• DocumentCode
    19786
  • Title

    Velocity Estimation Algorithms for Audio-Haptic Simulations Involving Stick-Slip

  • Author

    Sinclair, Stephen ; Wanderley, Marcelo M. ; Hayward, Vincent

  • Author_Institution
    Inst. des Syst. Intell. et de Robot., UPMC Univ. Paris 06, Paris, France
  • Volume
    7
  • Issue
    4
  • fYear
    2014
  • fDate
    Oct.-Dec. 1 2014
  • Firstpage
    533
  • Lastpage
    544
  • Abstract
    With real-time models of friction that take velocity as input, accuracy depends in great part on adequately estimating velocity from position measurements. This process can be sensitive to noise, especially at high sampling rates. In audio-haptic acoustic simulations, often characterized by friction-induced, relaxation-type stick-slip oscillations, this gives a gritty, dry haptic feel and a raspy, unnatural sound. Numerous techniques have been proposed, but each depend on tuning parameters so that they may offer a good trade-off between delay and noise rejection. In an effort to compare fairly, each of thirteen methods considered in the present study was automatically optimized and evaluated; finally a subset of these were compared subjectively. Results suggest that no one method is ideal for all gain levels, though the best general performance was found by using a sliding-mode differentiator as input to a Kalman integrator. An additional conclusion is that estimators do not approach the quality available in physical velocity transduction, and therefore such sensors should be considered in haptic device design.
  • Keywords
    audio signal processing; estimation theory; haptic interfaces; sampling methods; stick-slip; Kalman integrator; audio-haptic acoustic simulation; audio-haptic simulation; delay rejection; friction-induced oscillation; haptic device design; noise rejection; physical velocity transduction; position measurement; real-time models of friction; relaxation-type stick-slip oscillation; sampling rate; sliding-mode differentiator; tuning parameter; velocity estimation algorithm; Accelerometers; Haptic interfaces; Noise measurement; Real-time systems; Velocity; Haptics; friction; velocity estimation;
  • fLanguage
    English
  • Journal_Title
    Haptics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1939-1412
  • Type

    jour

  • DOI
    10.1109/TOH.2014.2346505
  • Filename
    6874521