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Pilot experiment of a 2D trajectory representation of quaternion-based 3D gesture tracking

Published: 18 June 2019 Publication History

Abstract

This paper presents ongoing research work on developing a protocol framework for human motion recognition using complex and continuous 3D motion data into more intuitive 2D trajectory representation based-on the quaternion visualization. Quaternions are very compact and free from gimbal lock for representing orientations and rotations of objects in 3D space. In this study, the focus is only on the arm orientation and not the position. In our pilot experimental evaluation, we examine our approach to visually recognize several biceps curl using quaternions data collected using wireless inertial sensors attached to the human arm. The results of the analysis indicate that the proposed framework makes it possible to represent 3D motion data in the form of a 2D trajectory for continuous motion patterns.

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Cited By

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  • (2020)Motion-Sphere: Visual Representation of the Subtle Motion of Human JointsApplied Sciences10.3390/app1018646210:18(6462)Online publication date: 16-Sep-2020

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cover image ACM Conferences
EICS '19: Proceedings of the ACM SIGCHI Symposium on Engineering Interactive Computing Systems
June 2019
141 pages
ISBN:9781450367455
DOI:10.1145/3319499
Permission to make digital or hard copies of part or all of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for third-party components of this work must be honored. For all other uses, contact the Owner/Author.

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Publication History

Published: 18 June 2019

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Author Tags

  1. IMU
  2. UV mapping
  3. gesture
  4. motion tracking
  5. quaternion visualization
  6. quaternions
  7. trajectory
  8. unit sphere
  9. wireless inertial sensors

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  • Poster

Funding Sources

  • The Ministry of Science, ICT of Korea, under the Software Star Lab. program supervised by the Institute for Information and communications Technology Promotion.
  • the National Research Foundation (NRF) funded by the Korea government (MEST)

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EICS '19
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Overall Acceptance Rate 73 of 299 submissions, 24%

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  • (2020)Motion-Sphere: Visual Representation of the Subtle Motion of Human JointsApplied Sciences10.3390/app1018646210:18(6462)Online publication date: 16-Sep-2020

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