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Neural Network Control for Active Cameras Using Master-Slave Setup

机译:使用主从设置的主动摄像机的神经网络控制

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The use of active cameras has increased to perform tasks such as tracking and biometrics at distance. Furthermore, recent efforts have focused on the master-slave setup, which is composed of fixed and PTZ cameras. Although, there are many works regarding active camera control, there is no standard way to compare different control approaches once the experiment cannot be reproduced. Thus, in this work, besides the proposition of a novel learning-based approach to the master-slave setup, we also propose an experimental setup that allows a fair comparison between different methods. The proposed control method learns corresponding points between the fixed and the PTZ cameras using a neural network. The novel experimental setup places two PTZ cameras side-by-side with a very similar view so that two different algorithms can be executed simultaneously. The experiments show that the proposed method is better than literature method when the focus is centralizing a target at the PTZ view.
机译:有源相机的使用增加以便在距离执行诸如跟踪和生物识别技术的任务。此外,最近的努力集中在主从设置上,由固定和PTZ相机组成。虽然,有很多关于有源相机控制的作品,但一旦无法再现实验,就没有标准的方法可以比较不同的控制方法。因此,在这项工作中,除了基于新的学习方法到主从设置的命题之外,我们还提出了一种实验设置,可以在不同方法之间进行公平比较。所提出的控制方法使用神经网络学习固定和PTZ相机之间的对应点。新颖的实验设置将两个PTZ相机并排放置,具有非常相似的视图,使得可以同时执行两个不同的算法。实验表明,当聚焦在PTZ视图中集中目标时,所提出的方法优于文献方法。

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