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Terabyte-scale supervised 3D training and benchmarking dataset of the mouse kidney

Kuo, Willy; Rossinelli, Diego; Schulz, Georg; Wenger, Roland H; Hieber, Simone; Müller, Bert; Kurtcuoglu, Vartan (2023). Terabyte-scale supervised 3D training and benchmarking dataset of the mouse kidney. Scientific Data, 10(1):510.

Abstract

The performance of machine learning algorithms, when used for segmenting 3D biomedical images, does not reach the level expected based on results achieved with 2D photos. This may be explained by the comparative lack of high-volume, high-quality training datasets, which require state-of-the-art imaging facilities, domain experts for annotation and large computational and personal resources. The HR-Kidney dataset presented in this work bridges this gap by providing 1.7 TB of artefact-corrected synchrotron radiation-based X-ray phase-contrast microtomography images of whole mouse kidneys and validated segmentations of 33 729 glomeruli, which corresponds to a one to two orders of magnitude increase over currently available biomedical datasets. The image sets also contain the underlying raw data, threshold- and morphology-based semi-automatic segmentations of renal vasculature and uriniferous tubules, as well as true 3D manual annotations. We therewith provide a broad basis for the scientific community to build upon and expand in the fields of image processing, data augmentation and machine learning, in particular unsupervised and semi-supervised learning investigations, as well as transfer learning and generative adversarial networks.

Additional indexing

Item Type:Journal Article, refereed, original work
Communities & Collections:04 Faculty of Medicine > Institute of Physiology
07 Faculty of Science > Institute of Physiology
Dewey Decimal Classification:570 Life sciences; biology
610 Medicine & health
Scopus Subject Areas:Physical Sciences > Statistics and Probability
Physical Sciences > Information Systems
Social Sciences & Humanities > Education
Physical Sciences > Computer Science Applications
Social Sciences & Humanities > Statistics, Probability and Uncertainty
Social Sciences & Humanities > Library and Information Sciences
Uncontrolled Keywords:Library and Information Sciences, Statistics, Probability and Uncertainty, Computer Science Applications, Education, Information Systems, Statistics and Probability
Language:English
Date:3 August 2023
Deposited On:25 Aug 2023 08:14
Last Modified:26 Feb 2025 02:40
Publisher:Nature Publishing Group
ISSN:2052-4463
OA Status:Gold
Free access at:Publisher DOI. An embargo period may apply.
Publisher DOI:https://doi.org/10.1038/s41597-023-02407-5
PubMed ID:37537174
Other Identification Number:PMCID: PMC10400611
Project Information:
  • Funder: SNSF
  • Grant ID: 183774
  • Project Title: NCCR Kidney.CH - Kidney Control of Homeostasis (phase III)
  • Funder: SNSF
  • Grant ID: 183774
  • Project Title: NCCR Kidney.CH - Kidney Control of Homeostasis (phase III)
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  • Content: Published Version
  • Language: English
  • Licence: Creative Commons: Attribution 4.0 International (CC BY 4.0)

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