TU Darmstadt / ULB / TUprints

Mapping Shape to Visuomotor Mapping: Learning and Generalisation of Sensorimotor Behaviour Based on Contextual Information

Dam, Loes C. J. van ; Ernst, Marc O. (2024)
Mapping Shape to Visuomotor Mapping: Learning and Generalisation of Sensorimotor Behaviour Based on Contextual Information.
In: PLOS Computational Biology, 2015, 11 (3)
doi: 10.26083/tuprints-00027546
Article, Secondary publication, Publisher's Version

[img] Text
mapping_shape.pdf
Copyright Information: CC BY 4.0 International - Creative Commons, Attribution.

Download (905kB)
Item Type: Article
Type of entry: Secondary publication
Title: Mapping Shape to Visuomotor Mapping: Learning and Generalisation of Sensorimotor Behaviour Based on Contextual Information
Language: English
Date: 23 July 2024
Place of Publication: Darmstadt
Year of primary publication: 2015
Place of primary publication: San Francisco
Publisher: PLOS
Journal or Publication Title: PLOS Computational Biology
Volume of the journal: 11
Issue Number: 3
Collation: 23 Seiten
DOI: 10.26083/tuprints-00027546
Corresponding Links:
Origin: Secondary publication service
Abstract:

Humans can learn and store multiple visuomotor mappings (dual-adaptation) when feedback for each is provided alternately. Moreover, learned context cues associated with each mapping can be used to switch between the stored mappings. However, little is known about the associative learning between cue and required visuomotor mapping, and how learning generalises to novel but similar conditions. To investigate these questions, participants performed a rapid target-pointing task while we manipulated the offset between visual feedback and movement end-points. The visual feedback was presented with horizontal offsets of different amounts, dependent on the targets shape. Participants thus needed to use different visuomotor mappings between target location and required motor response depending on the target shape in order to “hit” it. The target shapes were taken from a continuous set of shapes, morphed between spiky and circular shapes. After training we tested participants performance, without feedback, on different target shapes that had not been learned previously. We compared two hypotheses. First, we hypothesised that participants could (explicitly) extract the linear relationship between target shape and visuomotor mapping and generalise accordingly. Second, using previous findings of visuomotor learning, we developed a (implicit) Bayesian learning model that predicts generalisation that is more consistent with categorisation (i.e. use one mapping or the other). The experimental results show that, although learning the associations requires explicit awareness of the cues’ role, participants apply the mapping corresponding to the trained shape that is most similar to the current one, consistent with the Bayesian learning model. Furthermore, the Bayesian learning model predicts that learning should slow down with increased numbers of training pairs, which was confirmed by the present results. In short, we found a good correspondence between the Bayesian learning model and the empirical results indicating that this model poses a possible mechanism for simultaneously learning multiple visuomotor mappings.

Identification Number: Artikel-ID: e1004172
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-275463
Classification DDC: 100 Philosophy and psychology > 150 Psychology
Date Deposited: 23 Jul 2024 13:58
Last Modified: 31 Jul 2024 07:15
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/27546
PPN: 520176154
Export:
Actions (login required)
View Item View Item