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A list of all the posts and pages found on the site. For you robots out there is an XML version available for digesting as well.

Pages

Posts

Future Blog Post

less than 1 minute read

Published:

This post will show up by default. To disable scheduling of future posts, edit config.yml and set future: false.

Blog Post number 4

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Published:

This is a sample blog post. Lorem ipsum I can’t remember the rest of lorem ipsum and don’t have an internet connection right now. Testing testing testing this blog post. Blog posts are cool.

Blog Post number 3

less than 1 minute read

Published:

This is a sample blog post. Lorem ipsum I can’t remember the rest of lorem ipsum and don’t have an internet connection right now. Testing testing testing this blog post. Blog posts are cool.

Blog Post number 2

less than 1 minute read

Published:

This is a sample blog post. Lorem ipsum I can’t remember the rest of lorem ipsum and don’t have an internet connection right now. Testing testing testing this blog post. Blog posts are cool.

Blog Post number 1

less than 1 minute read

Published:

This is a sample blog post. Lorem ipsum I can’t remember the rest of lorem ipsum and don’t have an internet connection right now. Testing testing testing this blog post. Blog posts are cool.

portfolio

publications

Causal structure learning from time series: Large regression coefficients may predict causal links better in practice than small p-values

Published in Proceedings of the NeurIPS 2019 Competition and Demonstration Track, Proceedings of Machine Learning Research (PMLR), 2020

We describe and justify our time series structure learning algorithms that won the Causality 4 Climate competition at NeurIPS 2019.

Recommended citation: Sebastian Weichwald, Martin E. Jakobsen, Phillip B. Mogensen, Lasse Petersen, Nikolaj Thams, and Gherardo Varando (2020). Proceedings of the NeurIPS 2019 Competition and Demonstration Track, PMLR 123:27-36. http://proceedings.mlr.press/v123/weichwald20a/weichwald20a.pdf

A causal framework for distribution generalization

Published in IEEE Transactions on Pattern Analysis and Machine Intelligence (TPAMI), 2021

We investigate the problem of out-of-distribution prediction from a causal model perspective where perturbations of the test-data distribution arise from interventions. We analyze the connection between the best predictive model and causal model. Finally, we propose a non-parametric causal effect estimator

Recommended citation: Rune Christiansen, Niklas Pfister, Martin Emil Jakobsen, Nicola Gnecco, and Jonas Peters (2021). "A causal framework for distribution generalization" IEEE Transactions on Pattern Analysis and Machine Intelligence (TPAMI), forthcoming. https://doi.org/10.1109/TPAMI.2021.3094760

Structure Learning for Directed Trees

Published in Journal of Machine Learning Research (JMLR), 2022

We propose a method to consistently estimate the underlying causal structure of non-linear additive noise directed tree models. Furthermore, we propose a procedure to test causal substructure hypotheses.

Recommended citation: Martin Emil Jakobsen, Rajen D. Shah, Peter Bühlmann and Jonas Peters (2022). "Structure Learning for Directed Trees", Journal of Machine Learning Research (JMLR). https://arxiv.org/abs/2108.08871

Distributional robustness of K-class estimators and the PULSE

Published in The Econometrics Journal, 2022

We show that the well-known K-class estimators possess interesting distributional robustness properties for out-of-distribution prediction. We propose a novel linear causal effect estimator (PULSE) motivated as the best predictive method among all methods that can not be rejected as being causal.

Recommended citation: Martin Emil Jakobsen and Jonas Peters (2022). "Distributional robustness of K-class estimators and the PULSE" The Econometrics Journal, 25(2), 404-432 https://doi.org/10.1093/ectj/utab031

talks

teaching

Teaching experience 1

Undergraduate course, University 1, Department, 2014

This is a description of a teaching experience. You can use markdown like any other post.

Teaching experience 2

Workshop, University 1, Department, 2015

This is a description of a teaching experience. You can use markdown like any other post.