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Space-by-time modular decomposition effectively describes whole-body muscle activity during upright reaching in various directions

Pauline M. Hilt, View ORCID ProfileIoannis Delis, Thierry Pozzo, View ORCID ProfileBastien Berret
doi: https://doi.org/10.1101/155085
Pauline M. Hilt
1INSERM, U1093, Cognition Action Plasticité Sensorimotrice, Dijon, France
3Italian Institute of Technology CTNSC@UniFe (Center of Translational Neuro-physiology for Speech and Communication), Ferrara, Italy
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  • For correspondence: pauline.hilt@iit.it id2286@columbia.edu thierry.pozzo@iit.it bastien.berret@u-psud.fr
Ioannis Delis
2Department of Biomedical Engineering, Columbia University, New York, NY 10027, USA
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Thierry Pozzo
1INSERM, U1093, Cognition Action Plasticité Sensorimotrice, Dijon, France
3Italian Institute of Technology CTNSC@UniFe (Center of Translational Neuro-physiology for Speech and Communication), Ferrara, Italy
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Bastien Berret
4CIAMS, Univ. Paris-Sud, Université Paris-Saclay, Orsay, France
5CIAMS, Université d’Orléans, 45067, Orléans, France
6Institut Universitaire de France (IUF)
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  • ORCID record for Bastien Berret
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Abstract

The modular control hypothesis suggests that motor commands are built from precoded modules whose specific combined recruitment can allow the performance of virtually any motor task. Despite considerable experimental support, this hypothesis remains tentative as classical findings of reduced dimensionality in muscle activity may also result from other constraints (biomechanical couplings, data averaging or low dimensionality of motor tasks). Here we assessed the effectiveness of modularity in describing muscle activity in a comprehensive experiment comprising 72 distinct point-to-point whole-body movements during which the activity of 30 muscles was recorded. To identify invariant modules of a temporal and spatial nature, we used a space-by-time decomposition of muscle activity that has been shown to encompass classical modularity models. To examine the decompositions, we focused not only on the amount of variance they explained but also on whether the task performed on each trial could be decoded from the single-trial activations of modules. For the sake of comparison, we confronted these scores to the scores obtained from alternative non-modular descriptions of the muscle data. We found that the space-by-time decomposition was effective in terms of data approximation and task discrimination at comparable reduction of dimensionality. These findings show that few spatial and temporal modules give a compact yet approximate representation of muscle patterns carrying nearly all task-relevant information for a variety of whole-body reaching movements.

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Posted December 12, 2017.
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Space-by-time modular decomposition effectively describes whole-body muscle activity during upright reaching in various directions
Pauline M. Hilt, Ioannis Delis, Thierry Pozzo, Bastien Berret
bioRxiv 155085; doi: https://doi.org/10.1101/155085
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Space-by-time modular decomposition effectively describes whole-body muscle activity during upright reaching in various directions
Pauline M. Hilt, Ioannis Delis, Thierry Pozzo, Bastien Berret
bioRxiv 155085; doi: https://doi.org/10.1101/155085

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