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Revolution: A Spatial-specific Convolution for Image Super-Resolution

机译:革命:图像超分辨率的空间特定卷积

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Recently, deep convolution neural networks achieve remarked performance in single image super-resolution(SISR) due to their strong feature representation ability. However, most existing SR methods mainly use standard convolution in each layer, neglecting to explore the various feature of spatial domain. Standard convolution focuses on spatial invariance by using the same convolution kernel in space. It deprives kernels of the ability to adapt the different spatial positions, hence hindering the diverse of feature. Later, a new convolution operator, Involution, was proposed to implement spatial-specific convolution. But it calculated the convolution kernel parameters of surrounding pixels only by utilizing the characteristics of the central pixel, which was unreasonable and limited its performance. To address these issues, in this paper, we propose a novel convolution named Revolution, which not only incorporates spatial-specific to capture different spatial information, but also considers the relevance of the pixels to determine convolution kernel parameters to further learn more realistic feature representations. On the other hand, the Revolution we proposed makes the number of parameters smaller. Experiments demonstrate that our method obtains obvious improvement in terms of indicators and visual effects.
机译:最近,由于其强大的特征表示能力,深度卷积神经网络在单图像超分辨率(SISR)中实现了评论性能。然而,大多数现有的SR方法主要在每层中使用标准卷积,忽略探索空间域的各种特征。标准卷积通过在空间中使用相同的卷积内核来侧重于空间不变性。它剥夺了适应不同空间位置的能力的内核,因此阻碍了不同的特征。后来,提出了一个新的卷积运营商,参与,旨在实施空间特定的卷积。但它仅通过利用中心像素的特性计算周围像素的卷积核参数,这是不合理的,并且限制其性能。为了解决这些问题,在本文中,我们提出了一种名为Revolution的新型卷积,这不仅纳入了空间特异性以捕获不同的空间信息,而且还考虑了像素的相关性来确定卷积内核参数,以进一步了解更多现实特征表示。另一方面,我们提出的革命使得参数的数量变小。实验表明,我们的方法在指标和视觉效果方面取得了明显的改进。

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