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The k-nearest neighbor method for automatic identification of wood products

机译:木材产品自动识别的K近邻法

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The complete follow-up of a product from its origin to its final use has been strongly developed in recent years. In wood industries, the implementation of ordinary identification systems presents implantation problems, mainly because of the extremely variable nature of the material and the particular features of the manufacturing process. In order to allow follow-up of products, new solutions have been considered by the use of non-destructive control techniques. We implemented an identification system, where each product is considered as unique with unique features. We use a microwave sensor to obtain an intrinsic signal of a wood piece and then perform its identification. The objective is to determine a process for identifying signals. The algorithm developed for pattern identification is based on the k-nearest neighbor method. To increase the performance of this algorithm, the signals are pretreated. Signals already recorded in the database are positioned in the space to n-dimensions. When a product is to be identified, it also sees its signal positioned; the signal having a distance criterion nearest the reference is located. The identifying algorithm developed shows an error of 1.5%.
机译:近年来,从产品的生产到最终使用的全过程都得到了大力发展。在木材工业中,常规识别系统的实施会带来植入问题,这主要是由于材料的性质极其可变以及制造过程的特殊特征所致。为了对产品进行跟进,已经通过使用无损控制技术来考虑新的解决方案。我们实施了一个识别系统,在该系统中,每个产品都被视为具有独特功能的独特产品。我们使用微波传感器获取木片的固有信号,然后进行识别。目的是确定识别信号的过程。为模式识别开发的算法基于k最近邻方法。为了提高该算法的性能,对信号进行了预处理。已经记录在数据库中的信号被定位在n维空间中。当要识别产品时,它还会看到其信号的位置。定位距离标准最接近参考信号的信号。所开发的识别算法显示出1.5%的误差。

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