A Hierarchical Model for Continuous Gesture Recognition Using Kinect

Søren Kejser Jensen, Christoffer Moesgaard, Christoffer Samuel Nielsen, Sine Lyhne Viesmose

Research output: Contribution to book/anthology/report/conference proceedingArticle in proceedingResearchpeer-review

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Abstract

Human gesture recognition is an area, which has been studied thoroughly in recent years,and close to100% recognition rates in restricted environments have been achieved, often either with single separated gestures in the input stream, or with computationally intensive systems. The results are unfortunately not as striking, when it comes to a continuous stream of gestures. In this paper we introduce a hierarchical system for gesture recognition for use in a gaming setting, with a continuous stream of data. Layer 1 is based on Nearest Neighbor Search and layer 2 uses Hidden Markov Models. The system uses features that are computed from Microsoft Kinect skeletons. We propose a new set of features, the relative angles of the limbs from Kinect's axes to use in NNS. The new features show a 10 percent point increase in precision when compared with features from previously published results. We also propose a way of attributing recognised gestures with a force attribute, for use in gaming. The recognition rate in layer 1 is 68.2%, with an even higher rate for simple gestures. Layer 2 reduces the noise and has aaverage recognition rate of 85.1%. When some simple constraints are added we reach a precision of 90.5% with a recall of 91.4%.
Original languageEnglish
Title of host publicationTwelfth Scandinavian Conference on Artificial Intelligence
EditorsManfred Jaeger, Thomas Dyhre Nielsen, Paolo Viappiani
Volume257
PublisherIOS Press
Publication date2013
Pages145-154
ISBN (Print)978-1-61499-329-2
ISBN (Electronic)978-1-61499-330-8
DOIs
Publication statusPublished - 2013
EventSCAI 2013 The 12th Scandinavian AI conference - Aalborg, Denmark
Duration: 20 Nov 201322 Nov 2013
Conference number: 12

Conference

ConferenceSCAI 2013 The 12th Scandinavian AI conference
Number12
Country/TerritoryDenmark
CityAalborg
Period20/11/201322/11/2013
SeriesFrontiers in Artificial Intelligence and Applications
Volume257
ISSN0922-6389

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