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S6E1 - Ian Foster: Exploring and Evaluating Foundation Models

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Manage episode 468545434 series 2954335
内容由Sarah Webb and Krell Institute提供。所有播客内容(包括剧集、图形和播客描述)均由 Sarah Webb and Krell Institute 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal

Large language models aren't just powering chatbots like ChatGPT. This type of computational model is an example of a particular flavor of artificial intelligence known as foundation models, which are trained on vast amounts of data to make inferences in new areas. Although text is one rich data source, science offers many more from biology, chemistry, physics and more. Such models open up a tantalizing new set of research questions. How effective are foundation models for science? How could they be improved? Could they help researchers work on challenging questions? And what might they mean for the future of science?

This episode begins a series where we'll explore these questions and more, talking with computational scientists about their work with foundation models and the opportunities and challenges in this exciting, rapidly changing area of research. We'll start by talking with Ian Foster of Argonne National Laboratory and the University of Chicago about AuroraGPT, a foundation model being developed for science and named for Argonne's new exascale computer.

You'll meet:

Ian Foster is a senior scientist at Argonne National Laboratory where he directs the data science and learning division. He's also a professor of computer science at the University of Chicago. He is the co-leader of the data team for Argonne's AuroraGPT project.

  continue reading

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Manage episode 468545434 series 2954335
内容由Sarah Webb and Krell Institute提供。所有播客内容(包括剧集、图形和播客描述)均由 Sarah Webb and Krell Institute 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal

Large language models aren't just powering chatbots like ChatGPT. This type of computational model is an example of a particular flavor of artificial intelligence known as foundation models, which are trained on vast amounts of data to make inferences in new areas. Although text is one rich data source, science offers many more from biology, chemistry, physics and more. Such models open up a tantalizing new set of research questions. How effective are foundation models for science? How could they be improved? Could they help researchers work on challenging questions? And what might they mean for the future of science?

This episode begins a series where we'll explore these questions and more, talking with computational scientists about their work with foundation models and the opportunities and challenges in this exciting, rapidly changing area of research. We'll start by talking with Ian Foster of Argonne National Laboratory and the University of Chicago about AuroraGPT, a foundation model being developed for science and named for Argonne's new exascale computer.

You'll meet:

Ian Foster is a senior scientist at Argonne National Laboratory where he directs the data science and learning division. He's also a professor of computer science at the University of Chicago. He is the co-leader of the data team for Argonne's AuroraGPT project.

  continue reading

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