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Pedestrian Detection and Tracking in Challenging Surveillance Videos

机译:具有挑战性的监控视频中的行人检测和跟踪

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摘要

In this chapter we propose a novel approach for real-time robust pedestrian tracking in surveillance images. Typical surveillance images are challenging to analyse since the overall image quality is low (e.g. low resolution and high compression). Furthermore often birds-eye viewpoint wide-angle lenses are used to achieve maximum coverage with a minimal amount of cameras. These specific viewpoints make it unfeasible to directly apply existing pedestrian detection techniques. Moreover, real-time processing speeds are required. To overcome these problems we introduce a pedestrian detection and tracking framework which exploits and integrates these scene constraints to achieve high accuracy results. We performed extensive experiments on publically available challenging real-life video sequences concerning both speed and accuracy. Our approach achieves excellent accuracy results while still meeting the stringent real-time demands needed for these surveillance applications, using only a single-core CPU implementation.
机译:在本章中,我们提出了一种用于监视图像中的实时鲁棒行人跟踪的新颖方法。由于总体图像质量较低(例如,低分辨率和高压缩率),典型的监视图像难以分析。此外,通常使用鸟瞰视点广角镜以最少的相机数量实现最大的覆盖范围。这些特定的观点使得直接应用现有的行人检测技术不可行。而且,需要实时处理速度。为了克服这些问题,我们引入了行人检测和跟踪框架,该框架利用并整合了这些场景约束以实现高精度结果。我们对公开发售的具有挑战性的真实视频序列进行了广泛的实验,涉及速度和准确性。我们的方法在仅使用单核CPU实现的情况下,即可达到出色的精度结果,同时仍然满足这些监视应用程序所需的严格实时需求。

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