Zhenlan Li

Jilin University

Papers

4

Total Citations

132

H-Index

4

About

Zhenlan Li is a leading researcher in neurorehabilitation engineering, specializing in the intersection of robotics, neural signal processing, and motor recovery for patients with neurological disorders. Her work centers on developing intelligent rehabilitation systems for stroke and multiple sclerosis patients, with a particular focus on restoring hand and finger function. Li’s major contributions include demonstrating through a randomized controlled trial (50 citations) that task-oriented training assisted by a force-feedback hand rehabilitation robot significantly improves finger grasping function in stroke patients with hemiplegia—a condition affecting over 80% of stroke survivors. She has also advanced the field of myoelectric control by combining feature selection with incremental transfer learning (30 citations), solving the critical problem of electrode shift that degrades EMG pattern recognition in repeated uses of prostheses and rehab robots. Additionally, Li has pioneered a rope-driven flexible hand rehabilitation robot integrated with EEG signal analysis (15 citations), enabling brain-machine interface-based therapy. Her comprehensive review on multiple sclerosis rehabilitation (37 citations) further underscores her commitment to addressing complex neurological deficits. With over 130 total citations, Li’s work bridges robotics, machine learning, and clinical practice, offering tangible solutions for restoring independence in daily living activities.

Research Focus

Key Achievements

4
H-Index
4
Papers
132
Total Citations
33
Avg Citations/Paper
🏆 Most Cited Paper
Effect of task-oriented training assisted by force feedback hand rehabilitation robot on finger grasping function in stroke patients with hemiplegia: a randomised controlled trial
50 citations · 2024
📈 Most Prolific Year: 2024 (1 Papers)
🤝 Key Collaborators: 15
🏛 Institutions: Jilin University

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 13 days ago