基于局部二值差异激励模式的木材缺陷分类
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TP391.41TH165

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国家自然科学基金项目(61271365)资助


Wood defect classification based on local binary difference excitation pattern
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    摘要:

    针对木板表面裂缝和矿物线的区分问题,提出一种基于局部二值差异激励模式(LB_DEP)的方法。首先经预处理分割潜在缺陷区域,然后通过几何参数筛选呈线状的裂缝和矿物线。接着基于LBP与韦伯定律,建立反映图像纹理结构位置与差异激励关联关系的LB_DEP直方图。最后提取LBP和LB_DEP直方图特征,并融合特征数据,形成的特征向量作为SVM分类器的输入用于缺陷分类。提出的两种特征提取方法分别为“Hchisquare”法和“HPCA”法,均在自建的数据集上进行了评估。结果显示,在两种特征提取方法下,本文算法分别获得了937%和958%的Recall,及950%和965%的Precision。与相似研究相比,Recall和Precision分别至少提高了3%和5%,且算法耗时均为毫秒级别,表现出方法的优势和有效性。

    Abstract:

    Aiming at the problem of distinguishing split defects from mineral lines on the wood surface, a method based on local binary difference excitation pattern (LB_DEP) is proposed. Firstly, the potential defect regions are segmented with image preprocessing, then linear split and mineral line are screened using geometric parameters. Based on local binary pattern (LBP) and Weber′s law, an LB_DEP histogram reflecting the correlation relationship between image texture structure positions and difference excitation is established. Finally, the histogram features of LBP and LB_DEP are extracted, which are fused with feature data to form the feature vector that is used as the input of the SVM classifier to classify defects. Two feature extraction methods are proposed, namely ‘Hchisquare’ and ‘HPCA’, which are both evaluated on the selfbuilt data set. The experiment results show that for the two feature extraction methods the recall rates of 0937 and 0958, as well as the precision of 0950 and 0965 are obtained, respectively. Compared with other similar researches, the recall rate and precision are improved by at least 3% and 5%, respectively, and the time consumption is also at the level of milliseconds, which indicates the advantages and effectiveness of the proposed method.

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李绍丽,苑玮琦,杨俊友,李德健.基于局部二值差异激励模式的木材缺陷分类[J].仪器仪表学报,2019,40(6):68-77

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  • 在线发布日期: 2022-02-10
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