Burst Denoising with Kernel Prediction Networks

CoRR(2018)

引用 370|浏览12
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摘要
We present a technique for jointly denoising bursts of images taken from a handheld camera. In particular, we propose a convolutional neural network architecture for predicting spatially varying kernels that can both align and denoise frames, a synthetic data generation approach based on a realistic noise formation model, and an optimization guided by an annealed loss function to avoid undesirable local minima. Our model matches or outperforms the state-of-the-art across a wide range of noise levels on both real and synthetic data.
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关键词
burst denoising,kernel prediction networks,convolutional neural network architecture,synthetic data generation,annealed loss function,optimization,noise formation model
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