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Title:

Prediction of Y Radioembolization Outcome from Pretherapeutic Factors with Random Survival Forests.

Document type:
Journal Article
Author(s):
Ingrisch, Michael; Schöppe, Franziska; Paprottka, Karolin; Fabritius, Matthias; Strobl, Frederik F; De Toni, Enrico N; Ilhan, Harun; Todica, Andrei; Michl, Marlies; Paprottka, Philipp Marius
Abstract:
Our objective was to predict the outcome of Y radioembolization in patients with intrahepatic tumors from pretherapeutic baseline parameters and to identify predictive variables using a machine-learning approach based on random survival forests. In this retrospective study, 366 patients with primary ( = 92) or secondary ( = 274) liver tumors who had received Y radioembolization were analyzed. A random survival forest was trained to predict individual risk from baseline values of cholinesterase,...     »
Journal title abbreviation:
J Nucl Med
Year:
2018
Journal volume:
59
Journal issue:
5
Pages contribution:
769-773
Fulltext / DOI:
doi:10.2967/jnumed.117.200758
Pubmed ID:
http://view.ncbi.nlm.nih.gov/pubmed/29146692
Print-ISSN:
0161-5505
TUM Institution:
Professur für Interventionelle Radiologie (Prof. Paprottka)
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