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Kevin Tracy

7 accepted papers

2026

The Trajectory Bundle Method: Unifying Sequential-Convex Programming and Sampling-Based Trajectory Optimization

ICRA 2026poster

We present a unified framework for solving trajectory optimization problems in a derivative-free manner through the use of sequential convex programming. Traditionally, nonconvex optimization problems are solved by forming and solving a sequence of convex optimization problems, where the cost and co…

2025

Efficient Online Learning of Contact Force Models for Connector Insertion

ICRA 2025

Contact-rich manipulation tasks with stiff frictional elements, like connector insertion, are difficult to model with rigid-body simulators. In this work, we propose a new approach for modeling these environments by learning a quasistatic contact force model instead of a full simulator. Using a feat

Cited by 6SourcecodeScholar
2024

ReLU-QP: A GPU-Accelerated Quadratic Programming Solver for Model-Predictive Control

ICRA 2024poster

We present ReLU-QP, a GPU-accelerated solver for quadratic programs (QPs) that is capable of solving high-dimensional control problems at real-time rates. ReLU-QP is derived by exactly reformulating the Alternating Direction Method of Multipliers (ADMM) algorithm for solving QPs as a deep, weight-ti…

Cited by 15SourcecodeScholar
2022

Data-Efficient Model Learning for Control with Jacobian-Regularized Dynamic-Mode Decomposition

CoRL 2022poster

We present a data-efficient algorithm for learning models for model-predictive control (MPC). Our approach, Jacobian-Regularized Dynamic-Mode Decomposition (JDMD), offers improved sample efficiency over traditional Koopman approaches based on Dynamic-Mode Decomposition (DMD) by leveraging Jacobian i…

Cited by 7SourcecodeScholar
2021

ALTRO-C: A Fast Solver for Conic Model-Predictive Control

ICRA 2021poster

Model-predictive control (MPC) is an increasingly popular method for controlling complex robotic systems in which optimal control problems are solved on board the robot at real-time rates. However, successful application of MPC depends critically on the performance of the algorithms used to solve th…

Cited by 27SourceScholar