Aligned with
This conference contributes to global sustainability by aligning its research discussions and academic sessions with key United Nations Sustainable Development Goals. It fosters knowledge exchange, innovation, and collaborative engagement.
SDG 9 — Industry, Innovation and Infrastructure
SDG 11 — Sustainable Cities and Communities
SDG 12 — Responsible Consumption and Production
SDG 17 — Partnerships for the Goals
This track focuses on the latest developments in fast numerical algorithms that enhance computational efficiency. Researchers are invited to present innovative techniques that significantly reduce computation time while maintaining accuracy.
This session explores the integration of high-performance computing with numerical methods to solve complex mathematical problems. Contributions that demonstrate the effectiveness of parallel processing and distributed computing are particularly welcome.
This track is dedicated to iterative methods designed for large-scale numerical problems, emphasizing convergence speed and stability. Participants are encouraged to share their findings on new algorithms and their applications in various fields.
This session highlights advancements in direct solvers specifically tailored for sparse matrix systems. Papers discussing novel approaches that improve efficiency and scalability in solving large sparse linear systems are encouraged.
This track delves into Krylov subspace methods, focusing on their theoretical foundations and practical applications. Researchers are invited to submit papers that explore new variants and their performance in real-world scenarios.
This session examines various preconditioning techniques that enhance the performance of iterative solvers. Contributions that demonstrate the impact of preconditioning on convergence rates and computational efficiency are highly sought after.
This track showcases innovations in multigrid methods, emphasizing their application to solve partial differential equations efficiently. Papers that present new algorithms or improvements to existing methods are encouraged.
This session focuses on parallel computing strategies that enhance numerical simulations across various disciplines. Researchers are invited to share their experiences and results from implementing parallel algorithms in real-world applications.
This track explores the role of GPU acceleration in enhancing the performance of numerical methods. Contributions that highlight successful implementations and performance comparisons with traditional CPU-based approaches are welcome.
This session addresses the critical aspects of error analysis and numerical stability in computational algorithms. Papers that investigate the sources of error and propose methods to mitigate them are encouraged.
This track focuses on optimization algorithms and their applications within the realm of applied mathematics. Researchers are invited to present novel optimization techniques that address complex real-world problems.
SNRI maintains uninterrupted academic processes in the current global situation. Participants can engage and publish through online and blended conference formats.
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