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Scott Cunningham, "Causal Inference: The Mixtape" (Yale UP, 2021)

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内容由New Books Network提供。所有播客内容(包括剧集、图形和播客描述)均由 New Books Network 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

Just about everyone knows correlation does not equal causation, and probably that a randomized controlled experiment is the best way to solve that problem, if you can do one. If you’ve been following the economics discipline you will have heard about the Nobel Prize given to Abhijit Banerjee, Esther Duflo, and Michael Kremer for their work applying the experimental method to test real-world policy interventions out in the field. But what if you can’t do this? Are you just stuck with untestable claims? This year’s Nobel Prize to Josh Angrist, David Card, and Guido Imbens for methods of causal inference with observational data confirms that you don't have to give up. Scott Cunningham’s Causal Inference: The Mixtape (Yale UP, 2021) provides an accessible practical introduction to techniques developed by these luminaries and others. Along with the statistical theory, it provides intuitive explanations of these techniques, and examples of the computer code needed to run them. In our conversation we discuss why economists needed these techniques and how they work.

Scott Cunningham is a professor of economics at Baylor University. He researches topics including mental healthcare, sex work, abortion and drug policy. He is active on Twitter, has a blog on Substack, and frequently conducts workshops on causal inference methods. A complete web version of his book is available here.

Host Peter Lorentzen is an Associate Professor in the Department of Economics at the University of San Francisco, where he leads a new digital economy-focused Master's program in Applied Economics.

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Support our show by becoming a premium member! https://newbooksnetwork.supportingcast.fm/science-technology-and-society

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Manage episode 392480203 series 2560126
内容由New Books Network提供。所有播客内容(包括剧集、图形和播客描述)均由 New Books Network 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

Just about everyone knows correlation does not equal causation, and probably that a randomized controlled experiment is the best way to solve that problem, if you can do one. If you’ve been following the economics discipline you will have heard about the Nobel Prize given to Abhijit Banerjee, Esther Duflo, and Michael Kremer for their work applying the experimental method to test real-world policy interventions out in the field. But what if you can’t do this? Are you just stuck with untestable claims? This year’s Nobel Prize to Josh Angrist, David Card, and Guido Imbens for methods of causal inference with observational data confirms that you don't have to give up. Scott Cunningham’s Causal Inference: The Mixtape (Yale UP, 2021) provides an accessible practical introduction to techniques developed by these luminaries and others. Along with the statistical theory, it provides intuitive explanations of these techniques, and examples of the computer code needed to run them. In our conversation we discuss why economists needed these techniques and how they work.

Scott Cunningham is a professor of economics at Baylor University. He researches topics including mental healthcare, sex work, abortion and drug policy. He is active on Twitter, has a blog on Substack, and frequently conducts workshops on causal inference methods. A complete web version of his book is available here.

Host Peter Lorentzen is an Associate Professor in the Department of Economics at the University of San Francisco, where he leads a new digital economy-focused Master's program in Applied Economics.

Learn more about your ad choices. Visit megaphone.fm/adchoices

Support our show by becoming a premium member! https://newbooksnetwork.supportingcast.fm/science-technology-and-society

  continue reading

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