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Robust Bioinspired Architecture for Optical-Flow Computation

机译:鲁棒的生物启发式光流计算架构

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Motion estimation from image sequences, called optical flow, has been deeply analyzed by the scientific community. Despite the number of different models and algorithms, none of them covers all problems associated with real-world processing. This paper presents a novel customizable architecture of a neuromorphic robust optical flow (multichannel gradient model) based on reconfigurable hardware with the properties of the cortical motion pathway, thus obtaining a useful framework for building future complex bioinspired real-time systems with high computational complexity. The presented architecture is customizable and adaptable, while emulating several neuromorphic properties, such as the use of several information channels of small bit width, which is the nature of the brain. This paper includes the resource usage and performance data, as well as a comparison with other systems. This hardware platform has many application fields in difficult environments due to its bioinspired nature and robustness properties, and it can be used as starting point in more complex systems.
机译:科学界已经对来自图像序列的运动估计(称为光流)进行了深入分析。尽管有许多不同的模型和算法,但它们都不能涵盖与现实世界处理相关的所有问题。本文提出了一种新的可定制的神经形态鲁棒性光流(多通道梯度模型)的可自定义体系结构,该结构基于具有皮层运动路径特性的可重构硬件,从而获得了一个有用的框架,可用于构建具有高计算复杂性的未来复杂的,受生物启发的实时系统。所呈现的体系结构是可定制的和适应性的,同时模拟了几种神经形态特性,例如使用了几个小宽度的信息通道,这是大脑的本质。本文包括资源使用情况和性能数据,以及与其他系统的比较。该硬件平台具有生物启发性和鲁棒性,因此在困难的环境中具有许多应用领域,并且可以用作更复杂系统中的起点。

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