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Study on objective evaluation of seam pucker based on wavelet probabilistic neural network

机译:基于小波概率神经网络的接缝褶皱客观评估研究

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A new method to objectively evaluate seam pucker is brought out in this paper. Firstly, AATCC 88B seam pucker standard pictures are taken by digital camera. After wavelet transform of images, the six parameters that are standard deviation of horizontal, vertical and diagonal detail coefficients on 5th dimension, horizontal detail coefficients and histogram and image entropy are extracted, on 4th are extracted. Then, objective evaluation model of seam pucker based on probabilistic neural network is constructed and its prediction accuracy is more than 90% by test. This prediction model can be used to evaluate seam pucker grades of unknown samples, so that to overcome ambiguity and uncertainty of subjective evaluation.
机译:提出了一种客观评价接缝褶皱的新方法。首先,AATCC 88B接缝皱褶标准图片是用数码相机拍摄的。对图像进行小波变换后,提取了第5维水平,垂直和对角细节系数的标准偏差,第5维水平细节系数和直方图以及图像熵的6个参数。然后,建立了基于概率神经网络的折缝客观评价模型,经测试其预测精度达到90%以上。该预测模型可用于评估未知样品的接缝褶皱等级,从而克服主观评估的歧义和不确定性。

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