
Semi-supervised learning is a learning paradigm concerned with the study of how computers and natural systems such as humans learn in the presence of both labeled and unlabeled data. Traditionally, learning has been studied either in the unsupervised paradigm (e.g., clustering, outlier detection) where all the data is unlabeled, or in the supervised paradigm (e.g., classification, regression) wher...
Publisher
Springer Nature
Format
512 pages
ISBN
9783031015489
Language
English
Features
Full color, 512 pages
Genres
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