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Russell Buchanan

8 accepted papers

2026

Efficient Learning of Object Placement With Intra-Category Transfer

RA-L 2026

Efficient learning from demonstration for long horizon tasks remains an open challenge in robotics. While significant effort has been directed toward learning trajectories, a recent resurgence of object-centric approaches has demonstrated improved sample efficiency, enabling transferable robotic ski

Cited by 1SourceScholar
2026

Efficient Learning of Object Placement with Intra-Category Transfer

ICRA 2026poster

Efficient learning from demonstration for long-horizon tasks remains an open challenge in robotics. While significant effort has been directed toward learning trajectories, a recent resurgence of object-centric approaches has demonstrated improved sample efficiency, enabling transferable robotic ski…

2024

Online Estimation of Articulated Objects with Factor Graphs using Vision and Proprioceptive Sensing

ICRA 2024poster

From dishwashers to cabinets, humans interact with articulated objects every day, and for a robot to assist in common manipulation tasks, it must learn a representation of articulation. Recent deep learning methods can provide powerful vision-based priors on the affordance of articulated objects fro…

Cited by 9SourcecodeScholar
2023

Deep IMU Bias Inference for Robust Visual-Inertial Odometry With Factor Graphs

RA-L 2023

Visual Inertial Odometry (VIO) is one of the most established state estimation methods for mobile platforms. However, when visual tracking fails, VIO algorithms quickly diverge due to rapid error accumulation during inertial data integration. This error is typically modeled as a combination of addit

Cited by 48SourceScholar
2022

Unsupervised Learning of Terrain Representations for Haptic Monte Carlo Localization

ICRA 2022poster

Haptic sensing has recently been used effectively for legged robot localization in extreme scenarios where cam-eras and LiDAR might fail, such as dusty mines and foggy sewers. However, existing haptic sensing mainly relies on supervised classification, with training and evaluation executed over expl…

Cited by 5SourceScholar
2021

Learning Inertial Odometry for Dynamic Legged Robot State Estimation

CoRL 2021poster

This paper introduces a novel proprioceptive state estimator for legged robots based on a learned displacement measurement from IMU data. Recent research in pedestrian tracking has shown that motion can be inferred from inertial data using convolutional neural networks. A learned inertial displaceme…

Cited by 41SourceScholar
2020

Haptic Sequential Monte Carlo Localization for Quadrupedal Locomotion in Vision-Denied Scenarios

IROS 2020poster

Continuous robot operation in extreme scenarios such as underground mines or sewers is difficult because exteroceptive sensors may fail due to fog, darkness, dirt or malfunction. So as to enable autonomous navigation in these kinds of situations, we have developed a type of proprioceptive localizati…

Cited by 5SourceScholar
2019

Walking Posture Adaptation for Legged Robot Navigation in Confined Spaces

RA-L 2019

Legged robots have the ability to adapt their walking posture to navigate confined spaces due to their high degrees of freedom. However, this has not been exploited in most common multilegged platforms. This letter presents a deformable bounding box abstraction of the robot model, with accompanying

Cited by 53SourceScholar