基于模型的物体识别中的模糊方法

D. Popovic, N. Liang
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引用次数: 6

摘要

提出了一种基于模糊逻辑的模式识别方法及相应的基于模型的问题求解算法,该算法适用于智能机器人识别中,工作机器人的空间定向需要良好的视觉定向。对于简化的模式识别,使用视角签名来表示目标图像的特征。以这种方式定义的特征,然后用于构建参考模型库。此外,定义了参考模式的隶属度函数,构建了标定规则库。最后,利用所建立的模型库和所提出的基于规则的算法,将存储的“看到”对象的图像分类为是否属于参考对象。给出了一些仿真结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fuzzy approach in model-based object recognition
A fuzzy logic approach to pattern recognition is proposed along with the corresponding model-based problem solving algorithm suitable for recognition in intelligent robotics, where a good visual orientation is required for space orientation of a working robot. For simplified pattern recognition the angle-of-sight signature is used to represent the features of the object image. The features, defined in this way, are then used for building a reference model base. In addition, the membership function of the reference modes was defined in order to structure the demarcation rule base. Finally using the model base built and the rule-based algorithm proposed, the stored image of the "seen" object is classified as pertaining to the reference one or not. Some simulation results are included.<>
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