ThreadSense: Locating Touch on an Extremely Thin Interactive Thread
Authors
We propose a new sensing technique for one-dimensional touch input workable on an interactive thread of less than 0.4 mm thick. Our technique locates up to two touches using impedance sensing with a spacing resolution unachievable by the existing methods. Our approach is also unique in that it locates a touch based on a mathematical model describing the change in thread impedance in relation to the touch locations. This allows the system to be easily calibrated by the user touching a known location(s) on the thread. The system can thus quickly adapt to various environmental settings and users. A system evaluation showed that our system could track the slide motion of a finger with an average error distance of 6.13 mm and 4.16 mm using one and five touches for calibration, respectively. The system could also distinguish between single touch and two concurrent touches with an accuracy of 99% and could track two concurrent touches with an average error distance of 8.55 mm. We demonstrate new interactions enabled by our sensing approach in several unique applications.
Research Questions / Practical Problems
Question signals indexed for this paper.
- 100%
Springlets: Expressive, Flexible and Silent On-Skin Tactile Interfaces
CHI '19· Haptic Wearables +1
- 100%
Wireality: Enabling Complex Tangible Geometries in Virtual Reality with Worn Multi-String Haptics
CHI '20· Haptic Wearables +1
- 100%
Interoceptive Interaction: An Embodied Metaphor Inspired Approach to Designing for Meditation
CHI '21· Haptic Wearables +1
- 100%
Interaction with Touch-Sensitive Knitted Fabrics: User Perceptions and Everyday Use Experiments
CHI '22· Haptic Wearables +1
- 100%
Visuo-haptic Crossmodal Shape Perception Model for Shape-Changing Handheld Controllers Bridged by Inertial Tensor
CHI '23· Haptic Wearables +1
- 100%
FlexEar-Tips: Shape-Adjustable Ear Tips Using Pressure Control
CHI '25· Haptic Wearables +1
- 100%
Designing Touch Technologies for and with Bodies in Menstrual Discomfort
CHI '25· Haptic Wearables +1
- 100%
SqueezeMe: Creating Soft Inductive Pressure Sensors with Ferromagnetic Elastomers
CHI '25· Haptic Wearables +1
- 100%
Design and Perception of a Soft Shape Change Beneath a Smartwatch
MobileHCI '24· Haptic Wearables +1
- 100%
Skin-On Interfaces: A Bio-Driven Approach for Artificial Skin Design to Cover Interactive Devices
UIST '19· Haptic Wearables +1
Based on Jaccard similarity of research subtopics & professions (≥60%)