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Generation of Emergent Navigation Behavior in Autonomous Agents Using Artificial Vision

机译:使用人工视觉生成自主代理中的紧急导航行为

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In this work, we deal with the dynamics of the movements of autonomous agents, which are able to move in the environment using their own vision. For this, we apply the Continuous Time Recurrent Artificial Neural Network and the genetic encoding proposed in [1] [2]. However, we use a new sensorial description, which consists in captured images by a virtual camera, evolving an artificial visual cortex. The experiments show that the agents are able to navigate in the environment and to find the exit, in a non-programmed way, using only the visual data passed to the neural network. This has the flexibility to be applied in various environments, without displaying a forced tendency by a possible behavioral modeling as in other techniques.
机译:在这项工作中,我们将处理自主代理的动态变化,这些代理可以使用自己的视野在环境中移动。为此,我们应用了连续时间递归人工神经网络和[1] [2]中提出的遗传编码。但是,我们使用了一种新的感官描述,其中包括通过虚拟相机捕获的图像,从而演化出人造视觉皮层。实验表明,代理程序仅使用传递给神经网络的可视数据,就能够以非编程方式在环境中导航并找到出口。这具有可应用于各种环境的灵活性,而不会像其他技术一样通过可能的行为建模显示强制趋势。

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