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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >AN ARTIFICIAL NEURAL NETWORK SYSTEM FOR TEMPORAL-SPATIAL SEQUENCE PROCESSING
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AN ARTIFICIAL NEURAL NETWORK SYSTEM FOR TEMPORAL-SPATIAL SEQUENCE PROCESSING

机译:时空序列处理的人工神经网络系统

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摘要

An artificial network is described that can learn, recognize, and generate higher-order temporal-spatial sequences. It consists of three parts: (1) comparator units, (2) a parallel array of artificial neural networks that are derived from the visual-vestibular networks of the snail Hermissenda, as well as hippocampal neuroanatomy, and (3) delayed feedback lines from the output of the system to the neural network layer. Its advantages include short training time, fast and accurate retrievals, toleration of spatial noise and temporal gaps in test sequences, and ability to store a large number of temporal sequences consisting of non-orthogonal spatial patterns. [References: 48]
机译:描述了一种可以学习,识别和生成高阶时空序列的人工网络。它由三部分组成:(1)比较器单元;(2)从蜗牛Hermissenda的视觉-前庭网络以及海马神经解剖学派生的并行人工神经网络;以及(3)来自系统的输出到神经网络层。它的优势包括训练时间短,快速准确的检索,对测试序列中空间噪声和时间间隔的容忍度以及能够存储由非正交空间模式组成的大量时间序列的能力。 [参考:48]

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