Papers
20
Total Citations
540
H-Index
10
About
Demetri Terzopoulos is a pioneering researcher whose work spans computer vision, artificial life, robotics, and physically-based simulation. Best known for foundational contributions to active vision and autonomous agents, Terzopoulos introduced the influential *animat vision* paradigm, which leverages artificial animals situated in simulated environments as a software-driven alternative to traditional hardware-based vision systems — a paper that has garnered over 112 citations. His survey on deep learning-based image segmentation (143 citations) has become an essential reference for researchers tackling scene understanding, medical imaging, and augmented reality applications. Beyond vision, Terzopoulos has made significant strides in robotics and physical interaction, developing frameworks for inferring forces and human utilities from video (83 citations), and advancing deformable object manipulation through novel approaches like neural force manifolds and real-time DLO detection. His work on humanoid robot balance recovery and hybrid deliberative-reactive control architectures further demonstrates his broad commitment to intelligent autonomous systems. With contributions spanning nearly three decades — from real-time computer vision in 1995 to sim-to-real robotic manipulation in 2024 — Terzopoulos remains a deeply influential figure whose interdisciplinary research continues to shape how machines perceive, learn from, and physically interact with the world.
Research Focus
Key Achievements
Top Papers
- 1Image Segmentation Using Deep Learning: A Survey143 citations · 2021
- 2Animat vision: Active vision in artificial animals112 citations · 2002
- 3Inferring Forces and Learning Human Utilities from Videos83 citations · 2016
- 4Real-time computer vision55 citations · 1995
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- 7Intelligent perception and control for space robotics13 citations · 2007
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- 9Learning Arm Motion Strategies for Balance Recovery of Humanoid Robots11 citations · 2010
- 10Autonomous reactive control for simulated humanoids10 citations · 2004