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CVPR
2011
IEEE

Learning to Share Visual Appearance for Multiclass Object Detection

13 years 17 days ago
Learning to Share Visual Appearance for Multiclass Object Detection
We present a hierarchical classification model that allows rare objects to borrow statistical strength from related objects that have many training examples. Unlike many of the existing object detection and recognition systems that treat different classes as unrelated entities, our model learns both a hierarchy for sharing visual appearance across 200 object categories and hierarchical parameters. Our experimental results on the challenging object localization and detection task demonstrate that the proposed model substantially improves the accuracy of the standard single object detectors that ignore hierarchical structure altogether.
Ruslan Salakhutdinov, Antonio Torralba, Josh Tenen
Added 05 Apr 2011
Updated 29 Apr 2011
Type Journal
Year 2011
Where CVPR
Authors Ruslan Salakhutdinov, Antonio Torralba, Josh Tenenbaum
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