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Soft assignment and multiple keypoint analysis-based pedestrian counting method

机译:基于软分配和多关键点分析的行人计数方法

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Pedestrian counting in videos is an active computer vision research topic that has wide ranging application. Existing pedestrian counting methods predominantly use features extracted from the foreground following subtraction of the background. However, accurately locating the foreground in real environments is difficult, and background subtraction is computationally expensive. The keypoint approach, which counts pedestrians without background subtraction, is limited owing to lack of sufficient features and no consideration for stationary pedestrians. This letter proposes an accurate keypoint-based pedestrian counting method. As no single keypoint detector can yield optimal counting results under all conditions, such as image resolution, frame rate, and illumination, we combine complementary keypoint detectors to enrich the features and thereby enhance pedestrian counting results. In addition, the proposed method considers stationary pedestrians by analyzing static keypoints information. Information loss during vector quantization is also reduced by applying soft assignment during feature extraction. The results of experiments conducted on public databases indicate that the proposed method outperforms the state-of-the-art methods on realistic outdoor and indoor public datasets.
机译:视频中的行人计数是一个活跃的计算机视觉研究主题,具有广泛的应用。现有的行人计数方法主要使用在减去背景后从前景中提取的特征。然而,在真实环境中准确定位前景是困难的,并且背景相减在计算上是昂贵的。由于没有足够的功能并且不考虑固定的行人,因此关键点方法(不包括背景减法)可以计算行人数量。这封信提出了一种基于关键点的准确行人计数方法。由于没有一个关键点检测器可以在所有条件下(例如图像分辨率,帧速率和照明)产生最佳的计数结果,因此我们结合使用互补的关键点检测器来丰富功能,从而增强行人计数结果。此外,该方法通过分析静态关键点信息来考虑平稳的行人。通过在特征提取过程中应用软分配,还可以减少矢量量化过程中的信息丢失。在公共数据库上进行的实验结果表明,在实际的室外和室内公共数据集上,该方法的性能优于最新方法。

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