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    A global review of publicly available datasets for ophthalmological imaging: barriers to access, usability, and generalisability.

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    Author
    Khan, Saad M
    Liu, Xiaoxuan
    Nath, Siddharth
    Korot, Edward
    Faes, Livia
    Wagner, Siegfried K
    Keane, Pearse A
    Sebire, Neil J
    Burton, Matthew J
    Denniston, Alastair K
    Publication date
    2020-10-01
    Subject
    Ophthalmology
    
    Metadata
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    Abstract
    Health data that are publicly available are valuable resources for digital health research. Several public datasets containing ophthalmological imaging have been frequently used in machine learning research; however, the total number of datasets containing ophthalmological health information and their respective content is unclear. This Review aimed to identify all publicly available ophthalmological imaging datasets, detail their accessibility, describe which diseases and populations are represented, and report on the completeness of the associated metadata. With the use of MEDLINE, Google's search engine, and Google Dataset Search, we identified 94 open access datasets containing 507 724 images and 125 videos from 122 364 patients. Most datasets originated from Asia, North America, and Europe. Disease populations were unevenly represented, with glaucoma, diabetic retinopathy, and age-related macular degeneration disproportionately overrepresented in comparison with other eye diseases. The reporting of basic demographic characteristics such as age, sex, and ethnicity was poor, even at the aggregate level. This Review provides greater visibility for ophthalmological datasets that are publicly available as powerful resources for research. Our paper also exposes an increasing divide in the representation of different population and disease groups in health data repositories. The improved reporting of metadata would enable researchers to access the most appropriate datasets for their needs and maximise the potential of such resources.
    Citation
    Khan SM, Liu X, Nath S, Korot E, Faes L, Wagner SK, Keane PA, Sebire NJ, Burton MJ, Denniston AK. A global review of publicly available datasets for ophthalmological imaging: barriers to access, usability, and generalisability. Lancet Digit Health. 2021 Jan;3(1):e51-e66. doi: 10.1016/S2589-7500(20)30240-5. Epub 2020 Oct 1. Erratum in: Lancet Digit Health. 2021 Jan;3(1):e7. doi: 10.1016/S2589-7500(20)30290-9
    Type
    Corrigendum
    Handle
    http://hdl.handle.net/20.500.14200/7536
    Additional Links
    https://www.sciencedirect.com/journal/the-lancet-digital-health
    DOI
    10.1016/S2589-7500(20)30240-5
    PMID
    33735069
    Journal
    The Lancet. Digital Health
    Publisher
    Elsevier
    ae974a485f413a2113503eed53cd6c53
    10.1016/S2589-7500(20)30240-5
    Scopus Count
    Collections
    Ophthalmology

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