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Enhancing Multi-Camera People Detection by Online Automatic Parametrization Using Detection Transfer and Self-Correlation Maximization

机译:通过使用检测传递和自相关最大化的在线自动参数化来增强多摄像机人员的检测

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摘要

Finding optimal parametrizations for people detectors is a complicated task due to the large number of parameters and the high variability of application scenarios. In this paper, we propose a framework to adapt and improve any detector automatically in multi-camera scenarios where people are observed from various viewpoints. By accurately transferring detector results between camera viewpoints and by self-correlating these transferred results, the best configuration (in this paper, the detection threshold) for each detector-viewpoint pair is identified online without requiring any additional manually-labeled ground truth apart from the offline training of the detection model. Such a configuration consists of establishing the confidence detection threshold present in every people detector, which is a critical parameter affecting detection performance. The experimental results demonstrate that the proposed framework improves the performance of four different state-of-the-art detectors (DPM , ACF, faster R-CNN, and YOLO9000) whose Optimal Fixed Thresholds (OFTs) have been determined and fixed during training time using standard datasets.
机译:由于大量参数和应用场景的高度可变性,为人体检测器找到最佳参数设置是一项复杂的任务。在本文中,我们提出了一个框架,可以在多摄像机场景中从各种角度观察人的情况下自动适应和改进任何检测器。通过在摄像机视点之间准确地传输检测器结果并自我关联这些传输的结果,可以在线识别每个检测器-视点对的最佳配置(本文中为检测阈值),而无需任何其他手动标记的地面真相。离线训练检测模型。这种配置包括建立每个人检测器中存在的置信度检测阈值,这是影响检测性能的关键参数。实验结果表明,提出的框架提高了四个最佳检测器(DPM,ACF,更快的R-CNN和YOLO9000)的性能,这些检测器已在训练期间确定并固定了最佳固定阈值(OFT)使用标准数据集。

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