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awesome-amortized-inference.bayesflow.org
26 changes: 9 additions & 17 deletions README.md
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> -- hopefully with the help of many awesome people from the community 🧡
## Overview

- **Normalizing flows for probabilistic modeling and inference** (2021). [[Paper]](https://arxiv.org/abs/1912.02762) <br /> George Papamakarios, Eric Nalisnick, Danilo Jimenez Rezende, Shakir Mohamed, Balaji Lakshminarayanan<br />
- **Normalizing flows for probabilistic modeling and inference** (2021).<br /> George Papamakarios, Eric Nalisnick, Danilo Jimenez Rezende, Shakir Mohamed, Balaji Lakshminarayanan<br /> [[Paper]](https://arxiv.org/abs/1912.02762)
<details>
<summary>Show BibTeX</summary>
<pre><code>
Expand All @@ -37,27 +37,25 @@ Contributions are always welcome, this is a community-driven project.
month = {jan},
articleno = {57},
numpages = {64},
category = {overview},
author = {Papamakarios, George and Nalisnick, Eric and Rezende, Danilo Jimenez and Mohamed, Shakir and Lakshminarayanan, Balaji}
}
</code>
</pre></details>

- **Neural Methods for Amortized Inference** (2024). [[Paper]](https://arxiv.org/abs/2404.12484) <br /> Andrew Zammit-Mangion, Matthew Sainsbury-Dale, Raphaël Huser<br />
- **Neural Methods for Amortized Inference** (2024).<br /> Andrew Zammit-Mangion, Matthew Sainsbury-Dale, Raphaël Huser<br /> [[Paper]](https://arxiv.org/abs/2404.12484) <br />**TL;DR**: Overview paper of amortized point estimators and full posterior estimators.<br />
<details>
<summary>Show BibTeX</summary>
<pre><code>
@misc{zammit-mangion2024neural,
title = {Neural Methods for Amortized Inference},
publisher = {arXiv},
year = {2024},
category = {overview},
author = {Zammit-Mangion, Andrew and Sainsbury-Dale, Matthew and Huser, Raphaël}
}
</code>
</pre></details>

- **The frontier of simulation-based inference** (2020). [[Paper]](http://dx.doi.org/10.1073/pnas.1912789117) <br /> Kyle Cranmer, Johann Brehmer, Gilles Louppe<br />
- **The frontier of simulation-based inference** (2020).<br /> Kyle Cranmer, Johann Brehmer, Gilles Louppe<br /> [[Paper]](http://dx.doi.org/10.1073/pnas.1912789117)
<details>
<summary>Show BibTeX</summary>
<pre><code>
Expand All @@ -71,14 +69,13 @@ Contributions are always welcome, this is a community-driven project.
publisher = {Proceedings of the National Academy of Sciences},
year = {2020},
pages = {30055-30062},
category = {overview},
author = {Cranmer, Kyle and Brehmer, Johann and Louppe, Gilles}
}
</code>
</pre></details>
## Software

- **BayesFlow: Amortized Bayesian Workflows With Neural Networks** (2023). [[Code]](https://bayesflow.org/) <br /> Stefan T. Radev, Marvin Schmitt, Lukas Schumacher, Lasse Elsemüller, Valentin Pratz, Yannik Schälte, Ullrich Köthe, Paul-Christian Bürkner<br />
- **BayesFlow: Amortized Bayesian Workflows With Neural Networks**. [[Code]](https://bayesflow.org/)
<details>
<summary>Show BibTeX</summary>
<pre><code>
Expand All @@ -91,13 +88,12 @@ Contributions are always welcome, this is a community-driven project.
pages = {5702},
title = {BayesFlow: Amortized Bayesian Workflows With Neural Networks},
journal = {Journal of Open Source Software},
category = {software},
author = {Radev, Stefan T. and Schmitt, Marvin and Schumacher, Lukas and Elsemüller, Lasse and Pratz, Valentin and Schälte, Yannik and Köthe, Ullrich and Bürkner, Paul-Christian}
}
</code>
</pre></details>

- **sbi: A toolkit for simulation-based inference** (2020). [[Code]](https://sbi-dev.github.io/sbi/latest/) <br /> Alvaro Tejero-Cantero, Jan Boelts, Michael Deistler, Jan-Matthis Lueckmann, Conor Durkan, Pedro J. Gonçalves, David S. Greenberg, Jakob H. Macke<br />
- **sbi: A toolkit for simulation-based inference**. [[Code]](https://sbi-dev.github.io/sbi/latest/)
<details>
<summary>Show BibTeX</summary>
<pre><code>
Expand All @@ -110,14 +106,13 @@ Contributions are always welcome, this is a community-driven project.
pages = {2505},
title = {sbi: A toolkit for simulation-based inference},
journal = {Journal of Open Source Software},
category = {software},
author = {Tejero-Cantero, Alvaro and Boelts, Jan and Deistler, Michael and Lueckmann, Jan-Matthis and Durkan, Conor and Gonçalves, Pedro J. and Greenberg, David S. and Macke, Jakob H.}
}
</code>
</pre></details>
## Paper

- **Neural Importance Sampling for Rapid and Reliable Gravitational-Wave Inference** (2023). [[Paper]](http://dx.doi.org/10.1103/PhysRevLett.130.171403) <br /> Maximilian Dax, Stephen R. Green, Jonathan Gair, Michael Pürrer, Jonas Wildberger, Jakob H. Macke, Alessandra Buonanno, Bernhard Schölkopf<br />
- **Neural Importance Sampling for Rapid and Reliable Gravitational-Wave Inference** (2023).<br /> Maximilian Dax, Stephen R. Green, Jonathan Gair, Michael Pürrer, Jonas Wildberger, Jakob H. Macke, Alessandra Buonanno, Bernhard Schölkopf<br /> [[Paper]](http://dx.doi.org/10.1103/PhysRevLett.130.171403)
<details>
<summary>Show BibTeX</summary>
<pre><code>
Expand All @@ -130,13 +125,12 @@ Contributions are always welcome, this is a community-driven project.
journal = {Physical Review Letters},
publisher = {American Physical Society (APS)},
year = {2023},
category = {paper},
author = {Dax, Maximilian and Green, Stephen R. and Gair, Jonathan and P\"{u}rrer, Michael and Wildberger, Jonas and Macke, Jakob H. and Buonanno, Alessandra and Sch\"{o}lkopf, Bernhard}
}
</code>
</pre></details>

- **JANA: Jointly Amortized Neural Approximation of Complex Bayesian Models** (2023). [[Paper]](https://proceedings.mlr.press/v216/radev23a) <br /> Stefan T. Radev, Marvin Schmitt, Valentin Pratz, Umberto Picchini, Ullrich Köthe, Paul-Christian Bürkner<br />
- **JANA: Jointly Amortized Neural Approximation of Complex Bayesian Models** (2023).<br /> Stefan T. Radev, Marvin Schmitt, Valentin Pratz, Umberto Picchini, Ullrich Köthe, Paul-Christian Bürkner<br /> [[Paper]](https://proceedings.mlr.press/v216/radev23a)
<details>
<summary>Show BibTeX</summary>
<pre><code>
Expand All @@ -148,28 +142,26 @@ Contributions are always welcome, this is a community-driven project.
volume = {216},
series = {Proceedings of Machine Learning Research},
publisher = {PMLR},
category = {paper},
author = {Radev, Stefan T. and Schmitt, Marvin and Pratz, Valentin and Picchini, Umberto and K\"othe, Ullrich and B\"urkner, Paul-Christian}
}
</code>
</pre></details>

- **ASPIRE: Iterative Amortized Posterior Inference for Bayesian Inverse Problems** (2024). [[Paper]](https://arxiv.org/abs/2405.05398) <br /> Rafael Orozco, Ali Siahkoohi, Mathias Louboutin, Felix J. Herrmann<br />
- **ASPIRE: Iterative Amortized Posterior Inference for Bayesian Inverse Problems** (2024).<br /> Rafael Orozco, Ali Siahkoohi, Mathias Louboutin, Felix J. Herrmann<br />
<details>
<summary>Show BibTeX</summary>
<pre><code>
@misc{orozco2024aspire,
Title = {ASPIRE: Iterative Amortized Posterior Inference for Bayesian Inverse Problems},
Year = {2024},
Eprint = {arXiv:2405.05398},
category = {paper},
author = {Orozco, Rafael and Siahkoohi, Ali and Louboutin, Mathias and Herrmann, Felix J.}
}
</code>
</pre></details>
## Uncategorized

- **Flow Matching for Scalable Simulation-Based Inference** (2023). [[Paper]](https://openreview.net/forum?id=D2cS6SoYlP) [[Code]](https://github.com/dingo-gw/flow-matching-posterior-estimation) <br /> Jonas Bernhard Wildberger, Maximilian Dax, Simon Buchholz, Stephen R Green, Jakob H. Macke, Bernhard Schölkopf<br />
- **Flow Matching for Scalable Simulation-Based Inference** (2023).<br /> Jonas Bernhard Wildberger, Maximilian Dax, Simon Buchholz, Stephen R Green, Jakob H. Macke, Bernhard Schölkopf<br /> [[Paper]](https://openreview.net/forum?id=D2cS6SoYlP) [[Code]](https://github.com/dingo-gw/flow-matching-posterior-estimation)
<details>
<summary>Show BibTeX</summary>
<pre><code>
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