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7 changes: 6 additions & 1 deletion README.md
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Expand Up @@ -35,7 +35,12 @@ To receive updates on code releases, please 👀 watch or ⭐️ star this repos
It can jointly use behavioral and neural data in a hypothesis- or discovery-driven manner to produce consistent, high-performance latent spaces. While it is not specific to neural and behavioral data, this is the first domain we used the tool in. This application case is to obtain a consistent representation of latent variables driving activity and behavior, improving decoding accuracy of behavioral variables over standard supervised learning, and obtaining embeddings which are robust to domain shifts.


# Reference
# References

- 📄 **Publication April 2025**:
[Time-series attribution maps with regularized contrastive learning.](https://arxiv.org/abs/2502.12977)
Steffen Schneider, Rodrigo González Laiz, Anastasiia Filipova, Markus Frey, Mackenzie Weygandt Mathis. AISTATS 2025.


- 📄 **Publication May 2023**:
[Learnable latent embeddings for joint behavioural and neural analysis.](https://doi.org/10.1038/s41586-023-06031-6)
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