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A recursive patterns matching model for the dynamic pattern recognition problem

机译:动态模式识别问题的递归模式匹配模型

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摘要

This paper defines a new recursive pattern matching model based on the theory of the systemic functioning of the human brain, called pattern recognition theory of mind, in the context of the dynamic pattern recognition problem. Dynamic patterns are characterized by having properties that change in intervals of time, such as a pedestrian walking or a car running (the negation of a dynamic pattern is a static pattern). Novel contributions of this paper include: (1) Formally develop the concepts of dynamic and static pattern, (2) design a recursive pattern matching model, which exploits the idea of recursivity and time series in the recognition process, and the unbundling/integration of pattern to recognize, and (3) develop strategies of pattern matching from two major orientations: recognition of dynamic patterns oriented by characteristic, or oriented by perception. The model is instantiated in several cases, to analyze its performance.
机译:本文在动态模式识别问题的背景下,基于人脑的系统功能理论,定义了一种新的递归模式匹配模型,称为思维模式识别理论。动态模式的特征是具有随时间间隔变化的属性,例如人行道或汽车行驶(动态模式的取反是静态模式)。本文的新颖贡献包括:(1)正式发展动态和静态模式的概念;(2)设计递归模式匹配模型,该模型在识别过程中利用了递归性和时间序列的思想,以及对模式识别;(3)从两个主要方向发展模式匹配策略:以特征为导向或以感知为导向的动态模式的识别。在几种情况下实例化该模型,以分析其性能。

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