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Kernel-based method for tracking objects with rotation and translation

机译:基于核的旋转和平移跟踪方法

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This paper addresses the issue of tracking translation and rotation simultaneously. Starting with a kernel-based spatial-spectral model for object representation, we define an l/sub 2/-norm similarity measure between the target object and the observation, and derive a new formulation to the tracking of translational and rotational object. Based on the tracking formulation, an iterative procedure is proposed. We also develop an adaptive kernel model to cope with varying appearance. Experimental results are presented for both synthetic data and real-world traffic video.
机译:本文解决了同时跟踪平移和旋转的问题。从用于对象表示的基于核的空间光谱模型开始,我们在目标对象和观测值之间定义了一个1 / sub 2 /范数相似性度量,并为平移和旋转对象的跟踪推导了新的公式。基于跟踪公式,提出了一种迭代过程。我们还开发了适应性内核模型来应对变化的外观。给出了合成数据和真实交通视频的实验结果。

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