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Keyvan Majd

6 accepted papers

2026

Safe Model Predictive Diffusion with Shielding

ICRA 2026poster

Generating safe, kinodynamically feasible, and optimal trajectories for complex robotic systems is a central challenge in robotics. This paper presents Safe Model Predictive Diffusion (Safe MPD), a training-free diffusion planner that unifies a model-based diffusion framework with a safety shield to…

2025

Robot Behavior Adaptation in Physical Human-Robot Interactions Based on Learned Safety Preferences

IROS 2025

Robots that can physically interact with humans in a safe manner have the potential to revolutionize application domains like home assistance and nursing care. However, to become long-term companions, such robots must learn user-specific preferences and adapt their behaviors in real time. We propose

Cited by 0SourceScholar
2024

Repairing Neural Networks for Safety in Robotic Systems using Predictive Models

IROS 2024poster

This paper introduces a new method for safety-aware robot learning, focusing on repairing policies using predictive models. Our method combines behavioral cloning with neural network repair in a two-step supervised learning framework. It first learns a policy from expert demonstrations and then appl…

Cited by 0SourcecodeScholar
2022

Joint Communication and Motion Planning for Cobots

ICRA 2022poster

The increasing deployment of robots in co-working scenarios with humans has revealed complex safety and efficiency challenges in the computation of the robot behavior. Movement among humans is one of the most fundamental —and yet critical—problems in this frontier. While several approaches have addr…

Cited by 4SourceScholar
2022

Safe Robot Learning in Assistive Devices through Neural Network Repair

CoRL 2022poster

Assistive robotic devices are a particularly promising field of application for neural networks (NN) due to the need for personalization and hard-to-model human-machine interaction dynamics. However, NN based estimators and controllers may produce potentially unsafe outputs over previously unseen da…

Cited by 2SourcecodeScholar
2021

Safe Navigation in Human Occupied Environments Using Sampling and Control Barrier Functions

IROS 2021poster

Sampling-based methods such as Rapidly-exploring Random Trees (RRTs) have been widely used for generating motion paths for autonomous mobile systems. In this work, we extend time-based RRTs with Control Barrier Functions (CBFs) to generate, safe motion plans in dynamic environments with many pedestr…

Cited by 36SourceScholar