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Report abuseπ Professor, Electrical and Computer Engineering β University of Iowa
π *Software Engineer β’ Open Science Advocate β’ Research Problem Solver *
π‘ Medical Image Processing β’ HPC β’ Software Engineering for Clinical AI
I am a professor and research software engineer whose passion lies in accelerating scientific discovery through reproducible, scalable, and well-engineered computational methods.
My work bridges the worlds of biomedical imaging, machine learning, software engineering, and high-performance computing (HPC) to create sustainable software infrastructures for translational research.
I'm a passionate software developer dedicated to creating innovative solutions and contributing to open-source projects. I love tackling complex problems and building tools that make a difference.
My research aims to accelerate discovery through efficient analysis of large-scale, heterogeneous, multi-site biomedical datasets.
To achieve this, I lead efforts that combine:
I direct interdisciplinary projects that transform modern HPC resources into collaborative discovery platforms spanning many-core systems, distributed storage, and centralized repositories.
| Role | Project | Description |
|---|---|---|
| π§© President | Insight Software Consortium | Oversees ITK β the leading open-source toolkit for medical image analysis, advancing software education and sustainability. |
| 𧬠Software Engineering Lead | NA-MIC | Contributing to one of eight NIH National Centers for Biomedical Computing to promote open, interoperable imaging tools. |
| π§ Executive Committee Member | PREDICT-HD (completed) | 28-site, 11-year longitudinal Huntingtonβs Disease study that tracked 1200+ subjects β led informatics and imaging infrastructure. |
| π§ͺ Co-PI | NeuroNEXT (completed) | Data coordinating center for a 27-site NIH clinical trial network β developed multi-modal data capture and QC systems. |
| π Steering Committee & Imaging Lead | TRACK-HD (completed) | International 4-site imaging study β architected automated data collection and harmonization pipelines. |
The future of biomedical discovery depends on our ability to efficiently leverage HPC and informatics across disciplines.
My work demonstrates how rigorous software engineering practices and HPC infrastructures enable reproducible analysis at scale.
To analyze the massive PREDICT-HD dataset (1346 subjects, 3713 sessions, 10,000+ images), we:
These efforts led to:
| Domain | Tools & Technologies |
|---|---|
| Programming | C++, Python, Bash, Java, CMake |
| Frameworks | Qt6, PyTorch, MONAI, ITK, SimpleITK |
| DevOps & CI/CD | GitHub Actions, GitLab CI, Docker, act, clang-tidy |
| Visualization | matplotlib, napari, ParaView, 3D Slicer |
| Compute Environments | Slurm, NFS, VMware, macOS ARM, Linux HPC |
| Version Control | Git, Git LFS, pre-commit hooks, semantic versioning |
| Repository | Focus | Highlights |
|---|---|---|
| ITK | Core C++ image analysis library | 1st of 83 top contributors (ITK v4), CI modernization |
| SimpleITK | Simplified ITK for rapid prototyping | Multi-language bindings via SWIG |
| BRAINSTools | Neuroimaging pipeline suite | Atlas building, DICOM I/O, quantitative MRI |
| PythonQt | Qt β Python bridge | Migration to Qt6 + CMake modern build system |
| NeuroPredAI | Clinical AI model development | MONAI-based GPU training for brain segmentation |
My publication record reflects a deep integration of software engineering, imaging science, and AI for clinical impact.
π Google Scholar Profile
π§© University of Iowa Faculty Page
π‘ Iβm always open to collaborations that advance scientific software sustainability and reproducibility.
π« Contact
Forked from Slicer/Slicer
Multi-platform, free open source software for visualization and image computing.
C++ 1
A suite of tools for medical image processing focused on brain analysis
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