Construction of Experimental System SPIDAR-HS for Designing VR Guidelines Based on Physiological Behavior Measurement

Author:

Tsukikawa Ryuki,Tomita Ryoto,Nozawa Kanata,Ohashi Issei,Horiuchi Hiroki,Kotani Kentaro,Kobayashi Daiji,Yamaguchi Takehiko,Sato Makoto,Yamamoto Sakae,Harada Tetsuya

Publisher

Springer International Publishing

Reference12 articles.

1. VR PARK TOKYO. http://www.adores.jp/vrpark/ . Accessed 16 Nov 2017

2. FUJITSU. http://www.fujitsu.com/jp/solutions/business-technology/vr-solution/case-study/medical/ . Accessed 16 Nov 2017

3. Yamagishi, S., Murayama, J., Hirata, Y., Sato, M., Harada, T.: An experiment-based learning support system for thermodynamics which presents haptic and thermal senses. In: Joint Virtual Reality Conference of ICAT – EGVE – EuroVR (2012)

4. STARVR. https://www.starvr.com/#about . Accessed 06 Nov 2017

5. Nagai, K., Tanoue, S., Akahane, K., Sato, M.: Wearable 6-DoF wrist haptic device “SPIDAR-W’. In: SIGGRAPH Asia 2015 Haptic Media and Contents Design, Article no. 19 (2015)

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1. Improvement of SPIDAR-HS and Construction of Visual Rod Tracking Task Environment;Lecture Notes in Computer Science;2020

2. Virtual Environment Assessment for Tasks Based on Sense of Embodiment;HCI International 2020 – Late Breaking Papers: Virtual and Augmented Reality;2020

3. Implementation of Two-Point Control System in SPIDAR-HS for the Rod Tracking Task in Virtual Reality Environment;Human Interface and the Management of Information. Information in Intelligent Systems;2019

4. Effect of Artificial Haptic Characteristics on Virtual Reality Performance;Human Interface and the Management of Information. Information in Intelligent Systems;2019

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