The Brain Tumor Segmentation (BraTS-METS) Challenge 2023: Brain Metastasis Segmentation on Pre-treatment MRI
Ahmed W. Moawad, Anastasia Janas, Ujjwal Baid, Divya Ramakrishnan,, Rachit Saluja, Nader Ashraf, Nazanin Maleki, Leon Jekel, Nikolay Yordanov,, Pascal Fehringer, Athanasios Gkampenis, Raisa Amiruddin, Amirreza, Manteghinejad, Maruf Adewole, Jake Albrecht, Udunna Anazodo

TL;DR
The BraTS-METS 2023 challenge evaluated AI algorithms for brain metastasis segmentation on MRI, highlighting dataset diversity, common errors, and advancing clinical translation of automated BM detection.
Contribution
This study presents a large, annotated, multi-institutional dataset and benchmarks for brain metastasis segmentation, identifying key challenges and errors in current AI algorithms.
Findings
Winning algorithm achieved a LesionWise mean score of 7.9.
Common errors included false negatives for small lesions.
Dataset diversity improved benchmarking and clinical relevance.
Abstract
The translation of AI-generated brain metastases (BM) segmentation into clinical practice relies heavily on diverse, high-quality annotated medical imaging datasets. The BraTS-METS 2023 challenge has gained momentum for testing and benchmarking algorithms using rigorously annotated internationally compiled real-world datasets. This study presents the results of the segmentation challenge and characterizes the challenging cases that impacted the performance of the winning algorithms. Untreated brain metastases on standard anatomic MRI sequences (T1, T2, FLAIR, T1PG) from eight contributed international datasets were annotated in stepwise method: published UNET algorithms, student, neuroradiologist, final approver neuroradiologist. Segmentations were ranked based on lesion-wise Dice and Hausdorff distance (HD95) scores. False positives (FP) and false negatives (FN) were rigorously…
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Taxonomy
TopicsBrain Tumor Detection and Classification · Brain Metastases and Treatment · Radiomics and Machine Learning in Medical Imaging
