Yelin Jiang
Papers
3
Total Citations
23
H-Index
2
About
Yelin Jiang is a rising force in bio-inspired robotics, specializing in the design and control of musculoskeletal robots driven by pneumatic artificial muscles. Their research focuses on bridging the gap between biological neural control and robotic actuation, particularly by implementing reflex pathways that enable rapid, autonomous responses to disturbances. In their most cited work (2023, 16 citations), Jiang introduced a framework for embedding basic reflex functions into musculoskeletal robots, addressing critical delays in muscle output that hinder stability in dynamic environments. This work lays the foundation for more resilient, animal-like robotic movement. Expanding on this, Jiang’s 2024 study on a bipedal jumping robot (5 citations) integrated the spring-loaded inverted pendulum model with musculoskeletal hardware, demonstrating sequential jumps despite mechanical discrepancies between model and robot—a key step toward agile locomotion. Their ongoing investigation into proprioceptive sensory reflex pathways for arm stabilization (2024, 2 citations) explores heteronymous spinal pathways, offering insights into how multiple reflex loops coordinate to stabilize perturbed limbs. By combining insights from neuroscience with practical robotic design, Jiang is advancing the frontier of robots that move, react, and adapt like living creatures.
Research Focus
Key Achievements
Top Papers
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