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Combined Motion and Appearance Models for Robust Object Tracking in Real-Time

机译:实时鲁棒对象跟踪的组合运动和外观模型

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摘要

This paper proposes a tracking architecture that finds a trade-off between accuracy and efficiency, via a combined solution of motion and appearance information. We explore the use of color features into a tracking pipeline based on Kalman filtering. The devised architecture is made of simple modules, combined to reach a robust final result, while keeping the computation cost low (we perform $20$ fps). The method has been evaluated on three benchmark datasets and is currently under use on real video-surveillance systems, reporting very good tracking results.
机译:本文提出了一种跟踪架构,通过组合的运动和外观信息解决方案,在准确性和效率之间找到权衡。我们探讨了基于卡尔曼滤波的跟踪管道中的颜色特征。设计的架构由简单模块组成,组合以达到强大的最终结果,同时保持计算成本低(我们执行20美元的FPS)。该方法已在三个基准数据集中进行评估,目前正在使用真正的视频监控系统,报告非常好的跟踪结果。

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