Come dive into one of the curiously delightful conversations overheard at National Geographic’s headquarters, as we follow explorers, photographers, and scientists to the edges of our big, weird, beautiful world. Hosted by Peter Gwin and Amy Briggs.
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72 | Bayesian Methods Could Provide the Key to Answering Which Policies Work Best for Whom
Manage episode 320560458 series 1096505
コンテンツは On the Evidence によって提供されます。エピソード、グラフィック、ポッドキャストの説明を含むすべてのポッドキャスト コンテンツは、On the Evidence またはそのポッドキャスト プラットフォーム パートナーによって直接アップロードされ、提供されます。誰かがあなたの著作権で保護された作品をあなたの許可なく使用していると思われる場合は、ここで概説されているプロセスに従うことができますhttps://ja.player.fm/legal。
On this episode of On the Evidence, Mathematica’s Mariel Finucane and John Deke join Tim Day of the Center for Medicare & Medicaid Innovation to discuss the application of evidence-informed Bayesian methods that not only confirm whether a policy or program works, but for whom. Learn more about Mathematica's work using evidence-based Bayesian methods in applied policy research: https://mathematica.org/features/bayesian-methods Read a brief about using a Bayesian framework for interpreting findings from impact evaluations prepared by Mariel Finucane and John Deke for the Office of Planning, Research and Evaluation at the Administration for Children and Families: mathematica.org/publications/moving-beyond-statistical-significance-the-basie-bayesian-interpretation-of-estimates-framework Read a paper co-authored by Mariel Finucane that compares Bayesian methods with the traditional frequentist approach to estimate the effects of a Centers for Medicare & Medicaid Services demonstration on Medicare spending: mathematica.org/publications/revolutionizing-estimation-and-inference-for-program-evaluation-using-bayesian-methods Read a paper co-authored by Tim Day describing an experiment to provide evidence that would be useful to policymakers and other decision makers through an interactive data visualization dashboard, presenting results from both frequentist and Bayesian analyses: https://www.researchgate.net/publication/335169870_Making_Evidence_Actionable_Interactive_Dashboards_Bayes_and_Health_Care_Innovation Read Emily Oster’s newsletter article about why and how she applies Bayes’s Rule to interpret new evidence in the context of existing evidence, including a recent study (https://emilyoster.substack.com/p/does-pre-k-really-hurt-future-test) about the effects of a preschool program in Tennessee on future student test scores: https://emilyoster.substack.com/p/bayes-rule-is-my-faves-rule
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142 つのエピソード
Manage episode 320560458 series 1096505
コンテンツは On the Evidence によって提供されます。エピソード、グラフィック、ポッドキャストの説明を含むすべてのポッドキャスト コンテンツは、On the Evidence またはそのポッドキャスト プラットフォーム パートナーによって直接アップロードされ、提供されます。誰かがあなたの著作権で保護された作品をあなたの許可なく使用していると思われる場合は、ここで概説されているプロセスに従うことができますhttps://ja.player.fm/legal。
On this episode of On the Evidence, Mathematica’s Mariel Finucane and John Deke join Tim Day of the Center for Medicare & Medicaid Innovation to discuss the application of evidence-informed Bayesian methods that not only confirm whether a policy or program works, but for whom. Learn more about Mathematica's work using evidence-based Bayesian methods in applied policy research: https://mathematica.org/features/bayesian-methods Read a brief about using a Bayesian framework for interpreting findings from impact evaluations prepared by Mariel Finucane and John Deke for the Office of Planning, Research and Evaluation at the Administration for Children and Families: mathematica.org/publications/moving-beyond-statistical-significance-the-basie-bayesian-interpretation-of-estimates-framework Read a paper co-authored by Mariel Finucane that compares Bayesian methods with the traditional frequentist approach to estimate the effects of a Centers for Medicare & Medicaid Services demonstration on Medicare spending: mathematica.org/publications/revolutionizing-estimation-and-inference-for-program-evaluation-using-bayesian-methods Read a paper co-authored by Tim Day describing an experiment to provide evidence that would be useful to policymakers and other decision makers through an interactive data visualization dashboard, presenting results from both frequentist and Bayesian analyses: https://www.researchgate.net/publication/335169870_Making_Evidence_Actionable_Interactive_Dashboards_Bayes_and_Health_Care_Innovation Read Emily Oster’s newsletter article about why and how she applies Bayes’s Rule to interpret new evidence in the context of existing evidence, including a recent study (https://emilyoster.substack.com/p/does-pre-k-really-hurt-future-test) about the effects of a preschool program in Tennessee on future student test scores: https://emilyoster.substack.com/p/bayes-rule-is-my-faves-rule
…
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142 つのエピソード
すべてのエピソード
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