Cover Image for AI/ML for Computational Hydraulics Modeling
Cover Image for AI/ML for Computational Hydraulics Modeling
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AI/ML for Computational Hydraulics Modeling

Hosted by Ali Mahdavi & Prof. Liu
Virtual
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​AI/ML for Computational Hydraulics Modeling From workflow automation to the promise (and limits) of AI as a hydraulics model

​Water resources engineering is increasingly touched by AI and machine learning — but not always in the way people expect. This session covers two distinct roles AI/ML can play in computational hydraulics: workflow automation through agentic tool calling, and AI as a model itself through surrogate modeling and scientific machine learning (SciML).

​Prof. Liu will also address a question a lot of practitioners have quietly wondered about: can AI actually replace physics-based solvers like HEC-RAS or SRH-2D — or does it play a fundamentally different role?

​Speaker: Prof. Xiaofeng Liu, PhD, PE, Professor of Civil and Environmental Engineering, Penn State University

​Hosted by the Digital Water Collective — a practitioner-led community for water engineers building with AI and automation.

​Join the community: linkedin.com/groups/21250012

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