One-shot learning (computer vision)
Object categorization problem / From Wikipedia, the free encyclopedia
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One-shot learning is an object categorization problem, found mostly in computer vision. Whereas most machine learning-based object categorization algorithms require training on hundreds or thousands of examples, one-shot learning aims to classify objects from one, or only a few, examples. The term few-shot learning is also used for these problems, especially when more than one example is needed.
![]() | This article is written like a research paper or scientific journal. (April 2016) |