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- BFA Graphic Design, Painting, Printmaking, Sculpture Thesis Exhibitions11:00 am
- MFA Painting Thesis Exhibition11:00 am
- MechE Seminar Series: J. Gregory McDaniel11:00 am
- FDD Seminar: Get Unstuck: Using Design Thinking to Tackle Challenges in Academic Medicine12:00 pm
- ECE PhD Prospectus Defense Anthony Manni1:00 pm
- ECE PhD Prospectus Defense: Dilara Caygara1:00 pm
- MechE Seminar Series: Joerg G. Werner2:00 pm
- Innovator of the Year: Translating Bioengineering Discoveries into Real-World Impact3:00 pm
- [NIH/NIAID] Advancing Biomedical Careers: Strategies for successful F and K Awards10:00 am
- MechE Seminar Series: J. William Boley11:00 am
- Spring 2026 New Realities, New Responses: Conversations on Higher Education12:00 pm
- MechE Seminar Series: Emma Lejeune2:00 pm
- Starting Your Own Firm: A Practical Guide to Solo & Small Firm Success5:00 pm
- Elizabeth Keckley & Mary Lincoln: In Black & White6:00 pm
MechE Seminar Series: Emma Lejeune
Speaker: Emma Lejeune
Title: Reproducibility first computational mechanics
Abstract: Large datasets combined with modern computational methods offer unprecedented opportunities to model, analyze, and understand complex systems. In computational mechanics and mechanobiology, the past decade has seen rapid growth in data science and machine learning applications. Yet a fundamental question remains: how do we know when a computational method is effective, generalizable, and reproducible? In this talk, I will highlight recent work organized around two complementary components. First, I will describe our efforts to construct benchmark datasets for the solid mechanics community, beginning with Mechanical MNIST and extending to large-scale simulations of deformation and fracture, and introduce recent validation studies assessing the ability of large language models to generate and verify finite element analysis code. Second, I will discuss our work developing open-source biomedical image analysis tools that make the research pipeline more reproducible and extract richer information from experimental data. Throughout, I will emphasize open-access datasets, open-source software, and community engagement as the foundation for reliable and reproducible computational science.
About the Speaker: Dr. Emma Lejeune is an Assistant Professor of Mechanical Engineering at Boston University. She earned her Ph.D. in Computational Mechanics from Stanford University in 2018 and has been at BU since 2020. Her research sits at the intersection of computational mechanics, scientific machine learning, biomechanics, and mechanobiology, developing benchmark datasets, open-source software, and validation frameworks that help the community evaluate whether methods are truly reliable and reproducible.
| When | 2:00 pm - 3:00 pm on 6 May 2026 |
|---|---|
| Building | ENG 245 110 Cummington Mall |