Early prediction of renal replacement therapy within 24 hours after septic shock recognition in the emergency department using machine learning: a retrospective analysis of a prospectively collected multicenter registry

Sangun Nah, Tae Ho Lim, Sung Phil Chung, Gil Joon Suh, Sung-Hyuk Choi, Woon Yong Kwon, Won Young Kim, Kyuseok Kim, Sangchun Choi, Je Sung You, Han Sung Choi, Tae Gun Shin, Sangsoo Han

Open source

DOI
10.1186/s12873-026-01558-z
Published
2026-03-27
Container
BMC Emergency Medicine
Publisher
Springer Science and Business Media LLC
Open access
unknown

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BibTeX

@article{allodium:10.1186/s12873-026-01558-z,
  title = {Early prediction of renal replacement therapy within 24 hours after septic shock recognition in the emergency department using machine learning: a retrospective analysis of a prospectively collected multicenter registry},
  author = {Sangun Nah and Tae Ho Lim and Sung Phil Chung and Gil Joon Suh and Sung-Hyuk Choi and Woon Yong Kwon and Won Young Kim and Kyuseok Kim and Sangchun Choi and Je Sung You and Han Sung Choi and Tae Gun Shin and Sangsoo Han},
  year = {2026},
  journal = {BMC Emergency Medicine},
  doi = {10.1186/s12873-026-01558-z},
  url = {https://doi.org/10.1186/s12873-026-01558-z}
}

RIS

TY  - JOUR
TI  - Early prediction of renal replacement therapy within 24 hours after septic shock recognition in the emergency department using machine learning: a retrospective analysis of a prospectively collected multicenter registry
AU  - Sangun Nah
AU  - Tae Ho Lim
AU  - Sung Phil Chung
AU  - Gil Joon Suh
AU  - Sung-Hyuk Choi
AU  - Woon Yong Kwon
AU  - Won Young Kim
AU  - Kyuseok Kim
AU  - Sangchun Choi
AU  - Je Sung You
AU  - Han Sung Choi
AU  - Tae Gun Shin
AU  - Sangsoo Han
PY  - 2026
JO  - BMC Emergency Medicine
DO  - 10.1186/s12873-026-01558-z
UR  - https://doi.org/10.1186/s12873-026-01558-z
ER  - 

APA

Nah, S., Lim, T. H., Chung, S. P., Suh, G. J., Choi, S., Kwon, W. Y., Kim, W. Y., Kim, K., Choi, S., You, J. S., Choi, H. S., Shin, T. G., & Han, S. (2026). Early prediction of renal replacement therapy within 24 hours after septic shock recognition in the emergency department using machine learning: a retrospective analysis of a prospectively collected multicenter registry. BMC Emergency Medicine. https://doi.org/10.1186/s12873-026-01558-z

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