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papersSEP 10 04:00 UTC

LightMedSeg-ISLES: stroke lesion segmentation with 81x fewer parameters than nnU-Net

A new arXiv paper introduces LightMedSeg-ISLES, a 1.26-million-parameter pipeline for segmenting stroke lesions in T1-weighted MRI scans. The authors position it as a lighter alternative to large networks and ensembles like nnU-Net, citing an 81-fold reduction in parameters. The smaller footprint is intended to ease storage and inference demands for clinical deployment.

arXivLightMedSeg-ISLESnnU-Netmedical image segmentationmodel-compressionstroke-lesion-segmentation

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