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Bayesian nonparametric learning of contexts and activities from pervasive signals

thesis
posted on 2015-09-01, 00:00 authored by Thuong Cong Nguyen
This thesis develops machine learning techniques to discover activities and contexts from pervasive sensor data. These techniques are especially suitable for streaming sensor data as they can infer the context space automatically. They are applicable in many real world applications such as activity monitoring or organization management.

History

Material type

thesis

Resource type

thesis

Language

eng

Copyright notice

The author

Editor/Contributor(s)

S Venkatesh, D Phung

Pagination

xiii,193 p.

Degree type

Research doctorate

Degree name

Ph.D.

Thesis faculty

Faculty of Science Engineering and Built Environment

Thesis school

School of Information Technology

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