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Optimal Gabor filters for textile flaw detection

机译:最佳Gabor过滤器,用于纺织品探伤

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摘要

The task of detecting flaws in woven textiles can be formulated as the problem of segmenting a "known" non-defective texture from an "unknown" defective texture. In order to discriminate defective texture pixels from non-defective texture pixels, optimal 2-D Gabor filters are designed such that, when applied to non-defective texture, the filter response maximises a Fisher cost function. A pixel of potentially flawed texture is classified as defective or non-defective based on the Gabor filter response at that pixel. The results of this optimised Gabor filter classification scheme are presented for 35 different flawed homogeneous textures. These results exhibit accurate flaw detection with low false alarm rate. Potentially, our novel optimised Gabor filter method could be applied to the more complicated problem of detecting flaws in jacquard textiles. This second and more difficult problem is also discussed, along with some preliminary results. (C) 2002 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 22]
机译:可以将检测机织纺织品中的瑕疵的任务表述为将“已知的”无缺陷纹理与“未知的”有缺陷纹理分开的问题。为了将缺陷纹理像素与无缺陷纹理像素区分开,设计了最佳的2-D Gabor滤波器,使得当应用于无缺陷纹理时,滤波器响应可使Fisher成本函数最大化。根据该像素处的Gabor滤波器响应,将具有潜在缺陷纹理的像素分类为有缺陷或无缺陷。该优化的Gabor滤波器分类方案的结果针对35种不同的缺陷均匀纹理进行了介绍。这些结果表明准确的缺陷检测具有较低的误报率。潜在地,我们新颖的优化Gabor滤波器方法可以应用于检测提花纺织品中更复杂的缺陷的问题。还讨论了这个第二个更困难的问题,以及一些初步结果。 (C)2002模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:22]

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