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An Approach for Target Tracking using Log-polar Images

机译:使用对数极坐标图像的目标跟踪方法

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Active vision brings important advantages for physically embodied artificial agents interacting with their environment. Gaze control is one of the important issues in active vision. In this paper, we address one subproblem of gaze control, namely, gaze stabilization, which appears when visually tracking a moving object is required. One approach to tackle this is by solving a motion estimation problem. On the other hand, foveal sensing is known to play an important role within active vision. Log-polar imaging is a biologically motivated foveal model with important benefits for tasks such as tracking. Therefore, here we propose an adaptation of a motion estimation algorithm, initially developed for cartesian images, to log-polar images. Experiments are included to illustrate the application of the approach to estimate the motion of a target in real image sequences, as well as to show how motion estimates can be used to drive a pan-tilt head, which conveys some benefits over the mere passive tracking approach.
机译:主动视觉为物理实现的人工代理与其环境相互作用带来了重要的优势。注视控制是主动视觉中的重要问题之一。在本文中,我们解决了凝视控制的一个子问题,即凝视稳定,该问题在需要视觉跟踪运动物体时出现。解决此问题的一种方法是解决运动估计问题。另一方面,中央凹感在主动视觉中起着重要作用。对数极极成像是一种生物驱动的中央凹模型,对诸如跟踪等任务具有重要的好处。因此,在这里,我们提出了一种运动估计算法的改进方案,该算法最初是为笛卡尔图像开发的,适用于对数极坐标图像。包括实验以说明该方法在实际图像序列中估算目标运动的应用,并说明如何使用运动估算来驱动云台,这比单纯的被动跟踪具有一些优势方法。

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