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A robust algorithm for the fractal dimension of images and its applications to the classification of natural images and ultrasonic liver images

机译:图像分形维数的鲁棒算法及其在自然图像和超声肝图像分类中的应用

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摘要

The calculation of the fractal dimension is crucial in fractal geometry. The popular approach is based on box-counting. However, this scheme is easily disturbed by noise and produces many non-negligible plateaus that cause an underestimation. This paper proposes a more robust and efficient method for computing the fractal dimension. To validate its performance, a feature vector based on fractal dimension and M-band wavelet transform was applied to the classification of natural textured images and ultrasonic liver images based on four different classifiers. The experimental results revealed the proposed computation method is trustworthy.
机译:分形维数的计算对于分形几何至关重要。流行的方法是基于盒计数。但是,这种方案很容易受到噪声的干扰,并产生许多不可忽略的平稳期,从而导致低估。本文提出了一种更健壮和有效的方法来计算分形维数。为了验证其性能,将基于分形维数和M带小波变换的特征向量应用于基于四个不同分类器的自然纹理图像和超声肝图像分类。实验结果表明,所提出的计算方法是值得信赖的。

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