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Daniel I Goldman

20 accepted papers

2025

Addition of a Peristaltic Wave Improves Multi-Legged Locomotion Performance on Complex Terrains

ICRA 2025

Characterized by their elongate bodies and relatively simple legs, multi-legged robots have the potential to locomote through complex terrains for applications such as search-and-rescue and terrain inspection. Prior work has developed effective and reliable locomotion strategies for multilegged robo

Cited by 0SourceScholar
2025

AquaMILR+: Design of an Untethered Limbless Robot for Complex Aquatic Terrain Navigation

ICRA 2025

This paper presents AquaMILR+, an untethered limbless robot designed for agile navigation in complex aquatic environments. The robot features a bilateral actuation mechanism that models musculoskeletal actuation in many anguilliform swimming organisms which propagates a moving wave from head to tail

Cited by 4SourceScholar
2025

AquaMILR: Mechanical Intelligence Simplifies Control of Undulatory Robots in Cluttered Fluid Environments

ICRA 2025

While undulatory swimming of elongate limbless robots has been extensively studied in open hydrodynamic environments, less research has been focused on limbless locomotion in complex, cluttered aquatic environments. Motivated by the concept of mechanical intelligence [1], where controls for obstacle

Cited by 3SourceScholar
2025

Effective Self-Righting Strategies for Elongate Multi-Legged Robots

ICRA 2025

Centipede-like robots offer an effective and robust solution to navigation over complex terrain with minimal sensing. However, when climbing over obstacles, such multi-legged robots often elevate their center-of-mass into unstable configurations, where even moderate terrain uncertainty can cause tip

Cited by 2SourceScholar
2025

Steering Elongate Multi-legged Robots by Modulating Body Undulation Waves

IROS 2025

Centipedes exhibit great maneuverability in diverse environments due to their many legs and body-driven control. By leveraging similar morphologies and control strategies, their robotic counterparts also demonstrate effective terrestrial locomotion. However, the success of these multi-legged robots

Cited by 3SourceScholar
2024

Anisotropic body compliance facilitates robotic sidewinding in complex environments

ICRA 2024poster

Sidewinding, a locomotion strategy characterized by the coordination of lateral and vertical body undulations, is frequently observed in rattlesnakes and has been successfully implemented by limbless robotic systems for effective movement across diverse terrestrial terrains. However, the integration…

Cited by 6SourceScholar
2024

Learning manipulation of steep granular slopes for fast Mini Rover turning

ICRA 2024poster

Future planetary exploration missions will require reaching challenging regions such as craters and steep slopes. Such regions are ubiquitous and present science-rich targets potentially containing information regarding the planet’s internal structure. Steep slopes consisting of low-cohesion regolit…

Cited by 2SourceScholar
2022

Construction and Excavation by Collaborative Double-Tailed SAW Robots

RA-L 2022

We describe a minimalistic robot mechanism that is capable of many construction behaviors in dry granular material including locomotion, climbing, leveling, subtraction, addition, transport, and burrowing. The design extends upon a single-actuator wave mechanism with the insight that the tails can b

Cited by 7SourceScholar
2022

Generalized Omega Turn Gait Enables Agile Limbless Robot Turning in Complex Environments

ICRA 2022poster

Reorientation (turning in plane) plays a critical role for all robots in any field application, especially those that in confined spaces. While important, reorientation remains a relatively unstudied problem for robots, including limbless mechanisms, often called snake robots. Instead of looking at…

Cited by 11SourceScholar
2021

Reconstruction of Backbone Curves for Snake Robots

RA-L 2021

Snake robots composed of alternating single-axis pitch and yaw joints have many internal degrees of freedom, which make them capable of versatile three-dimensional locomotion. In motion planning process, snake robot motions are often designed kinematically by a chronological sequence of continuous b

Cited by 19SourceScholar
2020

Optimizing coordinate choice for locomotion systems with toroidal shape spaces

IROS 2020poster

In a geometric mechanics framework, the configuration space is decomposed into a shape space and a position space. The internal motion of the system is prescribed by a closed loop in the shape space, which causes net motion in the position space. If the shape space is a simply connected domain in an…

Cited by 9SourceScholar
2020

The Omega Turn: A Biologically-Inspired Turning Strategy for Elongated Limbless Robots

IROS 2020poster

Snake robots have the potential to locomote through tightly packed spaces, but turning effectively within unmodelled and unsensed environments remains challenging. Inspired by a behavior observed in the tiny nematode worm C. elegans, we propose a novel in-place turning gait for elongated limbless ro…

Cited by 10SourceScholar
2018

Soft Robotic Burrowing Device with Tip-Extension and Granular Fluidization

IROS 2018poster

Mobile robots of all shapes and sizes move through the air, water, and over ground. However, few robots can move through the ground. Not only are the forces resisting movement much greater than in air or water, but the interaction forces are more complicated. Here we propose a soft robotic device th…

Cited by 62SourceScholar
2017

A stability region criterion for flat-footed bipedal walking on deformable granular terrain

IROS 2017poster

Achieving stable bipedal robotic walking on deformable terrain is an open and challenging problem at the intersection of robotics and physics. Ground deformation introduces underactuation; uncertainty in terrain dynamics further complicates dynamical modeling and control methods. This work provides…

Cited by 33SourceScholar
2017

Learning to jump in granular media: Unifying optimal control synthesis with Gaussian process-based regression

ICRA 2017poster

The varied and complex dynamics of deformable terrain are significant impediments toward real-world viability of locomotive robotics, particularly for legged machines. We explore vertical jumping on granular media (GM) as a model task for legged locomotion on uncharacterized deformable terrain. By i…

Cited by 26SourceScholar
2016

Geometric Swimming on a Granular Surface

RSS 2016poster

Snake robots can contact their environments along their whole bodies. This distributed contact makes them versatile and robust locomotors, but also makes controlling them a chal- lenging problem involving high-dimensional configuration spaces, with no direct way to break their motion down into “dr…

Cited by 51SourcePDFScholar
2016

Tractable terrain-aware motion planning on granular media: An impulsive jumping study

IROS 2016poster

This work demonstrates fast motion planning for robot locomotion that is optimized for terrain with complex dynamics, specifically, rapid penetration of granular media. Gait planning is critical for many legged locomotion control approaches, but they typically assume rigid ground contact. We aim to…

Cited by 52SourceScholar
2015

Robot-inspired biology: The compound-wave control template

ICRA 2015poster

Biologically inspired robots perform many interesting and useful behaviors, but to effectively emulate their biological counterparts, robots often need to possess many degrees of freedom, complicating their mechanical design and making it difficult to apply standard control and motion planning strat…

Cited by 11SourceScholar