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عنوان مقاله
عنوان مقاله

Accelerating the super-resolution convolutional neural network

عنوان فارسی مقاله سرعت بخشیدن به شبکه عصبی محرک فوق العاده وضوح

مشخصات مقاله انگلیسی
نشریه: Springer Springer
سال انتشار

2016

عنوان مجله

European conference on computer vision

تعداد صفحات مقاله انگلیسی 17
رفرنس دارد
تعداد رفرنس 29

چکیده مقاله
چکیده

As a successful deep model applied in image super-resolution (SR), the Super-Resolution Convolutional Neural Network (SRCNN) [1,2] has demonstrated superior performance to the previous handcrafted models either in speed and restoration quality. However, the high computational cost still hinders it from practical usage that demands real-time performance (24 fps). In this paper, we aim at accelerating the current SRCNN, and propose a compact hourglass-shape CNN structure for faster and better SR. We re-design the SRCNN structure mainly in three aspects. First, we introduce a deconvolution layer at the end of the network, then the mapping is learned directly from the original low-resolution image (without interpolation) to the high-resolution one. Second, we reformulate the mapping layer by shrinking the input feature dimension before mapping and expanding back afterwards. Third, we adopt smaller filter sizes but more mapping layers. The proposed model achieves a speed up of more than 40 times with even superior restoration quality. Further, we present the parameter settings that can achieve real-time performance on a generic CPU while still maintaining good performance. A corresponding transfer strategy is also proposed for fast training and testing across different upscaling factors.

کلمات کلیدی
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ارسال شده در تاریخ 1398/12/22


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