A computational model of infant sensorimotor exploration in the mobile paradigm

Fuente: arXiv
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Main Authors: Spisak, Josua, Popescu, Sergiu Tcaci, Wermter, Stefan, Hoffmann, Matej, O'Regan, J. Kevin
Format: Preprint
Published: 2025
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author Spisak, Josua
Popescu, Sergiu Tcaci
Wermter, Stefan
Hoffmann, Matej
O'Regan, J. Kevin
author_facet Spisak, Josua
Popescu, Sergiu Tcaci
Wermter, Stefan
Hoffmann, Matej
O'Regan, J. Kevin
contents We present a computational model of the mechanisms that may determine infants' behavior in the "mobile paradigm". This paradigm has been used in developmental psychology to explore how infants learn the sensory effects of their actions. In this paradigm, a mobile (an articulated and movable object hanging above an infant's crib) is connected to one of the infant's limbs, prompting the infant to preferentially move that "connected" limb. This ability to detect a "sensorimotor contingency" is considered to be a foundational cognitive ability in development. To understand how infants learn sensorimotor contingencies, we built a model that attempts to replicate infant behavior. Our model incorporates a neural network, action-outcome prediction, exploration, motor noise, preferred activity level, and biologically-inspired motor control. We find that simulations with our model replicate the classic findings in the literature showing preferential movement of the connected limb. An interesting observation is that the model sometimes exhibits a burst of movement after the mobile is disconnected, casting light on a similar occasional finding in infants. In addition to these general findings, the simulations also replicate data from two recent more detailed studies using a connection with the mobile that was either gradual or all-or-none. A series of ablation studies further shows that the inclusion of mechanisms of action-outcome prediction, exploration, motor noise, and biologically-inspired motor control was essential for the model to correctly replicate infant behavior. This suggests that these components are also involved in infants' sensorimotor learning.
format Preprint
id arxiv_https___arxiv_org_abs_2504_17939
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A computational model of infant sensorimotor exploration in the mobile paradigm
Spisak, Josua
Popescu, Sergiu Tcaci
Wermter, Stefan
Hoffmann, Matej
O'Regan, J. Kevin
Neurons and Cognition
Machine Learning
92-10
J.4
We present a computational model of the mechanisms that may determine infants' behavior in the "mobile paradigm". This paradigm has been used in developmental psychology to explore how infants learn the sensory effects of their actions. In this paradigm, a mobile (an articulated and movable object hanging above an infant's crib) is connected to one of the infant's limbs, prompting the infant to preferentially move that "connected" limb. This ability to detect a "sensorimotor contingency" is considered to be a foundational cognitive ability in development. To understand how infants learn sensorimotor contingencies, we built a model that attempts to replicate infant behavior. Our model incorporates a neural network, action-outcome prediction, exploration, motor noise, preferred activity level, and biologically-inspired motor control. We find that simulations with our model replicate the classic findings in the literature showing preferential movement of the connected limb. An interesting observation is that the model sometimes exhibits a burst of movement after the mobile is disconnected, casting light on a similar occasional finding in infants. In addition to these general findings, the simulations also replicate data from two recent more detailed studies using a connection with the mobile that was either gradual or all-or-none. A series of ablation studies further shows that the inclusion of mechanisms of action-outcome prediction, exploration, motor noise, and biologically-inspired motor control was essential for the model to correctly replicate infant behavior. This suggests that these components are also involved in infants' sensorimotor learning.
title A computational model of infant sensorimotor exploration in the mobile paradigm
topic Neurons and Cognition
Machine Learning
92-10
J.4
url https://arxiv.org/abs/2504.17939