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Contrast preserving image decolorization combining global features band local semantic features

机译:结合全局特征带局部语义特征的对比度保持图像去色

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Image decolorization known as the process to transform a color image to a grayscale one is widely used in single-channel image processing, black and white printing, etc. It is a dimension reduction process which inevitably suffers from information loss. The general goal of image decolorization is to preserve the color contrast of the color image. Traditional image decolorization methods are generally divided into local methods and global methods. However, local methods are not accurate enough to process local pixel blocks which may tend to cause local artifacts. While global methods cannot deal well in local color blocks, which are usually time-consuming, too. Therefore, this paper presents a way to combine the local semantic features and the global features. The traditional image decolorization method uses the low-level features of an image. Instead, in this paper, the convolution neural network is used to learn the global features and local semantic features of an image which can better preserve the contrast in both local color blocks and adjacent pixels of the color image. Finally, the global features and the local semantic features are combined to decolorize the image. Experiments indicate that our method outperforms the state of the arts in terms of contrast preservation.
机译:被称为将彩色图像转换为灰度图像的过程的图像脱色被广泛用于单通道图像处理,黑白打印等中。这是尺寸减小过程,其不可避免地遭受信息损失。图像脱色的一般目标是保持彩色图像的色彩对比度。传统的图像脱色方法通常分为局部方法和全局方法。然而,局部方法不够精确,不足以处理可能趋于引起局部伪像的局部像素块。虽然全局方法不能很好地处理局部色块,但通常也很耗时。因此,本文提出了一种结合局部语义特征和全局特征的方法。传统的图像脱色方法使用图像的低级特征。取而代之的是,在本文中,使用卷积神经网络来学习图像的全局特征和局部语义特征,从而可以更好地保留彩色图像的局部颜色块和相邻像素中的对比度。最后,将全局特征和局部语义特征组合以使图像脱色。实验表明,我们的方法在对比度保持方面优于现有技术。

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