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April 2, 2014250 citations

Bringing gesture recognition to all devices

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BKBryce KelloggVTVamsi TallaSGShyamnath Gollakota

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Abstract

Existing gesture-recognition systems consume signifi-cant power and computational resources that limit how they may be used in low-end devices. We introduce AllSee, the first gesture-recognition system that can op-erate on a range of computing devices including those with no batteries. AllSee consumes three to four or-ders of magnitude lower power than state-of-the-art sys-tems and can enable always-on gesture recognition for smartphones and tablets. It extracts gesture information from existing wireless signals (e.g., TV transmissions), but does not incur the power and computational over-heads of prior wireless approaches. We build AllSee prototypes that can recognize gestures on RFID tags and power-harvesting sensors. We also integrate our hard-ware with an off-the-shelf Nexus S phone and demon-strate gesture recognition in through-the-pocket scenar-ios. Our results show that AllSee achieves classification accuracies as high as 97 % over a set of eight gestures. 1

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Kellogg et al. (2014) studied this question.

synapsesocial.com/papers/6a17a8320a2f3f8e1412b3e9https://doi.org/10.5555/2616448.2616477
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