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John Platt

Researcher at Microsoft

Publications -  369
Citations -  66980

John Platt is an academic researcher from Microsoft. The author has contributed to research in topics: Support vector machine & Artificial neural network. The author has an hindex of 83, co-authored 369 publications receiving 60242 citations. Previous affiliations of John Platt include Google & California Institute of Technology.

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Learning Nonparametric Models for Probabilistic Imitation

TL;DR: A new probabilistic method for inferring imitative actions that takes into account both the observations of the teacher as well as the imitator's dynamics, which generalizes to systems with very different dynamics.
Patent

Metadata generation for rich media

TL;DR: In this paper, text is extracted from a document or workflow that is relevant to the rich media content and the text is filtered into keyphrases and added to a metadata file associated with the content.
Patent

Updating hidden conditional random field model parameters after processing individual training samples

TL;DR: In this article, a method and apparatus for training parameters in a hidden conditional random field model for use in speech recognition and phonetic classification is provided. But this method is limited to a single segment of speech, and the parameters are updated after processing of individual training samples.
Proceedings ArticleDOI

Online Bayes point machines

TL;DR: A new and simple algorithm for learning large margin classifiers that works in a truly online manner is presented that produces a low prediction error on the training sequence and tracks the presence of concept drift.

Convex Repeated Games and Fenchel Duality

TL;DR: It is shown that various online learning and boosting algorithms can be all derived as special cases of the algorithmic framework described, which stems from a connection that is built between the notions of regret in game theory and weak duality in convex optimization.