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Related Concept Videos

Relative Motion Analysis using Rotating Axes-Problem Solving01:29

Relative Motion Analysis using Rotating Axes-Problem Solving

783
Consider a crane whose telescopic boom rotates with an angular velocity of 0.04 rad/s and angular acceleration of 0.02 rad/s2. Along with the rotation, the boom also extends linearly with a uniform speed of 5 m/s. The extension of the boom is measured at point D, which is measured with respect to the fixed point C on the other end of the boom. For the given instant, the distance between points C and D is 60 meters.
Here, in order to determine the magnitude of velocity and acceleration for point...
783

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Related Experiment Video

Updated: Feb 19, 2026

Haptic/Graphic Rehabilitation: Integrating a Robot into a Virtual Environment Library and Applying it to Stroke Therapy
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Transformer-based human-motion forecasting coupled with safe reinforcement learning for telepresence robot

Heba G Mohamed1, Muhammad Nasir Khan2, Fawad Naseer3,4

  • 1Department of Electrical Engineering, College of Engineering, Princess Nourah Bint Abdulrahman University, Riyadh, Saudi Arabia.

Frontiers in Neurorobotics
|February 18, 2026
PubMed
Summary

This study introduces an anticipatory, safety-aware framework for telepresence robots (TPRs) to navigate hospitals safely. The new approach significantly reduces collisions and near-miss events by predicting human motion, enhancing robot safety in crowded environments.

Keywords:
anticipatory perceptioncontrol barrier functions (CBF)crowd-aware navigationhealthcare environmentshuman–robot co-navigationsafe reinforcement learningtelepresence robots (TPRs)transformer-based motion forecasting

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Area of Science:

  • Robotics
  • Artificial Intelligence
  • Human-Robot Interaction

Background:

  • Telepresence robots (TPRs) require safe co-navigation with humans in confined hospital settings.
  • Current methods often react to human motion instead of anticipating it, limiting robustness in busy areas.
  • Integrating short-horizon human-motion forecasting with safety-constrained control is crucial for improving TPR navigation.

Purpose of the Study:

  • To evaluate an anticipatory, safety-aware co-navigation framework for TPRs in hospital environments.
  • To address the gap in integrating human-motion forecasting with safety-constrained control for enhanced robot robustness.
  • To improve the safety and reliability of TPRs in human-dense clinical layouts.

Main Methods:

  • Developed a modular framework combining a transformer-based forecaster for multi-agent trajectory prediction with a safe reinforcement learning (RL) controller.
  • Integrated predicted pedestrian states into the RL policy as risk-aware occupancy features.
  • Enforced safety using constrained policy optimization and a control barrier function (CBF) shield to filter unsafe actions.
  • Benchmarked against social-force/DWA, attention-based crowd-RL, and MPC+CBF across hospital-like corridor and ward benchmarks.

Main Results:

  • The proposed method improved task success by 21.6% and reduced collisions by 47.3% compared to the best baseline.
  • Median minimum human-robot clearance increased by 0.19 m, and near-miss events decreased by 38.5%.
  • Time-to-goal was comparable to MPC+CBF with zero CBF violations, while ablations showed forecasting and CBF shield were critical for performance.

Conclusions:

  • Anticipatory perception coupled with Safe-RL significantly enhances telepresence co-navigation safety and reliability in hospitals without compromising efficiency.
  • The modular framework allows for flexibility in choosing alternative forecasters and safety shields.
  • Future work includes exploring on-device adaptation and incorporating operator intent for live hospital workflow evaluations.