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HeadText: Exploring Hands-free Text Entry using Head Gestures by Motion Sensing on a Smart Earpiece (2205.09978v2)

Published 20 May 2022 in cs.HC and cs.LG

Abstract: We present HeadText, a hands-free technique on a smart earpiece for text entry by motion sensing. Users input text utilizing only 7 head gestures for key selection, word selection, word commitment and word cancelling tasks. Head gesture recognition is supported by motion sensing on a smart earpiece to capture head moving signals and machine learning algorithms (K-Nearest-Neighbor (KNN) with a Dynamic Time Warping (DTW) distance measurement). A 10-participant user study proved that HeadText could recognize 7 head gestures at an accuracy of 94.29%. After that, the second user study presented that HeadText could achieve a maximum accuracy of 10.65 WPM and an average accuracy of 9.84 WPM for text entry. Finally, we demonstrate potential applications of HeadText in hands-free scenarios for (a). text entry of people with motor impairments, (b). private text entry, and (c). socially acceptable text entry.

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Authors (7)
  1. Songlin Xu (9 papers)
  2. Guanjie Wang (7 papers)
  3. Ziyuan Fang (2 papers)
  4. Guangwei Zhang (3 papers)
  5. Guangzhu Shang (1 paper)
  6. Rongde Lu (2 papers)
  7. Liqun He (8 papers)
Citations (1)

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