Papers

6

Total Citations

46

H-Index

3

About

Kshitish Kumar Dash is a robotics and intelligent systems researcher whose work centers on solving one of the most fundamental challenges in robotic automation: the inverse kinematics problem. His research consistently applies computational intelligence techniques — including neural networks, neuro-fuzzy systems, and soft computing methodologies — to determine optimal joint configurations for complex robotic manipulators, particularly 6-degree-of-freedom industrial robots. Dash's most impactful contribution, his 2011 neural network-based solution to the inverse kinematic problem (21 citations), demonstrated how machine learning approaches could overcome the inherent non-uniqueness and computational complexity that plague traditional analytical methods, especially as robotic systems scale in joint complexity. Complementing this, his work on heuristics-based multi-robot task allocation using genetic algorithms (10 citations) extended his expertise into cooperative robotics, addressing deployment and scheduling challenges in heterogeneous multi-robot environments. Throughout the late 2010s, Dash continued refining inverse kinematics solutions through neuro-fuzzy integration and broader soft computing frameworks, building a cohesive and progressive body of research. His collective contributions offer practical, intelligent alternatives to classical robotic control methods, making his work particularly valuable to researchers and engineers designing next-generation industrial automation systems.

Research Focus

Key Achievements

3
H-Index
6
Papers
46
Total Citations
8
Avg Citations/Paper
🏆 Most Cited Paper
A neural network based inverse kinematic problem
21 citations · 2011
📈 Most Prolific Year: 2019 (3 Papers)
🤝 Key Collaborators: 7
🏛 Institutions: Indira Gandhi Institute of Technology, GIET University, Indian Institute of Technology Bhubaneswar

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 14 days ago