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A bayesian framework for unsupervised one-shot learning of object categories
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Li Fei fei, Rob Fergus, Pietro Perona
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A bayesian framework for unsupervised one-shot learning of object categories
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Slides Credit: Gary
Bradski, Sebastian Thrun, Rob Fergus, Pietro Perona, Andrew Zisserman, Li Fei-Fei, Antonio Torralba
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This guy is
wearing a haircut called a “Mullet”
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Find the Mullets…
One-Shot Learning
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~10,000 to 30,000
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Posterior (Same family
as Prior) Likelihood Prior (conjugate to the likelihood)
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Performance Results –
Face Model 1 training image 5 training images
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Performance Results –
Motorbikes 1 training image 5 training images
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Prior Hyper-Parameters
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Results Comparison 8
–15 % < 1 min 1 ~ 5 Bayesian One-Shot 5.6 -10 % Hours 200~400 Burl, et al. Weber, et al. Fergus, et al . Error rate Learning speed # training images Algorithm
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And another Comparison..
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