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Fuzzy data management on pores arrangement for tropical wood species recognition system

机译:热带木材树种识别系统毛孔排列的模糊数据管理

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Ahuman-decision basedclassification wood recognition system is designed to classify 52 tropical wood species. The system is designed based on visual inspection of the wood anatomy textures, which can actually be presented as image data processing using statistical parameters representing the texture and the grey values. There are thousands of wood images being processed in the wood database. In order to overcome the large processing time needed to process the large wood database and the nonlinearity problems of the wood texture, an efficient fuzzy data management technique is proposed. The fuzzy data management technique is implemented based on the size and quantity of pores on each wood image which mimics the human interpretation on wood features. Finally, a multilayer feedforward neural network is used to classify the wood species. This paper involves comparison of the system's performance with and without the implementation of fuzzy data management. The results show that the inclusion of the fuzzy data management has improved the classification accuracy by approximately 4.0% and reduce the processing time for training and testing.
机译:基于人类决策的分类木材识别系统旨在对52种热带木材物种进行分类。该系统是基于对木材解剖结构纹理的视觉检查而设计的,实际上可以使用代表纹理和灰度值的统计参数将其表示为图像数据处理。木材数据库中正在处理数千个木材图像。为了克服处理大型木材数据库所需的大量处理时间以及木材纹理的非线性问题,提出了一种有效的模糊数据管理技术。模糊数据管理技术是基于每个木材图像上毛孔的大小和数量来实现的,该技术模仿了人类对木材特征的解释。最后,使用多层前馈神经网络对木材种类进行分类。本文涉及使用和不使用模糊数据管理的情况下系统性能的比较。结果表明,模糊数据管理的加入使分类精度提高了约4.0%,并减少了训练和测试的处理时间。

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