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Standardized Assessment of Automatic Segmentation of White Matter Hyperintensities and Results of the WMH Segmentation Challenge
290
Zitationen
44
Autoren
2019
Jahr
Abstract
Quantification of cerebral white matter hyperintensities (WMH) of presumed vascular origin is of key importance in many neurological research studies. Currently, measurements are often still obtained from manual segmentations on brain MR images, which is a laborious procedure. The automatic WMH segmentation methods exist, but a standardized comparison of the performance of such methods is lacking. We organized a scientific challenge, in which developers could evaluate their methods on a standardized multi-center/-scanner image dataset, giving an objective comparison: the WMH Segmentation Challenge. Sixty T1 + FLAIR images from three MR scanners were released with the manual WMH segmentations for training. A test set of 110 images from five MR scanners was used for evaluation. The segmentation methods had to be containerized and submitted to the challenge organizers. Five evaluation metrics were used to rank the methods: 1) Dice similarity coefficient; 2) modified Hausdorff distance (95th percentile); 3) absolute log-transformed volume difference; 4) sensitivity for detecting individual lesions; and 5) F1-score for individual lesions. In addition, the methods were ranked on their inter-scanner robustness; 20 participants submitted their methods for evaluation. This paper provides a detailed analysis of the results. In brief, there is a cluster of four methods that rank significantly better than the other methods, with one clear winner. The inter-scanner robustness ranking shows that not all the methods generalize to unseen scanners. The challenge remains open for future submissions and provides a public platform for method evaluation.
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Autoren
- Hugo J. Kuijf
- Adrià Casamitjana
- D. Louis Collins
- Mahsa Dadar
- Achilleas Georgiou
- Mohsen Ghafoorian
- Dakai Jin
- April Khademi
- Jesse Knight
- Hongwei Li
- Xavier Lladó
- J. Matthijs Biesbroek
- Miguel A. Cabra de Luna
- Qaiser Mahmood
- Richard McKinley
- Alireza Mehrtash
- Sébastien Ourselin
- Bo‐yong Park
- Hyunjin Park
- Sang Hyun Park
- Simon Pezold
- Élodie Puybareau
- Jeroen de Bresser
- Letícia Rittner
- Carole H. Sudre
- Sergi Valverde
- Verónica Vilaplana
- Roland Wiest
- Yongchao Xu
- Ziyue Xu
- Guodong Zeng
- Jianguo Zhang
- Guoyan Zheng
- Rutger Heinen
- Christopher Chen
- Wiesje M. van der Flier
- Frederik Barkhof
- Max A. Viergever
- Geert Jan Biessels
- Simon Andermatt
- Mariana Bento
- Matt Berseth
- Mikhail Belyaev
- M. Jorge Cardoso
Institutionen
- University Medical Center Utrecht(NL)
- Utrecht University(NL)
- Universitat Politècnica de Catalunya(ES)
- Montreal Neurological Institute and Hospital(CA)
- McGill University(CA)
- TomTom (Netherlands)(NL)
- National Institutes of Health(US)
- Toronto Metropolitan University(CA)
- Sun Yat-sen University(CN)
- Technical University of Munich(DE)
- University of Dundee(GB)
- University of Guelph(CA)
- Universitat de Girona(ES)
- Daegu Gyeongbuk Institute of Science and Technology(KR)
- University of Bern(CH)
- University Hospital of Bern(CH)
- Pakistan Institute of Nuclear Science and Technology(PK)
- King's College London(GB)
- Brigham and Women's Hospital(US)
- University of British Columbia(CA)
- Institute for Basic Science(KR)
- Sungkyunkwan University(KR)
- University of Basel(CH)
- Universidade Estadual de Campinas (UNICAMP)(BR)
- Leiden University Medical Center(NL)
- École Pour l'Informatique et les Techniques Avancées(FR)
- Huazhong University of Science and Technology(CN)
- Laboratoire Traitement et Communication de l’Information(FR)
- Télécom Paris(FR)
- Université Paris-Saclay(FR)
- National University Health System(SG)
- Vrije Universiteit Amsterdam(NL)
- Amsterdam UMC Location Vrije Universiteit Amsterdam(NL)
- University of Calgary(CA)
- Skolkovo Institute of Science and Technology(RU)
- University College London(GB)