Image Super-Resolution Using Deep Convolutional Networks
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This paper introduces a deep convolutional neural network (CNN) approach for single image super-resolution (SR). Unlike traditional methods that rely on hand-engineered features, this method directly learns a mapping from low-resolution to high-resolution images using a CNN. The network learns end-to-end, minimizing the need for explicit feature extraction and optimization, leading to improved performance and faster processing times for image super-resolution tasks.