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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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Patent

Boosting to determine indicative features from a training set

TL;DR: In this paper, a document frequency process and a boosting process are used to determine indicative features for document frequency and then a second set of features may be determined using a boosting method.

Linearly-solvable Markov decision problems

TL;DR: A class of MPDs which greatly simplify Reinforcement Learning, which have discrete state spaces and continuous control spaces and enable efficient approximations to traditional MDPs.

Implicit Online Learning with Kernels

TL;DR: A new, implicit update technique that can be applied to a wide variety of convex loss functions and a bounded memory version, SILK, that maintains a compact representation of the predictor without compromising solution quality, even in non-stationary environments are introduced.