Improved Tactile Perception of 3D Geometric Bumps Using Coupled Electrovibration and Mechanical Vibration Stimuli

Author:

Sun Xiaoying1,Zhang Chen1,Liu Guohong1

Affiliation:

1. Shaw Education Building, Nanling Campus of Jilin University, Changchun, China

Abstract

AbstractAt present, the tactile perception of 3D geometric bumps (such as sinusoidal bumps, Gaussian bumps, triangular bumps, etc.) on touchscreens is mainly realized by mapping the local gradients of rendered virtual surfaces to lateral electrostatic friction, while maintaining the constant normal feedback force. The latest study has shown that the recognition rate of 3D visual objects with electrovibration is lower by 27$\%$ than that using force-feedback devices. Based on the custom-designed tactile display coupling with electrovibration and mechanical vibration stimuli, this paper proposes a novel tactile rendering algorithm of 3D geometric bumps, which simultaneously generates the lateral and the normal perceptual dimensions. Specifically, a mapping relationship with the electrostatic friction proportional to the gradient of 3D geometric bumps is firstly established. Then, resorting to the angle between the lateral friction force and the normal feedback force, a rendering model of the normal feedback force using mechanical vibration is further determined. Compared to the previous works with electrovibration, objective evaluations with 12 participants showed that the novel version significantly improved recognition rates of 3D bumps on touchscreens.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

General Computer Science

Reference22 articles.

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Richer Textural Information in the Horizontal Component of the Contact Force Compared with the Normal Component;2024 IEEE Haptics Symposium (HAPTICS);2024-04-07

2. Research on Multimodal Image Display System with Electrovibration-Based Tactile Rendering;2023 2nd International Conference on Artificial Intelligence, Human-Computer Interaction and Robotics (AIHCIR);2023-12-08

3. Easy-to-Recognize Bump Shapes using only Lateral Force Cues for Real and Virtual Surfaces;2023 IEEE World Haptics Conference (WHC);2023-07-10

4. Combined virtual bumps and textures on electrostatic friction tactile displays;2022 IEEE 11th Global Conference on Consumer Electronics (GCCE);2022-10-18

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