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Neural controller for PTZ cameras based on nonpanoramic foreground detection

机译:基于非致致致多种前景检测的PTZ摄像机神经控制器

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In this paper a controller for PTZ cameras based on an unsupervised neural network model is presented. It takes advantage of the foreground mask generated by a non-parametric foreground detection subsystem. Thus, our aim is to optimize the movements of the PTZ camera to attain the maximum coverage of the observed scene in presence of moving objects. A growing neural gas (GNG) is applied to enhance the representation of the foreground objects. Both qualitative and quantitative results are reported using several widely used datasets, which demonstrate the suitability of our approach.
机译:在本文中,提出了一种基于无监督的神经网络模型的PTZ摄像机的控制器。它利用了非参数到前景检测子系统生成的前景掩码。因此,我们的目的是优化PTZ摄像机的运动,以在移动物体存在下实现观察场景的最大覆盖率。应用不断增长的神经气体(GNG)以增强前景物体的表示。使用几种广泛使用的数据集来报告定性和定量结果,这证明了我们方法的适用性。

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