About

Astrid Rubiano is a researcher at the forefront of soft robotics and intelligent prosthetics, specializing in the integration of smart materials, artificial intelligence, and biomechanics to create next-generation assistive devices. Her work centers on developing under-actuated robotic hands and fingers that mimic human dexterity, with a particular focus on soft actuation mechanisms and artificial muscles. Rubiano’s most cited paper, “Smart Materials and Their Application in Robotic Hand Systems: A State of the Art” (2021, 15 citations), provides a comprehensive review of how shape-memory alloys and polymers are revolutionizing medical robotics. She introduced the innovative “Soft Driving Epicyclical Mechanism for Robotic Finger” (2019, 8 citations), a novel approach to achieving dexterous manipulation without rigid components. Her contributions extend to computer vision, where she applies deep learning and Hopfield networks for object recognition and grasping algorithms, as seen in her 2020 work on Faster R-CNN-based gripping. Rubiano also developed the hybrid kinematic model for the ProMain-I prosthetic hand (2015), bridging theoretical modeling with experimental validation. With a growing body of work spanning morphological optimization, path planning in virtual environments, and mathematical modeling of manipulators, Rubiano is shaping the future of wearable robotics—making human-like robotic assistance more accessible, adaptive, and intelligent.

Research Focus

Key Achievements

4
H-Index
11
Papers
49
Total Citations
4
Avg Citations/Paper
🏆 Most Cited Paper
Smart Materials and Their Application in Robotic Hand Systems: A State of the Art
15 citations · 2021
📈 Most Prolific Year: 2019 (3 Papers)
🤝 Key Collaborators: 10
🏛 Institutions: Military University Nueva Granada, Université Paris Cité, Université Paris Nanterre, Universidad Cooperativa de Colombia

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 16 days ago