seminars:stat:190509
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| + | Unlike traditional single-valued classifier which gives one class label as the prediction for the true class of an observation, | ||
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| + | In this dissertation, | ||
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| + | We further extend the confidence set learning framework to allow for anomaly detection. The resulting classifier is aware of possible anomalous observations and aims to detect them when possible. We give an introduction to the framework and study its connection with other existing frameworks for anomaly detection and confidence set learning. | ||
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