
معرفی
Kislaya Ravi is a Doctoral Candidate at the Technical University of Munich (TUM), affiliated with the Chair of Scientific Computing within the TUM School of Computation, Information and Technology. She holds an M.Sc. in Computational Science and Engineering from TUM and degrees in Mechanical Engineering from the Indian Institute of Technology (BHU). Her research focuses on multifidelity uncertainty quantification, Gaussian processes, sparse grids methods, machine learning, and stochastic optimization.
Education:
- M.Sc., Computational Science and Engineering, Technical University of Munich (202X)
- M.Tech., Machine Design, Indian Institute of Technology (BHU) (20XX)
- B.Tech., Mechanical Engineering, Indian Institute of Technology (BHU) (20XX)
Research Interests: Kislaya’s work bridges computational methods and stochastic systems, emphasizing efficient uncertainty quantification techniques in physics and engineering. She explores multifidelity approaches to enhance computational efficiency in complex simulations and data-driven modeling.
Teaching and Advising:
- Core instructor for Scientific Computing II and Algorithms for Uncertainty Quantification.
- Supervised multiple Master’s and Bachelor’s theses on topics like black-box optimization, surrogate modeling, and plasma instability analysis.
Publications highlight contributions to multi-fidelity Gaussian processes, No-U-Turn sampling, and kinetic modeling. Her work appears in journals like Machine Learning: Science and Technology and conferences such as SIAM CSE and MCQMC.
Kislaya Ravi در جاهای دیگر
جستجوهای مرتبط
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