Zero-Shot Anticipation for Instructional Activities

December 06, 2018 Β· Declared Dead Β· πŸ› IEEE International Conference on Computer Vision

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Authors Fadime Sener, Angela Yao arXiv ID 1812.02501 Category cs.CV: Computer Vision Cross-listed cs.LG Citations 72 Venue IEEE International Conference on Computer Vision Last Checked 5 months ago
Abstract
How can we teach a robot to predict what will happen next for an activity it has never seen before? We address this problem of zero-shot anticipation by presenting a hierarchical model that generalizes instructional knowledge from large-scale text-corpora and transfers the knowledge to the visual domain. Given a portion of an instructional video, our model predicts coherent and plausible actions multiple steps into the future, all in rich natural language. To demonstrate the anticipation capabilities of our model, we introduce the Tasty Videos dataset, a collection of 2511 recipes for zero-shot learning, recognition and anticipation.
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