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一种基于脉冲神经元的用于人类运动感知的时空能量模型。

A spatiotemporal energy model based on spiking neurons for human motion perception.

作者信息

Yedjour Hayat, Yedjour Dounia

机构信息

Faculty of Mathematics and Computer Science, Department of Computer Science, Université des Sciences et de la Technologie d'Oran Mohamed Boudiaf, USTO-MB, EL M'naouer, BP 1505, 31000 Oran, Algeria.

出版信息

Cogn Neurodyn. 2024 Aug;18(4):2015-2029. doi: 10.1007/s11571-024-10068-2. Epub 2024 Feb 7.

Abstract

Inspired by the motion processing pathway, this paper proposes a bio-inspired feedforward spiking network model based on Hodgkin-Huxley neurons for human motion perception. The proposed network mimics the mechanisms of direction selectivity found in simple and complex cells of the primary visual cortex. Simple cells' receptive fields are modeled using Gabor energy filters, while complex cells' receptive fields are constructed by integrating the responses of simple cells in an energy model. To generate the motion map, the spiking output of the network integrates motion information encoded by the responses of complex cells with various preferred directions. Simulation results demonstrate that the spiking neuron-based network effectively replicates the directional selectivity operation of the visual cortex when presented with a sequence of time-varying images. We evaluate the proposed model against state-of-the-art spiking neuron-based motion detection models using publicly available datasets. The results highlight the model's capability to extract motion energy from diverse video sequences, akin to human visual motion perception models. Additionally, we showcase the application of the proposed model in motion segmentation tasks and compare its performance with state-of-the-art motion-based segmentation models using challenging video segmentation benchmarks. The results indicate competitive performance. The motion maps generated by the proposed model can be utilized for action recognition in input videos.

摘要

受运动处理通路的启发,本文提出了一种基于霍奇金 - 赫胥黎神经元的生物启发式前馈脉冲神经网络模型,用于人类运动感知。所提出的网络模仿了初级视觉皮层简单细胞和复杂细胞中发现的方向选择性机制。简单细胞的感受野使用伽柏能量滤波器进行建模,而复杂细胞的感受野则通过在能量模型中整合简单细胞的响应来构建。为了生成运动地图,网络的脉冲输出将由具有各种偏好方向的复杂细胞响应编码的运动信息进行整合。仿真结果表明,当呈现一系列随时间变化的图像时,基于脉冲神经元的网络有效地复制了视觉皮层的方向选择性操作。我们使用公开可用的数据集,将所提出的模型与基于脉冲神经元的最新运动检测模型进行了评估。结果突出了该模型从不同视频序列中提取运动能量的能力,类似于人类视觉运动感知模型。此外,我们展示了所提出模型在运动分割任务中的应用,并使用具有挑战性的视频分割基准将其性能与基于运动的最新分割模型进行了比较。结果表明其具有竞争力的性能。所提出模型生成的运动地图可用于输入视频中的动作识别。

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