CVFeb 24, 2018

Single Image Super-Resolution via Cascaded Multi-Scale Cross Network

arXiv:1802.08808v154 citations
Originality Incremental advance
AI Analysis

This work addresses image quality enhancement for applications like medical imaging or surveillance, but it is incremental as it builds on existing deep learning approaches.

The paper tackled the problem of weakened information flow and difficulty in integrating multi-scale contextual information in deep convolutional neural networks for single image super-resolution, proposing a cascaded multi-scale cross network that achieved superior performance over state-of-the-art methods on benchmark datasets.

The deep convolutional neural networks have achieved significant improvements in accuracy and speed for single image super-resolution. However, as the depth of network grows, the information flow is weakened and the training becomes harder and harder. On the other hand, most of the models adopt a single-stream structure with which integrating complementary contextual information under different receptive fields is difficult. To improve information flow and to capture sufficient knowledge for reconstructing the high-frequency details, we propose a cascaded multi-scale cross network (CMSC) in which a sequence of subnetworks is cascaded to infer high resolution features in a coarse-to-fine manner. In each cascaded subnetwork, we stack multiple multi-scale cross (MSC) modules to fuse complementary multi-scale information in an efficient way as well as to improve information flow across the layers. Meanwhile, by introducing residual-features learning in each stage, the relative information between high-resolution and low-resolution features is fully utilized to further boost reconstruction performance. We train the proposed network with cascaded-supervision and then assemble the intermediate predictions of the cascade to achieve high quality image reconstruction. Extensive quantitative and qualitative evaluations on benchmark datasets illustrate the superiority of our proposed method over state-of-the-art super-resolution methods.

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