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On the interpretation of linear Riemannian tangent space model parameters in M/EEG

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Riemannian tangent space methods offer state-of-the-art performance in magnetoencephalography (MEG) and electroencephalography (EEG) based applications such as brain-computer interfaces and biomarker development. One limitation, particularly relevant for biomarker development, is limited model interpretability compared to established component-based methods. Here, we propose a method to transform the parameters of linear tangent space models into interpretable patterns. Using typical assumptions, we show that this approach identifies the true patterns of latent sources, encoding a target signal. In simulations and two real MEG and EEG datasets, we demonstrate the validity of the proposed approach and investigate its behavior when the model assumptions are violated. Our results confirm that Riemannian tangent space methods are robust to differences in the source patterns across observations. We found that this robustness property also transfers to the associated patterns.

Reinmar J. Kobler, Jun-Ichiro Hirayama, Lea Hehenberger Catarina Lopes-Dias, Gernot R. M\"uller-Putz, Motoaki Kawanabe• 2021

Related benchmarks

TaskDatasetResultRank
BCI classificationHinss inter-subject 2021
Balanced Accuracy45.1
16
BCI classificationHinss2021 (inter-session)
Balanced Accuracy40.8
16
BCI classificationBNCI2014001 (inter-session)
Balanced Accuracy69.8
11
BCI classificationLehner 2021 (inter-session)
Balanced Accuracy73
11
BCI classificationBNCI2015001 (inter-session)
Balanced Acc80.9
11
BCI classificationLee 2019 (inter-session)
Balanced Accuracy0.652
11
BCI classificationLee 2019 (inter-subject)
Balanced Accuracy68.5
11
BCI classificationHehen 2021 (inter-session)
Balanced Acc52.2
11
BCI classificationBNCI2015001 (inter-subject)
Balanced Accuracy60.6
11
BCI classificationStieger 2021 (inter-session)
Balanced Acc57.3
11
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