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A Fuzzy Petri Net for Pattern Recognition: Application to Dynamic Classes

机译:用于模式识别的模糊Petri网:在动态类中的应用

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摘要

When involving evolutionary natural objects, the odeling of dynamic lasses is the main issue for a pattern recognition system. This problem an be avoided by making dynamic the syste of pattern recognition which an then enter into various states according to the evolution of the lasses. We propose a dynamic recognition system founded on two types of learning. The static aspect of the learning is ensured by lassifiers or systems of lassifiers, while the dynamic aspect is translated by the learning of the planning of the various states by a fuzzy Petri net. The method is sucessfully applied to a synthetic data set.
机译:当涉及进化的自然物体时,动态激光的编码是模式识别系统的主要问题。通过使模式识别系统动态化,然后根据激光的演变进入各种状态,可以避免此问题。我们提出了一种基于两种学习的动态识别系统。学习的静态方面是由细分器或细分器系统确保的,而动态方面是通过使用模糊Petri网学习各种状态的计划来翻译的。该方法成功地应用于合成数据集。

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