TOOLS FOR CAUSAL INFERENCE FROM CROSS-SECTIONAL INNOVATION SURVEYS WITH CONTINUOUS OR DISCRETE VARIABLES: THEORY AND APPLICATIONS
This paper presents a new statistical toolkit by applying three techniques for data-driven causal inference from the machine learning community that are little-known among economists and innovation scholars: a conditional independence-based approach, additive noise models, and non-algorithmic infere...
Furkejuvvon:
| Publikašuvnnas: | Cuadernos de Economía |
|---|---|
| Váldodahkkit: | , , |
| Materiálatiipa: | Artigo |
| Giella: | Inglês |
| Almmustuhtton: |
Universidad Nacional de Colombia
2018
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| Fáttát: | |
| Liŋkkat: | https://www.redalyc.org/articulo.oa?id=282161175006 https://www.redalyc.org/journal/2821/282161175006/ https://www.redalyc.org/journal/2821/282161175006/html/ https://www.redalyc.org/journal/2821/282161175006/282161175006.epub https://www.redalyc.org/journal/2821/282161175006/movil |
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