Publication | Open Access
Modeling surface appearance from a single photograph using self-augmented convolutional neural networks
174
Citations
36
References
2017
Year
Realistic RenderingConvolutional Neural NetworkEngineeringMachine LearningSurface AppearanceReflectance ParametersSingle PhotographSurface Reflectance FunctionsImage AnalysisDifferentiable RenderingPattern RecognitionComputational ImagingComputational PhotographyReflectance ModelingGeometric ModelingSynthetic Image GenerationMachine VisionHuman Image SynthesisMedical Image ComputingDeep LearningComputer VisionScene UnderstandingScene Modeling
We present a convolutional neural network (CNN) based solution for modeling physically plausible spatially varying surface reflectance functions (SVBRDF) from a single photograph of a planar material sample under unknown natural illumination. Gathering a sufficiently large set of labeled training pairs consisting of photographs of SVBRDF samples and corresponding reflectance parameters, is a difficult and arduous process. To reduce the amount of required labeled training data, we propose to leverage the appearance information embedded in unlabeled images of spatially varying materials to self-augment the training process. Starting from an initial approximative network obtained from a small set of labeled training pairs, we estimate provisional model parameters for each unlabeled training exemplar. Given this provisional reflectance estimate, we then synthesize a novel temporary labeled training pair by rendering the exact corresponding image under a new lighting condition. After refining the network using these additional training samples, we re-estimate the provisional model parameters for the unlabeled data and repeat the self-augmentation process until convergence. We demonstrate the efficacy of the proposed network structure on spatially varying wood, metals, and plastics, as well as thoroughly validate the effectiveness of the self-augmentation training process.
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