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A Directional-Edge-Based Real-Time Object Tracking System Employing Multiple Candidate-Location Generation

机译:基于方向边缘的实时目标跟踪系统,采用多个候选位置生成

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We present a directional-edge-based object tracking system based on a field-programmable gate array (FPGA) that can process 640$,times,$480 resolution video sequences and provide the location of a predefined object in real time. Inspired by biological principle, directional edge information is used to represent the object features. Multiple candidate regeneration, a statistical method, has been developed to realize the tracking function, and online learning is adopted to enhance the tracking performance. Thanks to the hardware-implementation friendliness of the algorithm, an object tracking system has been very efficiently built on an FPGA, in order to realize a real-time tracking capability. At the working frequency of 60 MHz, the main processing circuit can complete the processing of one frame of an image (640$,times,$ 480 pixels) in 0.1 ms in high-speed mode and 0.8 ms in high-accuracy mode. The experimental results demonstrate that this system can deal with various complex situations, including scene illumination changes, object deformation, and partial occlusion. Based on the system built on the FPGA, we discuss the issue of very large-scale integrated chip implementation of the algorithm and self initialization of the system, i.e., the autonomous localization of the tracking object in the initial frame. Some potential solutions to the problems of multiple object tracking and full occlusion are also presented.
机译:我们提出了一种基于现场可编程门阵列(FPGA)的基于定向边缘的对象跟踪系统,该系统可以处理640,$,480分辨率的视频序列,并实时提供预定义对象的位置。受生物学原理的启发,方向性边缘信息用于表示对象特征。已经开发出多种候选者再生(一种统计方法)来实现跟踪功能,并采用在线学习来增强跟踪性能。由于算法的硬件实现友好性,对象跟踪系统已非常高效地构建在FPGA上,以实现实时跟踪功能。在60 MHz的工作频率下,主处理电路可以在高速模式下以0.1 ms的速度在高精度模式下以0.8 ms的速度完成对一帧图像(640×480像素)的处理。实验结果表明,该系统可以处理各种复杂情况,包括场景照明变化,物体变形和部分遮挡。基于基于FPGA的系统,我们讨论了算法的大规模集成芯片实现和系统的自初始化(即在初始帧中跟踪对象的自主定位)的问题。还提出了解决多目标跟踪和完全遮挡问题的一些潜在解决方案。

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