基于动态细胞活动控制的细胞神经网络用于Hausdorff距离估计

M. Janczyk, K. Slot
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引用次数: 0

摘要

提出了具有动态细胞活动控制的细胞神经网络的概念。该概念是对固定状态映射机制的扩展,它假设可以根据对相邻信号的当前分布的评估禁用或启用细胞进行处理。在一个特殊的案例中,通过对反馈模板和邻域输出之间的相互关联结果进行阈值化来进行评估,为有效地处理最小/最大问题提供了一种简单的方法。这个想法只需要对细胞结构进行微小的修改。以该网络为例,研究了该网络在两集间Hausdorff距离快速估计中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cellular Neural Networks with dynamic cell activity control for Hausdorff distance estimation
A concept of Cellular Neural Networks with dynamic cell activity control is proposed in the paper. The concept is an extension to the Fixed State Map mechanism and it assumes that cells can be disabled or enabled for processing based on assessment of current distributions of their neighboring signals. A particular case, where this assessment is made by thresholding a result of cross-correlation between feedback template and neighborhood outputs is shown to provide a simple means for efficient min/max problem handling. This idea requires introducing only minor modifications to a cell structure. As an example, application of the proposed network for fast estimation of Hausdorff distance between two sets has been considered.
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