Papers

10

Total Citations

681

H-Index

7

About

Moncef Gabbouj is a prominent researcher whose work spans robotics, computer vision, deep learning, and autonomous systems, with particular emphasis on real-world applications that push the boundaries of intelligent machines. He is perhaps best known for his influential contributions to multi-robot search and rescue systems, where his 2020 paper on collaborative multi-robot coordination, perception, and active vision has garnered an impressive 485 citations, establishing him as a leading voice in autonomous rescue robotics. His research extends into urban 3D scene understanding, including semantic segmentation of street-level imagery and LiDAR data for autonomous vehicles and drones. Gabbouj has also advanced the field of camera calibration through deep learning approaches, including novel methods for predicting distortion parameters from single images using synthetic training data. His development of the OpenDR toolkit reflects a commitment to making high-performance, resource-efficient deep learning accessible for robotics practitioners. Additional contributions include water segmentation for unmanned surface vehicles, speech command recognition in constrained environments, and automated biological image analysis. Across these diverse domains, Gabbouj's work consistently bridges foundational research and practical deployment, making him a significant figure in applied artificial intelligence and autonomous systems research.

Research Focus

Key Achievements

7
H-Index
10
Papers
681
Total Citations
68
Avg Citations/Paper
🏆 Most Cited Paper
Collaborative Multi-Robot Search and Rescue: Planning, Coordination, Perception, and Active Vision
485 citations · 2020
📈 Most Prolific Year: 2020 (3 Papers)
🤝 Key Collaborators: 52
🏛 Institutions: Tampere University, Tampere University of Applied Sciences

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 14 days ago