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A Pulsed Neural Network Model for Attentional Shifts without External Inhibition

机译:没有外部抑制的脉冲神经网络模型

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In natural settings such as visual search, the focus of attention should be shifted to find the target. To explain the shifts of visual attention driven by visual stimuli, most models assume the existence of saliency-map, which represents saliency of objects in the visual field. Then, a WTA (winner-take-all) network not only represents the most salient location in the visual environment, but also shifts the focus of attention. The shift mechanism has not been studied well. In this study, we proposed a pulsed neural network model that can move the winning location on the WTA network sequentially. In the traditional model, movement of winner was realized by external Inhibition-of-return(IOR). By contrast, our model used the internal dynamics of saliency map alone, namely combinations of lateral inhibition and self inhibition. A simulation experiment on visual search task showed that performance of the model is consistent with human performance with pop-out and conjunction search tasks. In order to shift the focus of attention, it is not necessary to assume the existence of IOR.
机译:在视觉搜索等自然设置中,应向关注的焦点转移以找到目标。为了解释视觉刺激驱动的视觉注意的转变,大多数模型都假设显着映射的存在,这表示视野中对象的显着性。然后,WTA(获胜者 - All)网络不仅代表视觉环境中最突出的位置,而且转移了关注的焦点。换档机制尚未得到很好的研究。在这项研究中,我们提出了一种脉冲神经网络模型,可以顺序地将获胜位置移动在WTA网络上。在传统模式中,赢家的运动是通过返回的外部抑制(IOR)实现。相比之下,我们的模型使用了单独的显着性图的内部动态,即横向抑制和自我抑制的组合。视觉搜索任务的仿真实验表明,该模型的性能与人类性能一致,弹出并结合搜索任务。为了改变关注的焦点,没有必要承担IOR的存在。

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