Cédric Honnet

dblp:182/8994 · also Cedric Honnet · DBLP profile ↗
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11ranked-venue papers
2as first author
6since 2021 · last 2025
0000-0003-2152-1756ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Human-computer interaction and ubiquitous computing · 11 · 2 first-author · 6 since 2021
YearPublicationVenuePosition
2025 FiberCircuits: A Miniaturization Framework To Manufacture Fibers That Embed Integrated Circuits
Cédric Honnet, Wedyan Babatain, Yiyue Luo, Ozgun Kilic Afsar, Chloe Bensahel, Sarah Nicita, Yunyi Zhu, Andreea Danielescu 0001, Neil Gershenfeld, Joseph A. Paradiso
UIST1
2024 PortaChrome: A Portable Contact Light Source for Integrated Re-Programmable Multi-Color Textures
abstract
In this paper, we present PortaChrome, a portable light source that can be attached to everyday objects to reprogram the color and texture of surfaces that come in contact with them. When PortaChrome makes contact with objects previously coated with photochromic dye, the UV and RGB LEDs inside PortaChrome create multi-color textures on the objects. In contrast to prior work, which used projectors for the color-change, PortaChrome has a thin and flexible form factor, which allows the color-change process to be integrated into everyday user interaction. Because of the close distance between the light source and the photochromic object, PortaChrome creates color textures in less than 4 minutes on average, which is 8 times faster than prior work. We demonstrate PortaChrome with four application examples, including data visualizations on textiles and dynamic designs on wearables.
Yunyi Zhu, Cédric Honnet, Yixiao Kang, Junyi Zhu 0001, Angelina J. Zheng, Kyle Heinz, Grace Tang, Luca Musk, Michael Wessely, Stefanie Mueller 0001
UIST2
2023 FibeRobo: Fabricating 4D Fiber Interfaces by Continuous Drawing of Temperature Tunable Liquid Crystal Elastomers
abstract
We present FibeRobo, a thermally-actuated liquid crystal elastomer (LCE) fiber that can be embedded or structured into textiles and enable silent and responsive interactions with shape-changing, fiber-based interfaces. Three definitive properties distinguish FibeRobo from other actuating threads explored in HCI. First, they exhibit rapid thermal self-reversing actuation with large displacements (∼40%) without twisting. Second, we present a reproducible UV fiber drawing setup that produces hundreds of meters of fiber with a sub-millimeter diameter. Third, FibeRobo is fully compatible with existing textile manufacturing machinery such as weaving looms, embroidery, and industrial knitting machines. This paper contributes to developing temperature-responsive LCE fibers, a facile and scalable fabrication pipeline with optional heating element integration for digital control, mechanical characterization, and the establishment of higher hierarchical textile structures and design space. Finally, we introduce a set of demonstrations that illustrate the design space FibeRobo enables.
Jack Forman, Ozgun Kilic Afsar, Sarah Nicita, Rosalie Hsin-Ju Lin, Megan Hofmann, Akshay Kothakonda, Zachary Gordon, Cédric Honnet, Kristen L. Dorsey, Neil Gershenfeld, Hiroshi Ishii 0001
UIST9
2023 MagKnitic: Machine-knitted Passive and Interactive Haptic Textiles with Integrated Binary Sensing
abstract
In this paper, we introduce MagKnitic, a novel approach to integrate passive force feedback and binary sensing into fabrics via digital machine knitting. Our approach utilizes digital fabrication technology to enable haptic interfaces that are soft, flexible, lightweight, and conform to the user’s body shape. Despite these characteristics, our interfaces provide diverse, interactive, and responsive force feedback, expanding the design space for haptic experiences.MagKnitic provides scalable and customizable passive haptic sensations by utilizing the attractive force between ferromagnetic yarns and permanent magnets, both of which are seamlessly integrated into knitted fabrics. Moreover, we present a binary sensing capability based on the resistance drop resulting from the activated electrical path between the integrated magnets and ferromagnetic yarn upon direct contact. We offer parametric design templates for users to customize MagKnitic layouts and patterns. With various design layouts and combinations, MagKnitic supports passive haptics interactions of linear, polar, angular, planar, radial, and user-defined motions. We perform a technical evaluation of the passive force feedback and the binary sensing capabilities with different machine knitting layouts and patterns, embedded magnet sizes, and interaction distances. In addition, we conduct two user studies to validate the effectiveness of MagKnitic. Finally, we demonstrate various application scenarios, including wearable input interfaces, game controllers, passive VR/AR wearables, and interactive furniture coverings.
Yiyue Luo, Junyi Zhu 0001, Kui Wu 0003, Cédric Honnet, Stefanie Mueller 0001, Wojciech Matusik
UIST4
2021 Topographie Digitale
abstract
Topographie Digitale is an interactive installation that illustrates a hybridization between science and traditional textile craftsmanship. It uses electrically functionalized and pleated textiles as touch sensitive surfaces for interacting with a video-projected visualization. The pleated fabric, augmented by our custom chemical process, and the electronic sensing system give birth to a material with a mixed heritage that is both technological and traditional, and prefigure an emerging craft.
Audrey Briot, Martin De Bie, Alice Giordani, Leon Denise, Cédric Honnet
TEI5
2021 MetaSense: Integrating Sensing Capabilities into Mechanical Metamaterial
abstract
In this paper, we present a method to integrate sensing capabilities into 3D printable metamaterial structures comprised of cells, which enables the creation of monolithic input devices for HCI. We accomplish this by converting select opposing cell walls within the metamaterial device into electrodes, thereby creating capacitive sensors. When a user interacts with the object and applies a force, the distance and overlapping area between opposing cell walls change, resulting in a measurable capacitance variation.
Jun Gong 0002, Olivia Seow, Cédric Honnet, Jack Forman, Stefanie Mueller 0001
UIST3
2020 PolySense: Augmenting Textiles with Electrical Functionality using In-Situ Polymerization
abstract
We present a method for enabling arbitrary textiles to sense pressure and deformation: In-situ polymerization supports integration of piezoresistive properties at the material level, preserving a textile's haptic and mechanical characteristics. We demonstrate how to enhance a wide set of fabrics and yarns using only readily available tools. To further support customisation by the designer, we present methods for patterning, as needed to create circuits and sensors, and demonstrate how to combine areas of different conductance in one material. Technical evaluation results demonstrate the performance of sensors created using our method is comparable to off-the-shelf piezoresistive textiles. As application examples, we demonstrate rapid manufacturing of on-body interfaces, tie-dyed motion-capture clothing, and zippers that act as potentiometers.
Cédric Honnet, Hannah Perner-Wilson, Marc Teyssier 0002, Bruno Fruchard, Jürgen Steimle, Ana C. Baptista, Paul Strohmeier
CHI1
2020 Sonoflex: Embroidered Speakers Without Permanent Magnets
abstract
We present Sonoflex, a thin-form, embroidered dynamic speaker made without using a permanent magnet. Our design consists of two flat spiral coils, stacked on top of each other, and is based on an isolated, thin (0.15 mm) enameled copper wire. Our approach allows for thin, lightweight, and textile speakers and does not require high voltage as in electrostatic speakers. We show how the speaker can be designed and fabricated and evaluate its acoustic properties as a function of manufacturing parameters (size, turn counts, turn spacing, and substrate materials). The experiment results revealed that we can produce audible sound with a broad frequency range (1.5 kHz - 20 kHz) with the embroidered speaker with a diameter of 50 mm. We conclude the paper by presenting several applications such as audible notifications and near-ultrasound communication.
Thomas Preindl, Cédric Honnet, Andreas Pointner, Roland Aigner, Joseph A. Paradiso, Michael Haller
UIST2
2019 Optimizing Pressure Matrices: Interdigitation and Interpolation Methods for Continuous Position Input
abstract
This paper provides resources and design recommendations for optimizing position input for pressure sensor matrices, a sensor design often used in eTextiles. Currently applications using pressure matrices for precise continuous position control are rare. One reason designers opt against using these sensors for continuous position control is that when the finger transitions from one sensing electrode to the next, jerky motion, jumps or other non-linear artifacts appear. We demonstrate that interdigitation can improve transition behavior and discuss interpolation algorithms to best leverage such designs. We provide software for reproducing our sensors and experiment, as well as a dataset consisting of 1122 swipe gestures performed on 17 sensors.
Paul Strohmeier, Victor Håkansson, Cédric Honnet, Daniel Ashbrook, Kasper Hornbæk
TEI3
2018 Designing eTextiles for the Body: Shape, Volume & Motion
abstract
In this studio, we will improve our tailoring skills in order to better integrate technology into clothing. Leveraging the volumetric nature of clothing, we will create eTextile interfaces that fit the shape of the body and are designed around how bodies move. This studio will consist of a short masterclass led by an expert fashion designer followed by materials experimentation and working on individual projects. We will introduce and demo a variety of ways to design and implement 3-dimensional eTextiles as well as how to integrate them with interactive systems.
Rachel Freire, Paul Strohmeier, Cédric Honnet, Jarrod Knibbe, Sophia Brueckner
TEI3
2017 Second Skin: An Exploration of eTextile Stretch Circuits on the Body
abstract
Second Skin is a stretch electronic textile (eTextile) garment that adapts to the shape of the body. It is designed as both a provocative outer shell and a functioning undergarment, or foundation garment. Using elastic materials and building on techniques from cutting edge sportswear manufacturing, it facilitates wearable electronics which can recede from the users attention. We consider Second Skin as a platform that other researchers can use to add functionality of their own. In our exhibit, people can interact with a prototype version of Second Skin as well as with material samples to gain a better understanding of its look, feel and material capabilities.
Rachel Freire, Cédric Honnet, Paul Strohmeier
TEI2