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University of Cambridge > Talks.cam > CMIH Hub seminar series > Testing breast cancer mammography screening artificial intelligence algorithms using the Cambridge Cohort database; study design, methods and statistical analysis
Testing breast cancer mammography screening artificial intelligence algorithms using the Cambridge Cohort database; study design, methods and statistical analysisAdd to your list(s) Download to your calendar using vCal
If you have a question about this talk, please contact J.W.Stevens. Two-million women aged between 50-70 are screened for breast cancer every year in the UK and each mammogram is read by two expert readers. Screening is therefore a labour-intensive repetitive task which could be improved through the use of Artificial Intelligence (AI), to automate screen reading or through priority triage of cases that could be cancer. With the aim of improving patient outcomes and screening efficiency. There are now over five FDA approved algorithms as well as numerous academic algorithms that have been developed for either computer aided detection and diagnosis (CADe and x) or computer aided triage (CADt) approaches. However, all the current literature is from retrospective studies using cancer enriched cohorts, with limited research investigating the use of AI in the UK screening programme. We have created a mammographic imaging database which will be used to independently and systematically test mammography AI algorithms from institutions world-wide to evaluate performance as well as provide data for ongoing development and prospective testing. This seminar will cover the study design, methods and statistical analysis planned for future testing using this database as well as provide a forum to discuss key areas of analysis that should be addressed as part of this testing. Join Zoom Meeting https://maths-cam-ac-uk.zoom.us/j/92575403744?pwd=RHhqWC9wcUVWQi9xSzc1UE9BVGk3Zz09 Meeting ID: 925 7540 3744 Passcode: 974971 This talk is part of the CMIH Hub seminar series series. This talk is included in these lists:
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