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An Energy-Efficient Hardware Implementation of HOG-Based Object Detection at 1080HD 60 fps with Multi-Scale Support

机译:基于HOG的高能效硬件实现,可实现1080HD 60 fps的多尺度支持

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摘要

A real-time and energy-efficient multi-scale object detector hardware implementation is presented in this paper. Detection is done using Histogram of Oriented Gradients (HOG) features and Support Vector Machine (SVM) classification. Multi-scale detection is essential for robust and practical applications to detect objects of different sizes. Parallel detectors with balanced workload are used to increase the throughput, enabling voltage scaling and energy consumption reduction. Image pre-processing is also introduced to further reduce power and area costs of the image scales generation. This design can operate on high definition 1080HD video at 60 fps in real-time with a clock rate of 270 MHz, and consumes 45.3 mW (0.36 nJ/pixel) based on post-layout simulations. The ASIC has an area of 490 kgates and 0.538 Mbit on-chip memory in a 45 nm SOI CMOS process.
机译:本文提出了一种实时,节能的多尺度目标检测器硬件实现。使用定向梯度直方图(HOG)功能和支持向量机(SVM)分类进行检测。多尺度检测对于鲁棒且实际的应用程序检测不同大小的对象至关重要。具有平衡工作负载的并行检测器用于增加吞吐量,从而实现电压缩放和能耗降低。还引入了图像预处理功能,以进一步降低图像缩放比例生成的功耗和面积成本。该设计可以以270 MHz的时钟速率实时处理60 fps的高清1080HD视频,并基于布局后仿真消耗45.3 mW(0.36 nJ /像素)的功率。 ASIC在45 nm SOI CMOS工艺中的面积为490 kgates,片上存储器为0.538 Mbit。

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