TY - GEN
T1 - Spativibe
T2 - 20th International Conference on Universal Access in Human-Computer Interaction, UAHCI 2026, held as part of the 28th International Conference, HCII 2026
AU - Tang, Yujing
AU - Gong, Chao
AU - Zhu, Jiayi
AU - Wang, Ziyi
AU - Xu, Yining
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2026.
PY - 2026
Y1 - 2026
N2 - Due to the loss of visual perception, blind and low-vision individuals (BLV) often rely on assistive navigation devices to determine direction while traveling. In the development of such devices, designers frequently employ tactile vibrations to convey directional information through touch. However, most existing studies encode information mainly through vibration frequency and amplitude. Although such parameter-based schemes can convey rich information, they typically require substantial training before users can decode the cues accurately. To address this limitation, we propose Spativibe, a sequential vibrotactile encoding method based on a three-dimensional (3D) spatial layout. Spativibe combines a 3D arrangement of vibration actuators with temporally ordered vibration patterns to establish two mappings: (1) vibration location–spatial orientation and (2) vibration sequence–directional guidance. We conducted a within-subject evaluation comparing two vibrotactile methods: Space, which uses single-line encoding based solely on a 3D spatial arrangement, and Spativibe, which uses dual-line encoding that integrates spatial arrangement and sequential patterns. Results showed that BLV participants achieved higher directional identification accuracy with Spativibe, indicating improved discriminability and accuracy of directional perception. Overall, Spativibe has the potential to enhance BLV users’ spatial orientation cognition and improve mobility experience.
AB - Due to the loss of visual perception, blind and low-vision individuals (BLV) often rely on assistive navigation devices to determine direction while traveling. In the development of such devices, designers frequently employ tactile vibrations to convey directional information through touch. However, most existing studies encode information mainly through vibration frequency and amplitude. Although such parameter-based schemes can convey rich information, they typically require substantial training before users can decode the cues accurately. To address this limitation, we propose Spativibe, a sequential vibrotactile encoding method based on a three-dimensional (3D) spatial layout. Spativibe combines a 3D arrangement of vibration actuators with temporally ordered vibration patterns to establish two mappings: (1) vibration location–spatial orientation and (2) vibration sequence–directional guidance. We conducted a within-subject evaluation comparing two vibrotactile methods: Space, which uses single-line encoding based solely on a 3D spatial arrangement, and Spativibe, which uses dual-line encoding that integrates spatial arrangement and sequential patterns. Results showed that BLV participants achieved higher directional identification accuracy with Spativibe, indicating improved discriminability and accuracy of directional perception. Overall, Spativibe has the potential to enhance BLV users’ spatial orientation cognition and improve mobility experience.
KW - 3D Spatial Vibrotactile cues
KW - Assistive Navigation
KW - Directional cognition
KW - Vibrotactile Feedback
UR - https://www.scopus.com/pages/publications/105045467419
U2 - 10.1007/978-3-032-29656-6_25
DO - 10.1007/978-3-032-29656-6_25
M3 - Conference contribution
AN - SCOPUS:105045467419
SN - 9783032296559
T3 - Lecture Notes in Computer Science
SP - 413
EP - 431
BT - Universal Access in Human-Computer Interaction - 20th International Conference, UAHCI 2026, Held as Part of the 28th HCI International Conference, HCII 2026, Proceedings
A2 - Antona, Margherita
A2 - Stephanidis, Constantine
PB - Springer Science and Business Media Deutschland GmbH
Y2 - 26 July 2026 through 31 July 2026
ER -