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Bias, Equity and Reality: Issues When Using AI for ECG-Based Diagnostics

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Joining us today to discuss issues when using AI for ECG-based diagnostics is Gari Clifford, Ph.D., Chair of Biomedical Informatics at Emory University and professor of Biomedical Engineering at Georgia Institute of Technology, and Reza Sameni, Ph.D., associate professor of the department of Biomedical Informatics at Emory University. Drs. Clifford and Sameni share interests in machine learning, digital hardware design, statistical signal processing and application areas span across cardiovascular disease, neuropsychiatric health, among others. Tune in to learn about issues when using AI for ECG-based diagnostics.

Specific topics discussed:
• What are the key barriers to building AI models from electrocardiogram data?
• What can be done to mitigate the bias in AI models beyond balancing data.
• Can you expand on what you mean by addressing bias is much deeper than just balancing data?
• What parting advice do you have for anyone wanting to use AI on large volumes of ECGs?

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Bias, Equity and Reality: Issues When Using AI for ECG-Based Diagnostics

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