Publication | Closed Access
Neural scene representation and rendering
532
Citations
37
References
2018
Year
EngineeringMachine LearningScene Representation-the ProcessRepresentation LearningImage AnalysisDifferentiable RenderingData ScienceVisual Question AnsweringCognitive ScienceMachine VisionVision Language ModelGenerative ModelsDifferent ViewpointsNeural Scene RepresentationDeep LearningComputer VisionScene InterpretationScene UnderstandingUnobserved ViewpointsScene Modeling
Scene representation-the process of converting visual sensory data into concise descriptions-is a requirement for intelligent behavior. Recent work has shown that neural networks excel at this task when provided with large, labeled datasets. However, removing the reliance on human labeling remains an important open problem. To this end, we introduce the Generative Query Network (GQN), a framework within which machines learn to represent scenes using only their own sensors. The GQN takes as input images of a scene taken from different viewpoints, constructs an internal representation, and uses this representation to predict the appearance of that scene from previously unobserved viewpoints. The GQN demonstrates representation learning without human labels or domain knowledge, paving the way toward machines that autonomously learn to understand the world around them.
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