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A Real-Time Human Detection System for Video

机译:实时视频人类检测系统

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摘要

This work presents a real-time human detection system for VGA (Video Graphics Array, 640 × 480) video, which well suits visual surveillance applications. To achieve high running speed and accuracy, firstly we design multiple fast scalar feature types on the gradient channels, and experimentally identify that NOGCF (Normalized Oriented Gradient Channel Feature) has better performance with Gentle AdaBoost in cascaded classifiers. A confidence measure for cascaded classifiers is developed and utilized in the subsequent tracking stage. Secondly, we propose to use speedup techniques including a detector pyramid for multi-scale detection and channel compression for integral channel calculation respectively. Thirdly, by integrating the detector's discrete detected humans and continuous detection confidence map, we employ a two-layer tracking by detection algorithm for further speedup and accuracy improvement. Compared with other methods, experiments show the system is significantly faster with 20 fps running speed in VGA video and has better accuracy as well.
机译:这项工作提出了一种用于VGA(视频图形阵列,640×480)视频的实时人体检测系统,非常适合视觉监控应用。为了实现较高的运行速度和精度,首先我们在梯度通道上设计了多种快速标量特征类型,并通过实验确定了NOGCF(归一化梯度通道特征)在级联分类器中使用Gentle AdaBoost具有更好的性能。针对级联分类器的置信度度量得到开发,并在随后的跟踪阶段得到利用。其次,我们建议使用加速技术,包括分别用于多尺度检测的检测器金字塔和用于整体信道计算的信道压缩。第三,通过整合检测器的离散检测人员和连续检测置信度图,我们通过检测算法采用了两层跟踪,以进一步提高速度并提高准确性。与其他方法相比,实验表明,该系统在VGA视频中以20 fps的运行速度明显更快,并且精度更高。

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