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Real-Time Object Detection for Multi-Camera on Heterogeneous Parallel Processing Systems

机译:异构并行处理系统上多摄像机实时目标检测

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In recent years, the need for object detection has significantly increased for multi-camera systems. However, the detection methods in such systems incur high computational cost, which leads to a major challenge in real-time applications. In this work, we propose a Scissor Algorithm for object detection using a multi-core CPU and a graphic processing unit (GPU). Leveraging the features of both the CPU and the GPU, the object detection method was enhanced in two stages: (a) pixel-to-pixel color filtering and (b) grouping. The proposed algorithm can effectively shrink the search area for detection and further improve the process of detection, thus effectively increasing the frame rate for real-time applications. Experimental results demonstrate the real-time performance of the proposed algorithm.
机译:近年来,多相机系统对对象检测的需求已大大增加。然而,在这种系统中的检测方法导致高计算成本,这导致实时应用中的重大挑战。在这项工作中,我们提出了一种使用多核CPU和图形处理单元(GPU)进行对象检测的剪刀算法。利用CPU和GPU的功能,对象检测方法在两个阶段得到了增强:(a)像素到像素的颜色过滤和(b)分组。所提出的算法可以有效地缩小检测区域,进一步改善检测过程,从而有效地提高了实时应用的帧率。实验结果证明了该算法的实时性。

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