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Real-Time Face Tracking under Long-Term Full Occlusions

机译:长期全闭锁下的实时面部跟踪

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The identified weaknesses of most of state-of-the-art trackers are inability to cope with long-term full occlusions, abrupt motion, detecting and tracking a reappeared target. In this paper, we present a robust real-time single face tracking system with several new key features: semi-automatic target tracking initialization based on a robust face detector, an effective target loss estimation based on a response of a position correlation filter, a candidate image patch selection for reinitialization supported with a short- and long-term memories (STM and LTM). These memories are used for tracking reinitialization during online learning procedure. The STM is used to select an image patch as candidate for re-tracking based on stored position correlation filters (from current frame) in case of short-term full occlusions, while the LTM stores aggregated position correlation filters (online learned) is used to recover the tracker from long-term full occlusions. Validation of the tracking system was performed by evaluation on a subset of videos from Online Tracking Benchmark (OTB) dataset and our own video.
机译:鉴定的大多数最先进的跟踪器的缺点是无法应对长期全闭塞,突然的运动,检测和跟踪重新分化的目标。在本文中,我们展示了一种具有多个新关键特征的强大实时单面跟踪系统:基于鲁棒面检测器的半自动目标跟踪初始化,基于位置相关滤波器的响应的有效目标损耗估计,a用于重新初始化的候选图像补丁选择,具有短期和长期存储器(STM和LTM)。这些存储器用于在线学习过程中跟踪重新初始化。 STM用于基于存储位置相关滤波器(来自当前帧)的存储位置相关滤波器(来自当前帧)来选择图像贴片,以便在短期完全闭塞的情况下,而LTM存储聚合位置相关滤波器(在线学习)从长期全闭锁中恢复跟踪器。通过在来自在线跟踪基准(OTB)数据集和我们自己的视频的视频子集上进行跟踪系统的验证。

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