EDBT 2026 Demo / reviewers in the wild / expert
Joshua B. Gafford
dblp:139/3414
· DBLP profile ↗
7ranked-venue papers
5as first author
0since 2021 · last 2018
0000-0002-5955-5831ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Artificial intelligence and machine learning · 7 · 5 first-authorSystems, architecture and hardware · 7 · 5 first-author
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Interdisciplinary, comprehensive, and emerging computing
3 papers |
Medical and health informatics · 100% | |
| Computer graphics and multimedia
4 papers |
Computational fabrication · 100% | |
| Artificial intelligence
1 paper |
Robot manipulation · 100% |
Topics — the 5 heaviest of 6, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Medical and health informatics
surgical robotics |
0.6 | 3 | 2017 | A high-force, high-stroke distal robotic add-on for endoscopy · ICRA 2017 Snap-on robotic wrist module for enhanced dexterity in endoscopic surgery · ICRA 2016 A monolithic approach to fabricating low-cost, millimeter-scale multi-axis force sensors for minimally-invasive surgery · ICRA 2014 |
Medical and health informatics › surgical robotics
endoscopic surgery |
0.5 | 2 | 2017 | A high-force, high-stroke distal robotic add-on for endoscopy · ICRA 2017 Snap-on robotic wrist module for enhanced dexterity in endoscopic surgery · ICRA 2016 |
Computational fabrication
microfabrication |
0.2 | 1 | 2016 | Soft pop-up mechanisms for micro surgical tools: Design and characterization of compliant millimeter-scale articulated structures · ICRA 2016 |
Robotics › Robot manipulation › medical robotics
surgical robotics |
0.1 | 1 | 2016 | Soft pop-up mechanisms for micro surgical tools: Design and characterization of compliant millimeter-scale articulated structures · ICRA 2016 |
Medical and health informatics › surgical robotics
force sensing |
0.1 | 1 | 2014 | A monolithic approach to fabricating low-cost, millimeter-scale multi-axis force sensors for minimally-invasive surgery · ICRA 2014 |
Methods — techniques the papers use, named apart from their topics
shape memory alloy · 1.1phenomenological modeling · 0.6fluid cooling · 0.6soft fluidic micro-actuators · 0.5proprioceptive sensing · 0.5light intensity modulation · 0.5compliant mechanism design · 0.5foil-based strain sensors · 0.4composite laminate batch fabrication · 0.4
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2018 | Fuzzy-Based Feedback Control of a Tip-Mounted Module for Robot-Assisted EndoscopyabstractNascent endoscopic therapeutic procedures, such as endoscopic submucosal dissection, enable unparalleled access to and removal of mid-size cancerous neoplasia from within the gastrointestinal tract. However, the remote locations of these lesions often incur substantial distal dexterity which imparts appreciable cognitive loading on the clinician and opens up the possibility of adverse events such as intestinal perforation due to limited dexterity and a lack of sensory feedback. In this work, we introduce a mm-scale, tip-mounted robotic system, EndoMODRA (Endoscopic Module for On-Demand Robotic Assistance), which interfaces with commercially-available endoscopic tools and provides additional dexterity and feedback sensing using on-board actuators and sensors, decoupling tool motion from endoscope motion. Leveraging alternative high-energy-density actuation strategies and monolithic, printed-circuit-inspired manufacturing processes, all actuation and sensing is fully contained within the distally-mounted module, obviating the need for a continuous mechanical transmission to a proximal motor package. We develop a fuzzy-tuned PID/PWM controller for closing the loop distally to enable closed-loop position-controlled trajectory execution using onboard actuation and sensing, realizing fully -distal loop closure in an endoscope-mounted robotic module with no proximal actuation or sensing component. Controller performance is validated on a fully-integrated module with on-board sensing, demonstrating the ability to execute pre-determined trajectories as well as real-time rate-based teleoperation. Joshua B. Gafford, Hiroyuki Aihara, Christopher Thompson 0003, Conor J. Walsh, Robert J. Wood |
IROS | 1 |
| 2017 | A high-force, high-stroke distal robotic add-on for endoscopyabstract`Snap-On' robotic modules that can integrate distally with existing commercially-available endoscopic equipment have the potential to provide new capabilities such as enhanced dexterity, bilateral manipulation and feedback sensing with minimal disruption of the current clinical workflow. However, the desire for fully-distal integration of sensors and actuators and the resulting form factor requirements preclude the use of many off-the-shelf actuators capable of generating the relevant strokes and forces required to interact with tools and tissue. In this work, we investigate the use of millimeter-scale, optimally-packed helical shape memory alloy (SMA) actuators in an antagonistic configuration to provide distal actuation without the need for a continuous mechanical coupling to proximal, off-board actuation packages to realize a truly plug-and-play solution. Using phenomenological modeling, we design and fabricate antagonistic helical SMA pairs and implement them in an at-scale roboendoscopic module to generate strokes and forces necessary for deflecting tools passed through the endoscope working port, thereby providing a controllable robotic `wrist' inside the body to otherwise passive flexible tools. Bandwidth is drastically improved through the integration of targeted fluid cooling. The integrated system can generate maximum lateral forces of 10N and demonstrates an additional 96 degrees of distal angulation, expanding the reachable workspace of tools passed through a standard endoscope. Joshua B. Gafford, Robert J. Wood, Conor J. Walsh |
ICRA | 1 |
| 2016 | Snap-on robotic wrist module for enhanced dexterity in endoscopic surgeryabstractBurgeoning transendoscopic procedures, such as endoscopic submucosal dissection (ESD), provide a promising means of treating early-stage gastric neoplasia in a minimally-invasive way. However, the remote locations of these lesions, coupled with their origination in the submucosal layers of the gastrointestinal tract, often lead to extreme technical, cognitive and ergonomic challenges which combat the widespread applicability and adoption of these techniques. Among these challenges is achieving the in vivo dexterity required to retract and dissect tissue. By leveraging workspace and force data obtained through clinical studies, we developed a modular, disposable, distally-mounted actuator (an `active endcap') that can augment an endoscopist's distal dexterity in ways that are not achievable with the endoscope's built-in degrees-of-freedom. The device consists of a flexible articulating `exoskeleton' manufactured via printed-circuit MEMS (PCMEMS) which engages and deflects electrosurgical tools that are passed through the endoscopic working channel. Embedded proprioceptive sensing is implemented on-board using distributed LED/phototransistor pairs and the principle of light intensity modulation (LIM). The distal degree-of-freedom is actuated using shape memory alloy (SMA) technology, and the actuation transmission system is fully contained within a 1-inch-long end cap that can be mounted on the distal end of the endoscope, thereby obviating the need for a mechanical connection to a proximal source. Proof-of-concept tests demonstrate that the actuator adds over 50 degrees of distal articulation to existing tools and can generate 450 mN of lateral force which has been clinically determined to be sufficient for performing circumferential incisions in ESD. Joshua B. Gafford, Tommaso Ranzani, Sheila Russo, Hiroyuki Aihara, Christopher Thompson 0003, Robert J. Wood, Conor J. Walsh |
ICRA | 1 |
| 2016 | Soft pop-up mechanisms for micro surgical tools: Design and characterization of compliant millimeter-scale articulated structuresabstractThis paper introduces a manufacturing technique which enables the integration of soft materials and soft fluidic micro-actuators in the Pop-up book MEMS paradigm. Such a technique represents a promising approach to the design and fabrication of low cost and scalable articulated mechanisms provided with sensing capabilities and on-board actuation with potential applications in the field of minimally invasive surgery. Design and integration of soft components in the rigid-flex laminates is described along with the resulting soft pop-up mechanisms realized at different scales. Prototype characterization is presented, demonstrating forces and dexterity in a range suitable for surgical applications, as well as the possibility to integrate sensing capabilities. Based on these results, a multi-articulated robotic arm is fabricated and mounted on top of an endoscope model to provide a proof of concept of simple robotic mechanisms that could be useful in a surgical scenario. Sheila Russo, Tommaso Ranzani, Joshua B. Gafford, Conor J. Walsh, Robert J. Wood |
ICRA | 3 |
| 2015 | Design and control of a parallel linkage wrist for robotic microsurgeryabstractThis paper presents the design and control of a teleoperated robotic system for dexterous micromanipulation tasks at the meso-scale, specifically open microsurgery. Robotic open microsurgery is an unexplored yet potentially a high impact area of surgical robotics. Microsurgical operations, such as microanastomosis of blood vessels and reattachment of nerve fibers, require high levels of manual dexterity and accuracy that surpass human capabilities. A 3-DoF robotic wrist is designed and built based on a spherical five-bar mechanism. The wrist is attached to a 3-axis commercial off-the-shelf linear stage, achieving a fully dexterous system. Design requirements are determined using motion data collected during a simulated microanastomosis operation. The wrist design is optimized to maximize workspace and manipulability. The system is teleoperated using a haptic device, and has the required bandwidth to replicate microsurgical motions. The system was successfully used in a micromanipulation task to stack 1 mm-diameter metal spheres. The micromanipulation system presented here may improve surgical outcomes during open microsurgery by offering better accuracy and dexterity to surgeons. Alperen Degirmenci, Frank L. Hammond, Joshua B. Gafford, Conor J. Walsh, Robert J. Wood, Robert D. Howe |
IROS | 3 |
| 2014 | A monolithic approach to fabricating low-cost, millimeter-scale multi-axis force sensors for minimally-invasive surgeryabstractIn this paper we have rapidly prototyped customized, highly-sensitive, mm-scale multi-axis force sensors for medical applications. Using a composite laminate batch fabrication process with biocompatible constituent materials, we have fabricated a fully-integrated, 10×10 mm three-axis force sensor with up to 5 V/N sensitivity and RMS noise on the order of ~1.6 mN, operational over a range of -500 to 500 mN in the x- and y-axes, and -2.5 to 2.5 N in the z-axis. Custom foil-based strain sensors were fabricated in parallel with the mechanical structure, obviating the need for post-manufacturing alignment and assembly. The sensor and its custom-fabricated signal conditioning circuitry fit within a 1×1×2 cm volume to realize a fully-integrated force transduction platform with potential haptics and control applications in minimally-invasive surgical tools. The form factor, biocompatibility, and cost of the sensor and signal conditioning makes this method ideal for rapid-prototyping low-cost, mm-scale distal force sensors. Sensor performance is validated in a simulated tissue palpation task using a robotic master-slave platform. Joshua B. Gafford, Samuel B. Kesner, Alperen Degirmenci, Robert J. Wood, Robert D. Howe, Conor J. Walsh |
ICRA | 1 |
| 2013 | Force-sensing surgical grasper enabled by pop-up book MEMSabstractThe small scale of minimally-invasive surgery (MIS) presents significant challenges to developing robust, smart, and dexterous tools for manipulating millimeter and sub-millimeter anatomical structures (vessels, nerves) and surgical equipment (sutures, staples). Robotic MIS systems offer the potential to transform this medical field by enabling precise repair of these miniature tissue structures through the use of teleoperation and haptic feedback. However, this effort is currently limited by the inability to make robust and accurate MIS end effectors with integrated force and contact sensing. In this paper, we demonstrate the use of the novel Pop-Up Book MEMS manufacturing method to fabricate the mechanical and sensing elements of an instrumented MIS grasper. A custom thin-foil strain gage was manufactured in parallel with the mechanical components of the grasper to realize a fully-integrated electromechanical system in a single manufacturing step, removing the need for manual assembly, bonding and alignment. In preliminary experiments, the integrated grasper is capable of resolving forces as low as 30 mN, with a sensitivity of approximately 408 mV/N. This level of performance will enable robotic surgical systems that can handle delicate tissue structures and perform dexterous procedures through the use of haptic feedback guidance. Joshua B. Gafford, Samuel B. Kesner, Robert J. Wood, Conor J. Walsh |
IROS | 1 |