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A Real-time Scalable Object Detection System using Low-power HOG Accelerator VLSI

机译:使用低功耗HOG加速器VLSI的实时可扩展目标检测系统

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As described in this paper, a real-time object detection system using a Histogram of Oriented Gradients (HOG) feature extraction accelerator VLSI is presented. The VLSI [1, 2] enables the system to achieve real-time performance and scalability for multiple object detection under limited power condition. The VLSI employs three techniques: a VLSI-oriented HOG algorithm with early classification in Support Vector Machine (SVM) classification, a dual-core architecture for parallel feature extraction, and a detection-window-size scalable architecture with a reconfigurable MAC array for processing objects of different shapes. The test chip was fabricated using 65 nm CMOS technology. The measurement result shows that the VLSI consumes 43 mWat 42.9 MHz and 1.1 V to process HDTV (1920× 1080 pixels) at 30 frames per second (fps). A multiple object detection system and a multiple scale object detection system are presented to demonstrate the system flexibility and scalability realized by VLSI and applicability for versatile application of object detection. On the multiple object detection system, a real-time object detection for HDTV resolution video is achieved with 84 mW of power consumption on a task to detect 2 types of targets while keeping comparable detection accuracy as software-based system. On the multiple scale object detection system, a task to detect 5 scales of a target is accomplished using a single VLSI. The power consumption of the VLSI is estimated to 102 mW on the task.
机译:如本文所述,提出了一种使用定向梯度直方图(HOG)特征提取加速器VLSI的实时目标检测系统。 VLSI [1、2]使系统能够在有限的功率条件下实现多目标检测的实时性能和可扩展性。 VLSI采用了三种技术:面向VLSI的HOG算法,支持向量机(SVM)分类中的早期分类;双核体系结构,用于并行特征提取;以及检测窗口大小的可扩展体系结构,其中具有可重配置的MAC阵列用于处理。不同形状的物体。测试芯片是使用65 nm CMOS技术制造的。测量结果表明,VLSI在42.9 MHz和1.1 V时消耗43 mW的功率以每秒30帧(fps)的速度处理HDTV(1920×1080像素)。提出了一种多目标检测系统和多尺度目标检测系统,以展示由VLSI实现的系统灵活性和可扩展性以及在目标检测的通用应用中的适用性。在多目标检测系统上,HDTV分辨率视频的实时目标检测以84 mW的功耗实现,任务是检测2种类型的目标,同时保持与基于软件的系统相当的检测精度。在多尺度目标检测系统上,使用单个VLSI完成检测目标的5个尺度的任务。该任务的VLSI功耗估计为102 mW。

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