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A hardware architecture of face detection for human-robot interaction and its implementation

机译:人机交互人脸检测的硬件架构及其实现

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This paper presents hardware architecture with low-complexity face detection (FD) and parallel processing of local binary pattern (LBP) generation and adaptive boosting (AdaBoost) algorithm using Haar features for the intelligent service robot system. We designed a fully pipelined architecture implemented with the design techniques, such as variable image scaling and parallel processing multiple classifiers without integral image generation, on the FPGA platform. The proposed architecture enables a real-time FD processing for a VGA video at 30 frames per second.
机译:本文提出了一种硬件架构,该架构具有低复杂度人脸检测(FD)和并行处理本地二进制模式(LBP)生成以及使用Haar功能的自适应提升(AdaBoost)算法的智能服务机器人系统。我们在FPGA平台上设计了一种采用设计技术实现的全流水线架构,例如可变图像缩放和并行处理多个分类器,而无需生成完整的图像。所提出的体系结构能够以每秒30帧的速度对VGA视频进行实时FD处理。

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