Publication | Closed Access
Burst Denoising with Kernel Prediction Networks
424
Citations
25
References
2018
Year
Unknown Venue
EngineeringMachine LearningNoise LevelsDeblurringImage AnalysisData SciencePattern RecognitionVideo RestorationMachine VisionHandheld CameraDeep LearningSignal ProcessingComputer VisionKernel Prediction NetworksReproducing Kernel MethodVideo DenoisingVideo HallucinationImage DenoisingAnnealed Loss FunctionKernel Method
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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