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Design of unified support vector machine circuit for pedestrians and cars detection

机译:行人和车辆检测的统一支持向量机电路设计

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This paper describes the design of unified support vector machine circuit for pedestrians and cars detection. By unifying the algorithms and architectures of linear and nonlinear SVM classifications, the proposed circuit can support both linear and non-linear classifications very efficiently in terms of circuit size and performance. The circuit size is minimized by sharing most of the resources required in the computation for both classification types. Parallel architecture with pipeline is adopted to accelerate the processing speed to handle a large amount of operations for real-time processing. 48×96 and 64×64 sliding windows with 6 window strides are used to detect pedestrians and cars, respectively. The synthesized circuit using 65nm standard cell library consists of 848,349 gates and its maximum operating frequency is 435MHz. The circuit can process 91.9 640×480 image frames per second assuming three cameras equipped on front, right and left side positions of the vehicle.
机译:本文介绍了用于行人和汽车检测的统一支持向量机电路的设计。通过统一线性和非线性SVM分类的算法和体系结构,所提出的电路可以在电路大小和性能方面非常有效地支持线性和非线性分类。通过共享两种分类类型的计算所需的大多数资源,可以最大程度地减小电路尺寸。采用带管道的并行架构来加快处理速度,以处理大量操作以进行实时处理。具有6个窗距的48×96和64×64滑动窗分别用于检测行人和汽车。使用65nm标准单元库的合成电路包括848,349个门,其最大工作频率为435MHz。假设在车辆的前,右侧和左侧位置装有三个摄像头,该电路每秒可处理91.9 640×480图像帧。

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