Artificial Intelligence Clinical Trial
— CORDAOfficial title:
Covid Radiographic Images Data-set for A.I
NCT number | NCT04419545 |
Other study ID # | CORDA |
Secondary ID | |
Status | Recruiting |
Phase | |
First received | |
Last updated | |
Start date | March 24, 2020 |
Est. completion date | March 31, 2021 |
The possibility to use widespread and simple chest X-ray (CXR) imaging for early screening of COVID-19 patients is attracting much interest from both the clinical and the Artificial intelligence community. In this study we provide insights and also raise warnings on what is reasonable to expect by applying deep learning to COVID classification of CXR images. We provide a methodological guide and critical reading of an extensive set of statistical results that can be obtained using currently available datasets. In particular, we take the challenge posed by current small size COVID data and show how significant can be the bias introduced by transfer-learning using larger public non- COVID CXR datasets. We also contribute by providing results on a medium size COVID CXR dataset, just collected by one of the major emergency hospitals in Northern Italy during the peak of the COVID pandemic. These novel data allow us to contribute to validate the generalization capacity of preliminary results circulating in the scientific community. Our conclusions shed some light into the possibility to effectively discriminate COVID using CXR.
Status | Recruiting |
Enrollment | 2500 |
Est. completion date | March 31, 2021 |
Est. primary completion date | December 31, 2020 |
Accepts healthy volunteers | No |
Gender | All |
Age group | N/A and older |
Eligibility |
Inclusion Criteria: chest x ray performed during emergency department or hospital stay - Exclusion Criteria: - None |
Country | Name | City | State |
---|---|---|---|
Italy | Azienda Ospedaliero Universitaria Città della Salute e della Scienza | Torino | Turin |
Lead Sponsor | Collaborator |
---|---|
Azienda Ospedaliera Città della Salute e della Scienza di Torino | Azienda Ospedaliera Ordine Mauriziano di Torino, University of Turin, Italy |
Italy,
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | sensibility and specificity of neural network diagnosis | sensibility and specificity of neural network diagnosis compared with human diagnosis | at day 0 |
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