一种从普通相机图像中近似橡胶木木材髓部位置的快速算法

W. Kurdthongmee, K. Suwannarat, Praepaka Panyuen, Naruedom Sae-Ma
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引用次数: 9

摘要

泰国的锯木厂需要一种自动方法来正确检测橡胶木髓。这是最大化每块木材板材产量的起点。知道木材的两个横截面两侧的髓位置,可以以这样一种方式旋转木材,使两个髓平行于锯。然后,一个结,沿着木材的长度可能有缺陷的部分,可以去除。本文提出了一种快速逼近橡胶木髓位的算法。该算法采用了定向梯度直方图(HOG)和一组相关的直方图bin指标,大大减少了算法中复杂线群交点部分需要后续使用的线段数量。这与之前提出的使用所有边缘点来创建大量线段的算法形成对比,这消耗了极高的处理时间。结果证实,与由普通相机拍摄的一组35个横截面橡胶木图像相比,在平均降低0.52检测误差的情况下,达到了3315倍的性能。
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A Fast Algorithm to Approximate the Pith Location of Rubberwood Timber from a Normal Camera Image
Sawmills in Thailand demand an automatic approach to correctly detect rubberwood piths. This is a starting point to maximize the yield of slabs per lumber. Knowing the pith location at both cross-section sides of the lumber makes it possible to rotate the lumber in such a way that both piths are parallel to the saws. Then, a knot, the likely to defect part which runs along the length of the lumber, can be removed. In this paper, we propose an algorithm to accelerate the process of approximating the pith location of rubberwoods. The algorithm employs histogram of oriented gradients (HOG) and a set of relevant histogram bin indices to significantly reduce the number of line segments to be later used in a complex group of lines intersection part of the algorithm. This is in contrast to previously proposed algorithms that employ all edge points to create a huge amount of line segments which consume extremely high processing time. The results confirm that 3,315 times performance is reached at 0.52 reduction of detection error in average compared to the state of the art implementation on a set of 35 cross-section rubberwood images taken by a normal camera.
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