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基于非对称时空视觉信息处理的旋转运动感知神经网络。

A Rotational Motion Perception Neural Network Based on Asymmetric Spatiotemporal Visual Information Processing.

机构信息

College of Computer Science and Technology, Guizhou University, Guiyang, China.

School of Computer Science, University of Lincoln, Lincoln, U.K.

出版信息

IEEE Trans Neural Netw Learn Syst. 2017 Nov;28(11):2803-2821. doi: 10.1109/TNNLS.2016.2592969.

Abstract

All complex motion patterns can be decomposed into several elements, including translation, expansion/contraction, and rotational motion. In biological vision systems, scientists have found that specific types of visual neurons have specific preferences to each of the three motion elements. There are computational models on translation and expansion/contraction perceptions; however, little has been done in the past to create computational models for rotational motion perception. To fill this gap, we proposed a neural network that utilizes a specific spatiotemporal arrangement of asymmetric lateral inhibited direction selective neural networks (DSNNs) for rotational motion perception. The proposed neural network consists of two parts-presynaptic and postsynaptic parts. In the presynaptic part, there are a number of lateral inhibited DSNNs to extract directional visual cues. In the postsynaptic part, similar to the arrangement of the directional columns in the cerebral cortex, these direction selective neurons are arranged in a cyclic order to perceive rotational motion cues. In the postsynaptic network, the delayed excitation from each direction selective neuron is multiplied by the gathered excitation from this neuron and its unilateral counterparts depending on which rotation, clockwise (cw) or counter-cw (ccw), to perceive. Systematic experiments under various conditions and settings have been carried out and validated the robustness and reliability of the proposed neural network in detecting cw or ccw rotational motion. This research is a critical step further toward dynamic visual information processing.All complex motion patterns can be decomposed into several elements, including translation, expansion/contraction, and rotational motion. In biological vision systems, scientists have found that specific types of visual neurons have specific preferences to each of the three motion elements. There are computational models on translation and expansion/contraction perceptions; however, little has been done in the past to create computational models for rotational motion perception. To fill this gap, we proposed a neural network that utilizes a specific spatiotemporal arrangement of asymmetric lateral inhibited direction selective neural networks (DSNNs) for rotational motion perception. The proposed neural network consists of two parts-presynaptic and postsynaptic parts. In the presynaptic part, there are a number of lateral inhibited DSNNs to extract directional visual cues. In the postsynaptic part, similar to the arrangement of the directional columns in the cerebral cortex, these direction selective neurons are arranged in a cyclic order to perceive rotational motion cues. In the postsynaptic network, the delayed excitation from each direction selective neuron is multiplied by the gathered excitation from this neuron and its unilateral counterparts depending on which rotation, clockwise (cw) or counter-cw (ccw), to perceive. Systematic experiments under various conditions and settings have been carried out and validated the robustness and reliability of the proposed neural network in detecting cw or ccw rotational motion. This research is a critical step further toward dynamic visual information processing.

摘要

所有复杂的运动模式都可以分解为几个元素,包括平移、伸缩和旋转运动。在生物视觉系统中,科学家们发现特定类型的视觉神经元对这三种运动元素中的每一种都有特定的偏好。已经有关于平移和伸缩感知的计算模型;然而,过去在创建旋转运动感知的计算模型方面做得很少。为了填补这一空白,我们提出了一种利用非对称侧向抑制方向选择性神经网络(DSNN)的特定时空排列来进行旋转运动感知的神经网络。所提出的神经网络由两个部分组成-突触前部分和突触后部分。在突触前部分,有许多侧向抑制的 DSNN 来提取方向视觉线索。在突触后部分,类似于大脑皮层中方向柱的排列,这些方向选择性神经元以循环方式排列,以感知旋转运动线索。在突触后网络中,每个方向选择性神经元的延迟激发乘以来自该神经元及其单侧对应物的聚集激发,具体取决于要感知的旋转方向,是顺时针(cw)还是逆时针(ccw)。已经在各种条件和设置下进行了系统的实验,验证了所提出的神经网络在检测 cw 或 ccw 旋转运动方面的稳健性和可靠性。这项研究是朝着动态视觉信息处理迈出的关键一步。

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