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Compact computer vision system for tropical wood species recognition based on pores and concentric curve

机译:基于孔和同心曲线的紧凑型计算机视觉系统,用于热带木材物种识别

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In Indonesia, there are more than 400 different species of wood commodity which commonly verified by trained evaluator, who is well trained and experienced to differentiate any different species of wood. The verifying process is carried out by sensing some general wood characteristics e.g. color, texture, fiber, conjecture, odor, rigidity and wood anatomical features. This study develops a portable vision system, which could recognize different wood species based on its pores and concentric curve, in order to replace the role of human evaluator. Firstly, ten different species of Indonesian-wood samples are provided as the objects. Secondly, the wood anatomical feature images captured by the CCD microscope with 50× magnification followed by the pre-processing method in order to obtain the physical characteristics of the wood. Next, wood's feature extractions are obtained based on multichannel Gabor filter on the wood pores and concentric curves. As final step, an artificial neural network with back propagation method of multilayer perceptron (MLP) was used to classify wood species. The training and validation process is carried out by using 20 testing data for each wood species. The total recognition of 10 wood species on multiple π/4 orientations is 95%, on multiple π/6 orientations is 95.5% and multiple π/8 orientations is 96.5%.
机译:在印度尼西亚,有400多种不同种类的木材商品,通常由训练有素的评估员进行验证,该评估员受过良好的培训,并且经验丰富,可以区分任何不同的木材。验证过程是通过感测一些一般的木材特性来完成的,例如颜色,质地,纤维,推测,气味,刚度和木材解剖特征。这项研究开发了一种便携式视觉系统,该系统可以根据其孔隙和同心曲线识别不同的木材,以取代人类评估者的作用。首先,提供了十种不同种类的印尼木材样品作为对象。其次,用CCD显微镜以50倍放大率拍摄木材的解剖特征图像,然后采用预处理方法,以获得木材的物理特性。接下来,基于多通道Gabor滤波器对木材孔隙和同心曲线进行木材特征提取。作为最后一步,使用带有多层感知器(MLP)反向传播方法的人工神经网络对木材种类进行分类。通过使用每种木材物种的20个测试数据来进行培训和验证过程。 10个木材物种在多个π/ 4方向上的总识别率为95%,在多个π/ 6方向上为95.5%,多个π/ 8方向为96.5%。

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