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@MISC{Cao:1033583,
author = {Cao, Zhuo and Krieger, Lena and Scharr, Hanno and Assent,
Ira},
title = {{G}alaxy {M}orphology {C}lassification with
{C}ounterfactual {E}xplanation},
reportid = {FZJ-2024-06463},
year = {2024},
abstract = {Galaxy morphologies play an essential role in the study of
the evolution of galaxies. The determination of morphologies
is laborious for a large amount of data giving rise to
machine learning-based approaches. Unfortunately, most of
these approaches offer no insight into how the model works
and make the results difficult to understand and explain. We
here propose to extend a classical encoder-decoder
architecture with invertible flow, allowing us to not only
obtain a good predictive performance but also provide
additional information about the decision process with
counterfactual explanations.},
cin = {IAS-8},
cid = {I:(DE-Juel1)IAS-8-20210421},
pnm = {5112 - Cross-Domain Algorithms, Tools, Methods Labs (ATMLs)
and Research Groups (POF4-511)},
pid = {G:(DE-HGF)POF4-5112},
typ = {PUB:(DE-HGF)20},
doi = {10.34734/FZJ-2024-06463},
url = {https://juser.fz-juelich.de/record/1033583},
}