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Disambiguating Visual Motion by Form-Motion Interaction—a Computational Model

机译:通过形式-运动交互来消除视觉运动的歧义—一种计算模型

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The neural mechanisms underlying motion segregation and integration still remain unclear to a large extent. Local motion estimates often are ambiguous in the lack of form features, such as corners or junctions. Furthermore, even in the presence of such features, local motion estimates may be wrong if they were generated near occlusions or from transparent objects. Here, a neural model of visual motion processing is presented that involves early stages of the cortical dorsal and ventral pathways. We investigate the computational mechanisms of V1-MT feedforward and feedback processing in the perception of coherent shape motion. In particular, we demonstrate how modulatory MT-V1 feedback helps to stabilize localized feature signals at, e.g. corners, and to disambiguate initial flow estimates that signal ambiguous movement due to the aperture problem for single shapes. In cluttered environments with multiple moving objects partial occlusions may occur which, in turn, generate erroneous motion signals at points of overlapping form. Intrinsic-extrinsic region boundaries are indicated by local T-junctions of possibly any orientation and spatial configuration. Such junctions generate strong localized feature tracking signals that inject erroneous motion directions into the integration process. We describe a simple local mechanism of excitatory form-motion interaction that modifies spurious motion cues at T-junctions. In concert with local competitive-cooperative mechanisms of the motion pathway the motion signals are subsequently segregated into coherent representations of moving shapes. Computer simulations demonstrate the competency of the proposed neural model.
机译:运动分离和整合的神经机制在很大程度上仍不清楚。由于缺乏诸如拐角或路口之类的形状特征,局部运动估计常常是模棱两可的。此外,即使存在这样的特征,如果局部运动估计是在遮挡附近或从透明物体生成的,则它们可能是错误的。在这里,提出了视觉运动处理的神经模型,该模型涉及皮质背侧和腹侧通路的早期阶段。我们研究了V1-MT前馈和反馈处理在相干形状运动感知中的计算机制。特别是,我们展示了调制MT-V1反馈如何帮助稳定局部特征信号,例如并消除歧义的初始流量估算值,该信号表示由于单个形状的孔径问题而产生的歧义运动。在具有多个运动物体的混乱环境中,可能会发生部分遮挡,从而在重叠形式的点处生成错误的运动信号。内部-外部区域边界由可能具有任何方向和空间配置的局部T型结指示。这样的结点会生成强大的局部特征跟踪信号,从而将错误的运动方向注入到积分过程中。我们描述了兴奋的形式运动相互作用的一种简单的局部机制,该机制可以修改T型连接处的虚假运动线索。与运动路径的局部竞争合作机制相一致,运动信号随后被分离为运动形状的连贯表示。计算机仿真证明了所提出的神经模型的能力。

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