William Yue

Moscow Institute of Thermal Technology

Papers

1

Total Citations

2

H-Index

1

About

William Yue is a rising researcher in robotics and state estimation, whose work tackles a fundamental challenge: making particle filters viable in high-dimensional spaces. His most-cited paper, "Resampling-free Particle Filters in High-dimensions" (2024), addresses a critical bottleneck—the curse of dimensionality that plagues traditional particle filters in robotic applications. By proposing a resampling-free approach, Yue offers a pathway to robust, non-parametric state estimation without the computational collapse typical in high-dimensional settings. While his citation count is still growing, this work signals a significant contribution to the field, bridging theory and practical robotics. Yue’s research sits at the intersection of probabilistic robotics, sensor fusion, and autonomous systems, with implications for safety-critical applications like autonomous navigation and manipulation. His focus on algorithmic efficiency and scalability marks him as a promising voice in the next generation of estimation theorists, pushing the boundaries of what particle filters can achieve in real-world, high-stakes environments.

Research Focus

Key Achievements

1
H-Index
1
Papers
2
Total Citations
2
Avg Citations/Paper
🏆 Most Cited Paper
Resampling-free Particle Filters in High-dimensions
2 citations · 2024
📈 Most Prolific Year: 2024 (1 Papers)
🤝 Key Collaborators: 5
🏛 Institutions: Moscow Institute of Thermal Technology

Top Papers

  1. 1

Key Collaborators

Contact & Links

Available for collaboration
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