Yaoming Zhuang
Papers
4
Total Citations
26
H-Index
3
About
Yaoming Zhuang’s research lies at the intersection of artificial intelligence, robotics, and wireless sensor networks, with a focus on solving real-world monitoring and navigation challenges. His most impactful work introduces a deep learning framework using a structured space model to detect small objects in complex underwater environments—a critical tool for marine ecosystem monitoring that balances accuracy with real-time performance, earning 13 citations since 2025. In the domain of wireless sensor and robot networks (WSRNs), Zhuang has made foundational contributions to event-driven deployment and coverage repair. His 2019 paper on mobile robot-based repair strategies for event coverage holes, along with his 2020 collaborative neural network algorithm for adaptive sensor deployment, each garnered 5 citations, addressing the need for flexible surveillance in constrained, hazardous settings. More recently, Zhuang tackled autonomous patrol robot navigation with an improved A* path planning method (2024), enhancing multi-point route efficiency. Collectively, his work demonstrates a sustained commitment to bridging algorithmic innovation with practical deployment in dynamic environments, establishing him as a key contributor to intelligent monitoring and robotic systems.
Research Focus
Key Achievements
Top Papers
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- 4Research on Path Planning Method for Autonomous Patrol Robots3 citations · 2024