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Part 2 of this series could have easily been renamed "AI for science: The expert’s guide to practical machine learning.” We continue our discussion with Christoph Molnar and Timo Freiesleben to look at how scientists can apply supervised machine learning techniques from the previous episode into their research.
Introduction to supervised ML for science (0:00)
The model as the expert? (1:00)
Measuring causality: Metrics and blind spots (10:10)
Connecting models to scientific understanding (18:00)
Robustness across distribution shifts (26:40)
Reproducibility challenges in ML and science (35:00)
Go back to listen to part one of this series for the conceptual foundations that support these practical applications.
Check out Christoph and Timo's book “Supervised Machine Learning for Science: How to Stop Worrying and Love Your Black Box” available online now.
What did you think? Let us know.
Do you have a question or a discussion topic for the AI Fundamentalists? Connect with them to comment on your favorite topics:
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Part 2 of this series could have easily been renamed "AI for science: The expert’s guide to practical machine learning.” We continue our discussion with Christoph Molnar and Timo Freiesleben to look at how scientists can apply supervised machine learning techniques from the previous episode into their research.
Introduction to supervised ML for science (0:00)
The model as the expert? (1:00)
Measuring causality: Metrics and blind spots (10:10)
Connecting models to scientific understanding (18:00)
Robustness across distribution shifts (26:40)
Reproducibility challenges in ML and science (35:00)
Go back to listen to part one of this series for the conceptual foundations that support these practical applications.
Check out Christoph and Timo's book “Supervised Machine Learning for Science: How to Stop Worrying and Love Your Black Box” available online now.
What did you think? Let us know.
Do you have a question or a discussion topic for the AI Fundamentalists? Connect with them to comment on your favorite topics:
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