用于分类的服装纹理图案特征提取

G. Chaitra, Nayan Khare
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引用次数: 0

摘要

利用尺度不变特征变换、旋转不变Radon变换和纹理图像统计特征提取等高效算法提取不同特征用于模式识别。本文使用Weka中的RBF内核支持向量机进行分类。本文给出了对条纹、格纹、少纹和不规则纹等服装纹理图案进行分类的方法。本文还提出了一种可以有效应用于实时自然纹理图案和颜色识别系统的方法。本文给出了实验结果,并提出了在未来范围内提高实验精度的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Feature extraction of clothing texture patterns for classification
Different features are extracted for Pattern Recognition using an efficient algorithms like Scale Invariant Feature Transform, Rotation invariant Radon Transform and extracting statistical features of a texture image. Support vector machine with RBF kernel in Weka is used in this paper for classification. This paper shows method to classify the clothing texture patterns like strips, plaid, pattern less and irregular pattern. This paper also proposes a method which can be efficient method to apply for the real time natural texture patterns and colors recognition systems. This paper gives the experiments results and the proposed method to enhance the experiments accuracy in future scope.
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