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Code for federated training of segmentation model

Project
20044 ASSIST
Type
New library
Description

Code for federated training of a segmentation model through the federated learning framework FEDn

Contact
Mattias Åkesson, Scaleout Systems
Email
mattias@scaleoutsystems.com
Research area(s)
Federated learning, medical imaging, radiotherapy
Technical features

A 3D U-Net is trained through federated learning using the FEDn framework. An arbitrary number of clients is supported. Model performance can be monitored using Scaleout Studio.

Integration constraints

The segmentation model expects four MR volumes per patient, and ground truth segmentations for brain tumor and brain stem. The code is written in Python.

Targeted customer(s)

Anyone working with federated learning or radiotherapy

Conditions for reuse

See Github repository

Confidentiality
Public
Publication date
09-09-2024
Involved partners
Linköping University (SWE)
Scaleoutsystems (SWE)

Links