“Superimposed Skin Pressure Sensor” – ACM SIGGRAPH HISTORY ARCHIVES

“Superimposed Skin Pressure Sensor”

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    Superimposed Skin Pressure Sensor

Description:


    Unconstrained sensing of human-environment interaction is one of the most important technology which is expected to provide ubiquitous interfaces and high fidelity motion analysis systems as well as stress-free bioinstrumentation. Unconstrained tactile sensing is a challenging topic because tactile sensing devices are inherently required to mediate between the human and an object [Dahiya et al. 2010]. Therefore, it is still difficult to obtain human behavioral information without disturbing touch conditions.

References:


    [1]
    Barrett, G., and Omote, R. 2010. Projected-capacitive touch technology. Information Display 26, 3, 16–21.

    [2]
    Dahiya, R., Metta, G., Valle, M., and Sandini, G. 2010. Tactile sensing-from humans to humanoids. IEEE Transactions on Robotics 26, 1, 1–20.

    [3]
    Dietz, P., and Leigh, D. 2001. Diamondtouch: a multi-user touch technology. In Proceedings of the 14th annual ACM symposium on User interface software and technology, ACM, 219–226.

    [4]
    Harrison, C., Tan, D., and Morris, D. 2010. Skinput: appropriating the body as an input surface. In Proceedings of the 28th international conference on Human factors in computing systems, ACM, 453–462.

    [5]
    Haugland, M., Hoffer, J., and Sinkjaer, T. 1994. Skin contact force information in sensory nerve signals recorded by implanted cuff electrodes. IEEE Transactions on Rehabilitation Engineering 2, 1, 18–28.

    [6]
    Jeon, S., and Choi, S. 2009. Haptic augmented reality: Taxonomy and an example of stiffness modulation. Presence: Teleoperators and Virtual Environments 18, 5, 387–408.

    [7]
    Mascaro, S., and Asada, H. 2001. Photoplethysmograph fingernail sensors for measuring finger forces without haptic obstruction. IEEE Transactions on Robotics and Automation 17, 5, 698–708.

    [8]
    Nakatsuma, K., Shinoda, H., Makino, Y., Sato, K., and Maeno, T. 2011. Touch interface on back of the hand. In ACM SIGGRAPH 2011 Emerging Technologies, ACM, 19.

    [9]
    Sato, M., Poupyrev, I., and Harrison, C. 2012. Touché: enhancing touch interaction on humans, screens, liquids, and everyday objects. In Proceedings of the 2012 ACM annual conference on Human Factors in Computing Systems, ACM, 483–492.

    [10]
    Takemura, K., Ito, A., Takamatsu, J., and Ogasawara, T. 2011. Active bone-conducted sound sensing for wearable interfaces. In Proceedings of the 24th annual ACM symposium adjunct on User interface software and technology, ACM, 53–54.

    [11]
    Yoshimoto, S., Kuroda, Y., Imura, M., and Oshiro, O. 2011. Development of a spatially transparent electrotactile display and its performance in grip force control. In Proceedings of 33rd Annual International Conference of the IEEE Engineering in Medicine and Biology Society, IEEE, 3463–3466.


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