• DocumentCode
    1478453
  • Title

    Design of Dynamic Vibrotactile Textures

  • Author

    Ahmaniemi, Teemu ; Marila, Juha ; Lantz, Vuokko

  • Author_Institution
    Nokia Res. Center, Helsinki, Finland
  • Volume
    3
  • Issue
    4
  • fYear
    2010
  • Firstpage
    245
  • Lastpage
    256
  • Abstract
    This paper describes a method for creating virtual textures without force feedback by using a simple motion sensor and a single vibrotactile actuator. It is based on wavetable synthesis driven by the user´s hand movements. The output of the synthesis is rendered with the tactile actuator attached in a hand-held box together with the motion sensor. The method provides a solution for creating tangible properties for virtual objects which can be explored by pointing at them with the sensor-actuator device. The study introduces 12 virtual textures which were based on three different envelope ridge lengths, two spatial densities, and were either regularly or irregularly organized. To evaluate the role of each design parameter in the perception of the texture, a series of experiments was conducted. The perceived similarity was assessed in a pairwise comparison test and the outcome was analyzed by using multidimensional scaling. The analysis revealed that envelope ridge length and spatial density were distinguishable design parameters while regularity was not. The textures were also rated according to five attribute scales previously determined in the pilot experiment. The results show that ridge length and spatial density influence perceived roughness and flatness similarly as with real textures.
  • Keywords
    haptic interfaces; surface texture; touch (physiological); virtual reality; dynamic vibrotactile texture design; hand-held box; motion sensor; multidimensional scaling; pairwise comparison test; sensor-actuator device; spatial density; tactile actuator; tangible properties; user hand movements; vibrotactile actuator; virtual objects; virtual textures; wavetable synthesis; Actuators; Fingers; Force feedback; Microscopy; Multidimensional systems; Rough surfaces; Skin; Surface roughness; Surface texture; Virtual reality; Virtual textures; haptic I/O; multidimensional scaling.; tactile interaction; tactile perception; virtual reality;
  • fLanguage
    English
  • Journal_Title
    Haptics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1939-1412
  • Type

    jour

  • DOI
    10.1109/TOH.2010.22
  • Filename
    5453370