Dinesh K. Patel

dblp:257/3559 · DBLP profile ↗
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7ranked-venue papers
0as first author
6since 2021 · last 2025
0000-0003-1883-2801ORCID · verified

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

Human-computer interaction and ubiquitous computing · 5 · 5 since 2021Artificial intelligence and machine learning · 2 · 1 since 2021Systems, architecture and hardware · 2 · 1 since 2021
YearPublicationVenuePosition
2025 DropPop: Designing Drop-to-Deploy Mechanisms with Bistable Scissors Structures
Yibo Fu, Emily Guan, Jianzhe Gu, Dinesh K. Patel, Justin U. Soza Soto, Yichi Luo, Carmel Majidi, Josiah D. Hester, Lining Yao
UIST4
2025 Transforming Everyday Objects into Dynamic Interfaces using Smart Flat-Foldable Structures
Violet Yinuo Han, Amber Yinglei Chen, Mason Zadan, Jesse T. Gonzalez, Dinesh K. Patel, Wendy Fangwen Yu, Carmel Majidi, Alexandra Ion
UIST5
2024 breatHaptics: Enabling Granular Rendering of Breath Signals via Haptics using Shape-Changing Soft Interfaces
abstract
Feeling breath signals from the digital world has many values in remote settings. These signals have been visually or audibly represented in previous research, but recent advances in wearable technology now enable us to simulate breath signals via haptics, as an intimate and intuitive form of non-verbal interaction. Prior works relied on low-resolution methods of breath signal rendering and thus a limited understanding of associated haptic perceptions. Addressing this gap, our research introduces breatHaptics, a wearable that offers a high-resolution, haptic representation of breath signals. By utilizing extracted breath data, a mapping algorithm model and finely-tuned soft actuated materials, we deliver a granular simulation of human breath. Through a perception study involving force discrimination testing and haptic experience evaluation, we demonstrate breatHaptics’ ability to create a rich, nuanced tactile sensation of feeling breath haptically. Our work illustrates the promising role of breatHaptics as part of wearable technologies in offering well-being support.
Sunniva Liu, Jianzhe Gu, Dinesh K. Patel, Lining Yao
TEI3
2023 FlexTure: Designing Configurable and Dynamic Surface Features
abstract
We present FlexTure, a method for creating pop-up kirigami structures with a selectively bonded bilayer. These surfaces enable a new design space for accessible and rapid prototyping of dynamic surfaces. Using a flexible material selectively attached to a stretched substrate, we can create metamaterial surfaces that change texture. The tactile and aesthetic effects of these surfaces can be tuned through the configuration of cuts in the top layer of material, as well as the selection of the layers themselves. We provide a design workflow and accessible methods to achieve target effects and experimentally measure some mechanical properties of the surfaces. Several application concepts are offered along with a computational design tool.
Tate Johnson, Dinesh K. Patel, Humphrey Yang, Umut Serdar Civici, Adriane Fernandes Minori, Lining Yao
Conference on Designing Interactive Systems2
2022 ReCompFig: Designing Dynamically Reconfigurable Kinematic Devices Using Compliant Mechanisms and Tensioning Cables
abstract
From creating input devices to rendering tangible information, the field of HCI is interested in using kinematic mechanisms to create human-computer interfaces. Yet, due to fabrication and design challenges, it is often difficult to create kinematic devices that are compact and have multiple reconfigurable motional degrees of freedom (DOFs) depending on the interaction scenarios. In this work, we combine compliant mechanisms (CMs) with tensioning cables to create dynamically reconfigurable kinematic mechanisms. The devices’ kinematics (DOFs) is enabled and determined by the layout of bendable rods. The additional cables function as on-demand motion constraints that can dynamically lock or unlock the mechanism's DOFs as they are tightened or loosened. We provide algorithms and a design tool prototype to help users design such kinematic devices. We also demonstrate various HCI use cases including a kinematic haptic display, a haptic proxy, and a multimodal input device.
Humphrey Yang, Tate Johnson, Ke Zhong, Dinesh K. Patel, Gina Olson, Carmel Majidi, Mohammad F. Islam, Lining Yao
CHI4
2022 Microspine Design for Additive Manufacturing
abstract
Microspine grippers allow robots to ascend steep rocky slopes and cliff faces, enabling scientific exploration of exposed strata on Earth and other solar system bodies. Historically, the Shape Deposition Manufacturing (SDM) process has been used to fabricate multi-material suspensions for load-sharing among multiple microspines. We instead apply the Hybrid Deposition Manufacturing (HDM) process to microspine fabrication, and we further propose a novel 3D-printed microspine suspension design that can be manufactured via Fused Deposition Manufacturing (FDM) alone, using a single flexible material with an embedded fishhook. We use a model of microspine stiffness that allows designers to compensate for order-of-magnitude changes in material tensile modulus by adjusting geometric parameters of the design. The stiffness model and the FDM microspine design are validated through tensile testing, and mechanical properties of the HDM and FDM designs are compared against a standard SDM microspine design. We demonstrate that the FDM process can produce microspines with equivalent normal and axial stiffness and superior maximum load and fatigue response to SDM microspines, and discuss additional advantages of the FDM process for rapid prototyping and broader accessibility.
Paul Nadan, Dinesh K. Patel, Catherine Pavlov, Spencer B. Backus, Aaron M. Johnson 0001
IROS2
2019 A Magnetically Transduced Whisker for Angular Displacement and Moment Sensing
abstract
This work presents the design, modeling, and fabrication of a whisker-like sensor capable of measuring the whisker's angular displacement as well as the applied moments at the base of the whisker. The sensor takes advantage of readily accessible and low-cost 3D magnetic sensors to transduce whisker deflections, and a planar serpentine spring structure at the whisker base is used to provide a mechanical suspension for the whisker to rotate. The sensor prototype was characterized, calibrated, and compared with analytical models of the spring system and the magnetic field. The prototype showed a moment sensing range of 1.1N·mm when deflected up to 19.7°. The sensitivity of the sensor was 0.38°/LSB for the angular displacement sensing, and 0.021 Nmm/LSB for the moment sensing. A fully integrated system is demonstrated to display real-time information from the whisker on a graphical interface.
Suhan Kim, Camilo Velez, Dinesh K. Patel, Sarah Bergbreiter
IROS3