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Median filtering detection of small-size image based on CNN

机译:基于CNN的小尺寸图像中值滤波检测

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Existing median filtering detection methods are no longer effective for small size or highly compressed images. To deal with this problem, a new median filtering detection method based on CNN is proposed in this paper. Specifically, a new network structure called MFNet is constructed. First, for preprocessing, the nearest neighbor interpolation method is utilized to up-sample the small-size images. The property of median filtering can be well preserved by the up-sampling operation and enlarged difference between the original image and its median filtered version can be obtained. Then, the well-known mlpconv structure is employed in the first and second layers of MFNet. With mlpconv layers, the nonlinear classification ability of the proposed method can be enhanced. After that, three conventional convolutional layers are utilized to finally derive the feature maps. The experimental results show that the proposed method achieves significant improved detection performance. Moreover, the proposed method performs well for highly compressed image of size as small as 16 x 16.
机译:现有的中值滤波检测方法不再适用于小尺寸或高度压缩的图像。针对这一问题,提出了一种基于CNN的中值滤波检测新方法。具体来说,将构建一个称为MFNet的新网络结构。首先,对于预处理,利用最近邻插值方法对小尺寸图像进行上采样。通过上采样操作可以很好地保留中值滤波的属性,并且可以获得原始图像与其中值滤波版本之间的更大差异。然后,在MFNet的第一层和第二层中采用众所周知的mlpconv结构。使用mlpconv层,可以增强该方法的非线性分类能力。之后,利用三个常规的卷积层最终得出特征图。实验结果表明,该方法具有显着的检测性能提高。此外,所提出的方法对于大小仅为16 x 16的高度压缩图像表现良好。

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