David L. Christensen

dblp:148/4970 · DBLP profile ↗
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17ranked-venue papers
1as first author
0since 2021 · last 2020
—ORCID · none

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

Artificial intelligence and machine learning · 14 · 1 first-authorSystems, architecture and hardware · 14 · 1 first-authorApplied, interdisciplinary, general and emerging computing · 2Human-computer interaction and ubiquitous computing · 1

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.

Artificial intelligence
11 papers
Legged, aerial and field robots · 42% Robot manipulation · 39% Motion planning and robot control · 17%
Computer graphics and multimedia
1 paper
Computational fabrication · 100%

Topics — the 21 heaviest of 24, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Robotics › Robot manipulation
grasping
1.472018
Grasping Without Squeezing: Design and Modeling of Shear-Activated Grippers · IEEE Trans. Robotics 2018
Grasping without squeezing: Shear adhesion gripper with fibrillar thin film · ICRA 2015
Vertical dry adhesive climbing with a 100× bodyweight payload · ICRA 2015
Robotics › Legged, aerial and field robots
aerial robots
0.522017
A Multimodal Robot for Perching and Climbing on Vertical Outdoor Surfaces · IEEE Trans. Robotics 2017
Modeling the dynamics of perching with opposed-grip mechanisms · ICRA 2014
Robotics › Legged, aerial and field robots
legged robots
0.412020
Passive Dynamic Balancing and Walking in Actuated Environments · ICRA 2020
Robotics › Legged, aerial and field robots
passive dynamic walking
0.412020
Passive Dynamic Balancing and Walking in Actuated Environments · ICRA 2020
Robotics › Motion planning and robot control
robot control
0.412020
Passive Dynamic Balancing and Walking in Actuated Environments · ICRA 2020
Robotics › Legged, aerial and field robots › field robotics
climbing robot
0.422015
Vertical dry adhesive climbing with a 100× bodyweight payload · ICRA 2015
Perching and vertical climbing: Design of a multimodal robot · ICRA 2014
Robotics › Motion planning and robot control › underactuated robotics
acrobot
0.312018
Stickman: Towards a Human Scale Acrobatic Robot · ICRA 2018
Robotics › Legged, aerial and field robots › aerial robots
micro aerial vehicle
0.312017
A Multimodal Robot for Perching and Climbing on Vertical Outdoor Surfaces · IEEE Trans. Robotics 2017
Robotics › Robot manipulation › actuation
pneumatic artificial muscle
0.212016
Design and implementation of a 300% strain soft artificial muscle · ICRA 2016
Robotics › Robot manipulation › soft robotics
soft actuator
0.212016
Design and implementation of a 300% strain soft artificial muscle · ICRA 2016
Robotics › Legged, aerial and field robots › aerial robots › aerial physical interaction
perching
0.222014
Modeling the dynamics of perching with opposed-grip mechanisms · ICRA 2014
Perching and vertical climbing: Design of a multimodal robot · ICRA 2014
Robotics › Robot manipulation › grasping › gripper design
gecko adhesive gripper
0.212015
Grasping without squeezing: Shear adhesion gripper with fibrillar thin film · ICRA 2015
Robotics › Legged, aerial and field robots › locomotion
multimodal locomotion
0.212014
Perching and vertical climbing: Design of a multimodal robot · ICRA 2014
Robotics › Robot manipulation › grasping
underactuated grasping
0.212014
A compliant underactuated hand with suction flow for underwater mobile manipulation · ICRA 2014
Robotics › Robot navigation and mapping
state estimation
0.112018
Stickman: Towards a Human Scale Acrobatic Robot · ICRA 2018
Computational fabrication › mechanism design
compliant mechanism design
0.112018
Grasping Without Squeezing: Design and Modeling of Shear-Activated Grippers · IEEE Trans. Robotics 2018
Accessibility and assistive technology › assistive technology
assistive device
0.112016
Design and implementation of a 300% strain soft artificial muscle · ICRA 2016
Robotics › Legged, aerial and field robots
field robotics
0.112015
μTugs: Enabling microrobots to deliver macro forces with controllable adhesives · ICRA 2015
Robotics › Legged, aerial and field robots › mobile robot locomotion
microrobot locomotion
0.112015
μTugs: Enabling microrobots to deliver macro forces with controllable adhesives · ICRA 2015
Robotics › Robot manipulation
mobile manipulation
0.112014
A compliant underactuated hand with suction flow for underwater mobile manipulation · ICRA 2014
Robotics › Robot manipulation
underwater manipulation
0.112014
A compliant underactuated hand with suction flow for underwater mobile manipulation · ICRA 2014

Methods — techniques the papers use, named apart from their topics

empirical modeling · 0.7dynamic modeling · 0.5force and displacement characterization · 0.5shape memory alloy actuation · 0.4omnidirectional actuated floor · 0.4gait optimization · 0.4laser range finding · 0.3IMU state estimation · 0.3piezoelectric actuation · 0.2electromagnetic actuation · 0.2
YearPublicationVenuePosition
2020 Passive Dynamic Balancing and Walking in Actuated Environments
abstract
The control of passive dynamic systems remains a challenging problem in the field of robotics, and insights from their study can inform everything from dynamic behaviors on actuated robots to robotic assistive devices. In this work, we explore the use of flat actuated environments for realizing passive dynamic balancing and locomotion. Specifically, we utilize a novel omnidirectional actuated floor to dynamically stabilize two robotic systems. We begin with an inverted pendulum to demonstrate the ability to control a passive system through an active environment. We then consider a passive bipedal robot wherein dynamically stable periodic walking gaits are generated through an optimization that leverages the actuated floor. The end result is the ability to demonstrate passive dynamic walking experimentally through the use of actuated environments.
Jenna Reher, Noel Csomay-Shanklin, David L. Christensen, Bobby Bristow, Aaron D. Ames, Lanny S. Smoot
ICRA3
2020 Realistic and Interactive Robot Gaze
abstract
This paper describes the development of a system for lifelike gaze in human-robot interactions using a humanoid Audio-Animatronics®bust. Previous work examining mutual gaze between robots and humans has focused on technical implementation. We present a general architecture that seeks not only to create gaze interactions from a technological standpoint, but also through the lens of character animation where the fidelity and believability of motion is paramount; that is, we seek to create an interaction which demonstrates the illusion of life. A complete system is described that perceives persons in the environment, identifies persons-of-interest based on salient actions, selects an appropriate gaze behavior, and executes high fidelity motions to respond to the stimuli. We use mechanisms that mimic motor and attention behaviors analogous to those observed in biological systems including attention habituation, saccades, and differences in motion bandwidth for actuators. Additionally, a subsumption architecture allows layering of simple motor movements to create increasingly complex behaviors which are able to interactively and realistically react to salient stimuli in the environment through subsuming lower levels of behavior. The result of this system is an interactive human-robot experience capable of human-like gaze behaviors.
Matthew K. X. J. Pan, Kyna McIntosh, Daniel Campos Zamora, Günter Niemeyer, Joohyung Kim, Alexis Wieland, David L. Christensen
IROS9
2018 Stickman: Towards a Human Scale Acrobatic Robot
abstract
Human performers have developed impressive acrobatic techniques over thousands of years of practicing the gymnastic arts. At the same time, robots have started to become more mobile and autonomous, and can begin to imitate these stunts in dramatic and informative ways. We present a simple two degree of freedom robot that uses a gravity-driven pendulum launch and produces a variety of somersaulting stunts. The robot uses an IMU and a laser range-finder to estimate its state mid-flight and actuates to change its motion both on and and off the pendulum. We discuss the dynamics of this behavior in a framework of acrobatic capability and present experimental results.
Morgan Pope, Steven Christensen, David L. Christensen, Anthony Simeonov, Grant Imahara, Günter Niemeyer
ICRA3
2018 Grasping Without Squeezing: Design and Modeling of Shear-Activated Grippers
abstract
Grasping objects that are too large to envelop is traditionally achieved using friction that is activated by squeezing. We present a family of shear-activated grippers that can grasp such objects without the need to squeeze. When a shear force is applied to the gecko-inspired material in our grippers, adhesion is turned on; this adhesion in turn results in adhesion-controlled friction, a friction force that depends on adhesion rather than a squeezing normal force. Removal of the shear force eliminates adhesion, allowing easy release of an object. A compliant shear-activated gripper without active sensing and control can use the same light touch to lift objects that are soft, brittle, fragile, light, or very heavy. We present three grippers, the first two designed for curved objects, and the third for nearly any shape. Simple models describe the grasping process, and empirical results verify the models. The grippers are demonstrated on objects with a variety of shapes, materials, sizes, and weights.
Elliot Wright Hawkes, Hao Jiang 0002, David L. Christensen, Amy Kyungwon Han, Mark R. Cutkosky
IEEE Trans. Robotics3
2017 A Multimodal Robot for Perching and Climbing on Vertical Outdoor Surfaces
abstract
Perching can extend the useful mission life of a micro air vehicle. Once perched, climbing allows it to reposition precisely, with low power draw and without regard for weather conditions. We present the Stanford Climbing and Aerial Maneuvering Platform, which is to our knowledge the first robot capable of flying, perching with passive technology on outdoor surfaces, climbing, and taking off again. We present the mechanical design and the new perching, climbing, and takeoff strategies that allow us to perform these tasks on surfaces such as concrete and stucco, without the aid of a motion capture system or off-board computation. We further discuss two new capabilities uniquely available to a hybrid aerial-scansorial robot: the ability to recover gracefully from climbing failures and the ability to increase usable foothold density through the application of aerodynamic forces. We also measure real power consumption for climbing, flying, and monitoring and discuss how future platforms could be improved for longer mission life.
Morgan Pope, Christopher W. Kimes, Hao Jiang 0002, Elliot Wright Hawkes, Matthew A. Estrada, Capella F. Kerst, William R. T. Roderick, Amy Kyungwon Han, David L. Christensen, Mark R. Cutkosky
IEEE Trans. Robotics9
2016 Design and implementation of a 300% strain soft artificial muscle
abstract
We present the inverse pneumatic artificial muscle (IPAM), a new soft actuator that is powered by pneumatics in a manner inverse to traditional pneumatic muscles: low pressure, rather than high, contracts the muscle. The IPAM improves on the 50-year-old standard in soft pneumatic actuators, the McKibben muscle, but retains many of the advantages that have drawn roboticists to this artificial muscle over the years. The McKibben muscle produces up to 40% strain, and has nonlinear control with friction and hysteresis, whereas the IPAM attains strains of over 300% and has a nearly linear mapping between input pressure and force/length output and no sliding friction. Crucially, the IPAM retains the soft structure, low weight, compliance, and robustness that the McKibben muscle boasts. We present a simple model to describe the behavior of the muscle, as well as force, displacement, pressure, and speed tests validating the model and characterizing the IPAM's performance. Further, we present two practical implementations using the IPAM: an active brace and a robotic finger.
Elliot Wright Hawkes, David L. Christensen, Allison M. Okamura
ICRA2
2016 Wolverine: A wearable haptic interface for grasping in virtual reality
abstract
The Wolverine is a mobile, wearable haptic device designed for simulating the grasping of rigid objects in a virtual reality interface. In contrast to prior work on wearable force feedback gloves, we focus on creating a low cost and lightweight device that renders a force directly between the thumb and three fingers to simulate objects held in pad opposition (precision) type grasps. Leveraging low-power brake-based locking sliders, the system can withstand over 100N of force between each finger and the thumb, and only consumes 0.24 mWh (0.87 joules) for each braking interaction. Integrated sensors are used both for feedback control and user input: time-of-flight sensors provide the position of each finger and an IMU provides overall orientation tracking. This paper describes the mechanical design, control strategy, and performance analysis of the Wolverine system and provides a comparison with several existing wearable haptic devices.
Inrak Choi, Elliot Wright Hawkes, David L. Christensen, Christopher J. Ploch, Sean Follmer
IROS3
2015 μTugs: Enabling microrobots to deliver macro forces with controllable adhesives
abstract
The controllable adhesives used by insects to both carry large loads and move quickly despite their small scale inspires the μTug robot concept. These are small robots that can both move quickly and use controllable adhesion to apply interaction forces many times their body weight. The adhesives enable these autonomous robots to accomplish this feat on a variety of common surfaces without complex infrastructure. The benefits, requirements, and theoretical efficiency of the adhesive in this application are discussed as well as the practical choices of actuator and robot working surface material selection. A robot actuated by piezoelectric bimorphs demonstrates fast walking with a no-load rate of 50 Hz and a loaded rate of 10 Hz. A 12 g shape memory alloy (SMA) actuated robot demonstrates the ability to load more of the adhesive enabling it to tow 6.5 kg on glass (or 500 times its body weight). Continuous rotation actuators (electromagnetic in this case) are demonstrated on another 12 g robot give it nearly unlimited work cycles through gearing. This leads to advantages in towing capacity (up to 22 kg or over 1800 times its body weight), step size, and efficiency. This work shows that using such an adhesive system enables small robots to provide truly human scale interaction forces, despite their size and mass. This will enable future microrobots to not only sense the state of the human environment in which they operate, but apply large enough forces to modify it in response.
David L. Christensen, Elliot Wright Hawkes, Srinivasan A. Suresh, Karen Ladenheim, Mark R. Cutkosky
ICRA1
2015 Vertical dry adhesive climbing with a 100× bodyweight payload
abstract
The ability to carry large payloads could greatly increase the applications of small, low cost climbing robots. We present a linear inchworm gait that uses a single powerful actuator to climb. To make this gait possible, we leveraged two new methods of achieving controllable, anisotropic adhesion (one method produces over 200 times stronger adhesion in the preferred direction). With controllable, anisotropic adhesion, the gait is robust to missed steps. In addition, the gait provides a stance in which the robot can rest without requiring power. An autonomous 9 gram robot is able to climb a smooth vertical surface at 3 mm/s, while hoisting more than a kilogram. We also present a scaled down version of the robot, which is considerably smaller than any previous dry adhesive climbing mechanism. It is actuated by externally powered Shape Memory Alloy, weighs 20 mg, and is capable of hoisting 500 mg. These climbers show that a large hoisting ability while climbing can be achieved using dry adhesives, and the presented concepts could aid in the development of autonomous, highly functional, small robots.
Elliot Wright Hawkes, David L. Christensen, Mark R. Cutkosky
ICRA2
2015 Grasping without squeezing: Shear adhesion gripper with fibrillar thin film
abstract
Nearly all robotic grippers have one trait in common: they grasp objects with normal forces, either directly, or indirectly through friction. This method of grasping is effective for objects small enough for a given gripper to partially encompass. However, to grasp larger objects, significant grip forces and a high coefficient of friction are required. We present a new grasping method for convex objects, using almost exclusively shear forces. We achieve shear grasping with a gripper that utilizes thin film gecko-inspired fibrillar adhesives that conform to the curvature of the object. We present a verified model for grasping a range of curvatures and results that demonstrate the thin film fibrillar adhesives' increased contact area on textured surfaces when loaded in shear. Finally, the gripper is implemented on a robotic arm and grasps a variety of convex objects (at rest and ballistic).
Elliot Wright Hawkes, David L. Christensen, Amy Kyungwon Han, Hao Jiang 0002, Mark R. Cutkosky
ICRA2
2015 Tactile sensing for gecko-inspired adhesion
abstract
Adhesion quality sensing is critical to the performance of any robot that utilizes gecko-inspired dry adhesives for climbing, perching, or grasping. We present a 3-axis tactile sensor designed for this application that demonstrates performance on par with a large commercial load cell while being compact enough to integrate into a robot foot. The sensor can measure spatially distributed force loads and demonstrates high sensitivity in both shear and normal components. Results showcase the sensor's ability to detect a variety of unreliable contact and loading conditions before the onset of adhesion failure.
Xin Alice Wu, Srinivasan A. Suresh, Hao Jiang 0002, John Ulmen, Elliot Wright Hawkes, David L. Christensen, Mark R. Cutkosky
IROS6
2014 Perching and vertical climbing: Design of a multimodal robot
abstract
We present a robot capable of both (1) dynamically perching onto smooth, flat surfaces from a ballistic trajectory and (2) successfully transitioning to a climbing gait. Merging these two modes of movement is achieved via a mechanism utilizing an opposed grip with directional adhesives. Critical design considerations include (a) climbing mechanism weight constraints, (b) suitable body geometry for climbing and (c) effects of impact dynamics. The robot uses a symmetric linkage and cam mechanism to load and detach the feet while climbing. The lengths of key parameters, including the distances between each the feet and the tail, are chosen based on the ratio of required preload force and detachment force for the adhesive mechanism.
Matthew A. Estrada, Elliot Wright Hawkes, David L. Christensen, Mark R. Cutkosky
ICRA3
2014 Modeling the dynamics of perching with opposed-grip mechanisms
abstract
Perching allows Micro Aerial Vehicles (MAVs) avoid the power costs and electrical and acoustic noise of sustained flight, for long-term surveillance and reconnaissance applications. This paper presents a dynamic model that clarifies the requirements for repeatable perching on walls and ceilings using an opposed-grip mechanism and dry adhesive technology. The model predicts success for perching over a range of initial conditions. The model also predicts the conditions under which other directional attachment technologies, such as microspines, will succeed. Experiments conducted using a launching mechanism for a range of different landing conditions confirm the predictions of the model and provide insight into future design improvements that are possible by modifying a few key damping and stiffness parameters.
Hao Jiang 0002, Morgan Pope, Elliot Wright Hawkes, David L. Christensen, Matthew A. Estrada, Andrew Parlier, Richie Tran, Mark R. Cutkosky
ICRA4
2014 A compliant underactuated hand with suction flow for underwater mobile manipulation
abstract
Fingertip suction is investigated using a compliant, underactuated, tendon-driven hand designed for underwater mobile manipulation. Tendon routing and joint stiffnesses are designed to provide ease of closure while maintaining finger rigidity, allowing the hand to pinch small objects, as well as secure large objects, without diminishing strength. While the hand is designed to grasp a range of objects, the addition of light suction flow to the fingertips is especially effective for small, low-friction (slippery) objects. Numerical simulations confirm that changing suction parameters can increase the object acquisition region, providing guidelines for future versions of the hand.
Hannah Stuart, Shiquan Wang, Bayard Gardineer, David L. Christensen, Daniel Aukes, Mark R. Cutkosky
ICRA4
2014 Time-delayed teleoperation for interaction with moving objects in space
abstract
Telerobotics has the potential to facilitate the repair of satellites in geosynchronous orbit by allowing human operators to interact naturally with remote objects. Time delays on the order of seconds make it difficult to provide immersive feedback to the operator, motivating the use of predictive visual and haptic displays of the robot and environment. A teleoperation framework developed for this scenario invokes a two-part environment model that predicts motion of objects in the environment, both in free space and during contact with the robot. When objects in the environment are in free space, a propagated model using delayed data provides predictive feedback to the operator. However, when the robot interacts with the environment, a local environment model that does not propagate delayed data is used. This reduces computational load and ensures stability during robot-environment interactions. Two experiments were carried out to test the teleoperation system. Results demonstrate the ability of the prediction algorithm to provide reliable feedback and improve operator performance before, during, and after robot-environment interactions.
Ryder C. Winck, Sean M. Sketch, Elliot Wright Hawkes, David L. Christensen, Hao Jiang 0002, Mark R. Cutkosky, Allison M. Okamura
ICRA4
2013 Mr-compatible biopsy needle with enhanced tip force sensing
abstract
We describe an instrumented biopsy needle that provides physicians the capability to sense interaction forces directly at the tip of the needle's inner stylet. The sensors consist of optical fiber Bragg gratings (FBGs), and are unaffected by electromagnetic fields; hence the needle is suitable for MR-guided procedures. In comparison to previous instrumented needles that measure bending strains, the new design has additional sensors and a series of micro-machined holes at the tip. The holes increase strain sensitivity, especially to axial forces, without significantly reducing the stiffness or strength. A comparison of the dynamic forces measured with the new needle and those obtained using a force/torque sensor at the needle base shows that the enhanced tip sensitivity is particularly noticeable when there is significant friction along the needle sleeve.
Santhi Elayaperumal, Jung Hwa Bae, David L. Christensen, Mark R. Cutkosky, Bruce Lewis Daniel, Richard J. Black, Joannes M. Costa, Fereydoun Faridian, Behzad Moslehi
World Haptics3
2013 Dynamic surface grasping with directional adhesion
abstract
Dynamic surface grasping is applicable to landing of micro air vehicles (MAVs) and to grappling objects in space. In both applications, the grasper must absorb the kinetic energy of a moving object and provide secure attachment to a surface using, for example, gecko-inspired directional adhesives. Functional principles of dynamic surface grasping are presented, and two prototype grasper designs are discussed. Computer simulation and physical testing confirms the expected relationships concerning (i) the alignment of the grasper at initial contact, (ii) the absorption of energy during collision and rebound, and (iii) the force limits of synthetic directional adhesives.
Elliot Wright Hawkes, David L. Christensen, Eric V. Eason, Matthew A. Estrada, Matthew Heverly, Evan Hilgemann, Hao Jiang 0002, Morgan Pope, Aaron Parness, Mark R. Cutkosky
IROS2