Avoiding 3D Obstacles in Mixed Reality: Does It Differ from Negotiating Real Obstacles?

被引:21
作者
Coolen, Bert [1 ]
Beek, Peter J. [1 ]
Geerse, Daphne J. [1 ]
Roerdink, Melvyn [1 ]
机构
[1] Vrije Univ Amsterdam, Fac Behav & Movement Sci, Dept Human Movement Sci, Amsterdam Movement Sci, Van der Boechorststr 7, NL-1081 BT Amsterdam, Netherlands
关键词
HoloLens; mixed-reality headset; mixed-reality video feedback; walking adaptability; obstacle avoidance; MICROSOFT KINECT; GAIT; LOCALIZATION; INFORMATION; AVOIDANCE; LIMB;
D O I
10.3390/s20041095
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Mixed-reality technologies are evolving rapidly, allowing for gradually more realistic interaction with digital content while moving freely in real-world environments. In this study, we examined the suitability of the Microsoft HoloLens mixed-reality headset for creating locomotor interactions in real-world environments enriched with 3D holographic obstacles. In Experiment 1, we compared the obstacle-avoidance maneuvers of 12 participants stepping over either real or holographic obstacles of different heights and depths. Participants' avoidance maneuvers were recorded with three spatially and temporally integrated Kinect v2 sensors. Similar to real obstacles, holographic obstacles elicited obstacle-avoidance maneuvers that scaled with obstacle dimensions. However, with holographic obstacles, some participants showed dissimilar trail or lead foot obstacle-avoidance maneuvers compared to real obstacles: they either consistently failed to raise their trail foot or crossed the obstacle with extreme lead-foot margins. In Experiment 2, we examined the efficacy of mixed-reality video feedback in altering such dissimilar avoidance maneuvers. Participants quickly adjusted their trail-foot crossing height and gradually lowered extreme lead-foot crossing heights in the course of mixed-reality video feedback trials, and these improvements were largely retained in subsequent trials without feedback. Participant-specific differences in real and holographic obstacle avoidance notwithstanding, the present results suggest that 3D holographic obstacles supplemented with mixed-reality video feedback may be used for studying and perhaps also training 3D obstacle avoidance.
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页数:24
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