High-Performance Open-Source Archive
bayesTLS fits its models with brms and Stan. To cite bayesTLS in publications, please cite the package (below) together with the brms and Stan (RStan) references it relies on:
Noble D, Arnold P, Nakagawa S, Pottier P (2026). “A flexible modelling framework for estimating thermal tolerance and sensitivity.” Manuscript in preparation, https://github.com/daniel1noble/bayesTLS.
Bürkner P (2017). “brms: An R Package for Bayesian Multilevel Models Using Stan.” Journal of Statistical Software, 80(1), 1–28. doi:10.18637/jss.v080.i01.
Stan Development Team (2024). RStan: the R Interface to Stan. R package, https://mc-stan.org/.
The default sampling backend is cmdstanr; if you fit with cmdstanr rather than RStan, please cite it instead (run citation("cmdstanr")).
Corresponding BibTeX entries:
@Unpublished{,
title = {A flexible modelling framework for estimating thermal
tolerance and sensitivity},
author = {Daniel W. A. Noble and Pieter A. Arnold and Shinichi
Nakagawa and Patrice Pottier},
year = {2026},
note = {Manuscript in preparation},
url = {https://github.com/daniel1noble/bayesTLS},
}
@Article{,
title = {{brms}: An {R} Package for {Bayesian} Multilevel Models
Using {Stan}},
author = {Paul-Christian Bürkner},
journal = {Journal of Statistical Software},
year = {2017},
volume = {80},
number = {1},
pages = {1--28},
doi = {10.18637/jss.v080.i01},
}
@Manual{,
title = {{RStan}: the {R} Interface to {Stan}},
author = {{Stan Development Team}},
year = {2024},
note = {R package},
url = {https://mc-stan.org/},
}
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