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MAGI: Enabling multi-device gestural applications
Conference proceeding

MAGI: Enabling multi-device gestural applications

Vu H Tran, Kenny T W Choo, Youngki Lee, Richard C Davis, Archan Misra and Tsu Wei Kenny Choo
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) Conference Proceedings, p.1
01/01/2016

Abstract

Conference Title: 2016 IEEE International Conference on Pervasive Computing and Communication Workshops (PerCom Workshops) Conference Start Date: 2016, March 14 Conference End Date: 2016, March 18 Conference Location: Sydney, Australia We describe our vision of a multiple mobile or wearable device environment and share our initial exploration of our vision in multi-wrist gesture recognition. We explore how multi-device input and output might look, giving four scenarios of everyday multi-device use that show the technical challenges that need to be addressed. We describe our system which allows for recognition to be distributed between multiple devices, fusing recognition streams on a resource-rich device (e.g., mobile phone). An Interactor layer recognises common gestures from the fusion engine, and provides abstract input streams (e.g., scrolling and zooming) to user interface components called Midgets. These take advantage of multi-device input and output, and are designed to simplify the process of implementing multi-device gestural applications. Our initial exploration of multi-device gestures led us to design a modified pipelined HMM with early elimination of candidate gestures that can recognize gestures in almost 0.2 milliseconds and scales well to large numbers of gestures. Finally, we discuss the open problems in multi-device interaction and our research directions.

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