Data-Efficient Image Recognition with Contrastive Predictive Coding
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Abstract
Human observers can learn to recognize new categories of images from a handful of examples, yet doing so with artificial ones remains an open challenge. We hypothesize that data-efficient recognition is enabled by representations which make the variability in natural signals more predictable. We therefore revisit and improve Contrastive Predictive Coding, an unsupervised objective for learning such representations. This new implementation produces features which support state-of-the-art linear classification accuracy on the ImageNet dataset. When used as input for non-linear classification with deep neural networks, this representation allows us to use 2-5x less labels than classifiers trained directly on…
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Keywords
- Pascal (unit)
- Artificial intelligence
- Computer science
- Predictive coding
- Pattern recognition (psychology)
- Neural coding
- Transfer of learning
- Machine learning
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