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Comparison of Two Methods For Texture Image Classification

机译:两种方法对纹理图像分类的比较

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As the development of computer vision, texture becomes a key component for human visual perception and plays an important role in image-related applications. This paper compares two methods for texture image classification. The first scheme has an advantage that all the texture features are derived from wavelet transform, and it can reduce the time complexity of texture features extraction. The other method combines perceptual texture features and Gabor wavelet features for texture image classification. We test our proposed method using the Brodatz texture database, and the experimental results are compared.
机译:作为计算机视觉的发展,纹理成为人类视觉感知的关键组件,在图像相关应用中发挥着重要作用。本文比较了两种纹理图像分类方法。第一方案具有优点,即所有纹理特征都来自小波变换,并且可以降低纹理特征提取的时间复杂度。另一个方法结合了感知纹理特征和Gabor小波特征,用于纹理图像分类。我们使用Brodatz纹理数据库测试我们提出的方法,并比较实验结果。

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