AI (R)evolutions in Observational Astronomy
AI and machine learning have found applications in many fields, and astronomy is no exception. But while some see AI as an overhyped toy and others as an existential threat, astronomers have been using it for a while, out of necessity. With an overwhelming influx of data, these tools provide essential automation to facilitate discovery in observational astronomy. I will argue that multiple evolutions are underway, and at least one true Revolution.
In this talk I will walk through a few of these evolutions: from early, rudimentary classifiers to the AI-driven brokers that now manage the firehose of transient alerts. I will show how anomaly detection algorithms and self-supervised methods - capable of extracting patterns without labeled training data - are enabling meaningful discoveries in imaging, spectroscopic samples, and time series. I will also discuss what I see as a true Revolution: how the reasoning models that power chatbots are bound to affect society while reshaping how we do science.
Speaker: Dovi Pozananski, Tel Aviv University
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Monday, 05/12/25
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Stanford Linear Accelerator (SLAC) Colloquium Series
Kavli Auditorium
Menlo Park, CA 94025
