by implementing a cell-based multiobject feature extraction algorithm as hardware logic on a field-programmable gate array-based high-speed vision platform. In the hardware implementation of the algorithm, 25 higher-order local autocorrelation features of 1024 objects in an image can be simultaneously extracted for multiobject recognition by dividing the image into 8$,times,$8 cells concurrently with calculation of the zeroth and first-order moments to obtain the sizes and locations of multiple objects. Our developed HFR multiobject extraction system was verified by performing several experiments: tracking for multiple objects rotating at 16 r/s, recognition for multiple patterns projected at 1000 f/s, and recognition for human gestures with quick finger motion.
机译:本文介绍了一种高帧率(HFR)视觉系统,该系统可以通过实现基于单元的多对象特征提取算法,以2000 f / s的速率提取512 $,倍,$ 512图像中图像中多个对象的位置和特征。基于现场可编程门阵列的高速视觉平台上的硬件逻辑。在该算法的硬件实现中,通过将图像划分为8,×,8个单元格并同时计算零阶和一阶,可以同时提取图像中1024个对象的25个高阶局部自相关特征,以进行多对象识别。获取多个对象的大小和位置的时刻。我们开发的HFR多对象提取系统通过执行多个实验得到了验证:跟踪以16 r / s旋转的多个对象,识别以1000 f / s投影的多个模式,以及通过快速手指运动识别人的手势。

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