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Action recognition technology has many real-world applications in
human-computer interaction, surveillance, video retrieval,
retirement home monitoring, and robotics. The commoditization of
depth sensors has also opened up further applications that were not
feasible before. This text focuses on feature representation and
machine learning algorithms for action recognition from depth
sensors. After presenting a comprehensive overview of the state of
the art, the authors then provide in-depth descriptions of their
recently developed feature representations and machine learning
techniques, including lower-level depth and skeleton features,
higher-level representations to model the temporal structure and
human-object interactions, and feature selection techniques for
occlusion handling. This work enables the reader to quickly
familiarize themselves with the latest research, and to gain a
deeper understanding of recently developed techniques. It will be
of great use for both researchers and practitioners.
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