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Bingel, U.

Publications and source records attributed to Bingel, U..

2 recordsLinked to original sources

Optimal choice of parameters in functional connectome-based predictive modelling might be biased by motion: comment on Dadi et al.

In a recent study, Dadi and colleagues make recommendations on optimal parameters for functional connectome-based predictive models. While the authors acknowledge that \"optimal choices of parameters will differ on datasets with very different properties\", some questions regarding the universality of the recommended \"default values\" remain unanswered.\n\nNamely, as already briefly discussed by Dadi et al., the datasets used in the target study might not be representative regarding the sparsity of the (hidden) ground truth (i.e. the number of non-informative connections), which might affect the performance of L1- and L2-regularization approaches and feature selection.\n\nHere we exemplify that, at least in one of the investigated datasets systematic motion artefacts might bias the discriminative signal towards \"non-sparsity\", which might lead to underestimating the performance of L1-regularized models and feature selection.\n\nWe conclude that the expected sparsity of the discriminative signal should be carefully considered when planning predictive modelling workflows and the neuroscientific validity of predictive models should be investigated to account for non-neural confounds.

bioinformatics

The cerebellum is involved in processing of predictions and prediction errors in a fear conditioning paradigm

Prediction errors are thought to drive associative fear learning. Surprisingly little is known about the possible contribution of the cerebellum. To address this question, healthy participants underwent a differential fear conditioning paradigm during 7T magnetic resonance imaging. An event-related design allowed us to separate cerebellar fMRI signals related to the visual conditioned stimulus (CS) from signals related to the subsequent unconditioned stimulus (US; an aversive electric shock). We found significant activation of cerebellar lobules Crus I and VI bilaterally related to the CS+ compared to the CS-. Most importantly, significant activation of lobules Crus I and VI was also present during the unexpected omission of the US in unreinforced CS+ acquisition trials. This activation disappeared during extinction when US omission became expected. These findings provide evidence that the cerebellum has to be added to the neural network processing predictions and prediction errors in the emotional domain.

neuroscience