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Fast and Accurate Image Super-Resolution with Deep Laplacian Pyramid Networks

机译:利用深拉普拉斯金字塔网络实现快速,准确的图像超分辨率

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Convolutional neural networks have recently demonstrated high-quality reconstruction for single image super-resolution. However, existing methods often require a large number of network parameters and entail heavy computational loads at runtime for generating high-accuracy super-resolution results. In this paper, we propose the deep Laplacian Pyramid Super-Resolution Network for fast and accurate image super-resolution. The proposed network progressively reconstructs the sub-band residuals of high-resolution images at multiple pyramid levels. In contrast to existing methods that involve the bicubic interpolation for pre-processing (which results in large feature maps), the proposed method directly extracts features from the low-resolution input space and thereby entails low computational loads. We train the proposed network with deep supervision using the robust Charbonnier loss functions and achieve high-quality image reconstruction. Furthermore, we utilize the recursive layers to share parameters across as well as within pyramid levels, and thus drastically reduce the number of parameters. Extensive quantitative and qualitative evaluations on benchmark datasets show that the proposed algorithm performs favorably against the state-of-the-art methods in terms of run-time and image quality.
机译:卷积神经网络最近证明了单图像超分辨率的高质量重建。但是,现有方法通常需要大量的网络参数,并且在运行时需要大量的计算负载才能生成高精度的超分辨率结果。在本文中,我们提出了深拉普拉斯金字塔超分辨率网络,以实现快速,准确的图像超分辨率。所提出的网络逐步地重建了多个金字塔等级的高分辨率图像的子带残差。与涉及双三次插值进行预处理的现有方法(这会导致较大的特征图)相比,所提出的方法直接从低分辨率输入空间中提取特征,从而带来较低的计算量。我们使用鲁棒的Charbonnier损失函数在深度监督下训练提出的网络,并实现高质量的图像重建。此外,我们利用递归层在金字塔级别以及金字塔级别内共享参数,从而大大减少了参数数量。对基准数据集的大量定量和定性评估表明,在运行时和图像质量方面,该算法的性能优于最新方法。

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