dorsal/arxiv
View SchemaThe embodied brain: Bridging the brain, body, and behavior with neuromechanical digital twins
| Authors | Sibo Wang-Chen, Pavan Ramdya |
|---|---|
| Categories | |
| ArXiv ID | 2601.08056vv1 |
| URL | https://arxiv.org/abs/2601.08056 |
| License | http://creativecommons.org/licenses/by/4.0/ |
Abstract
Animal behavior reflects interactions between the nervous system, body, and environment. Therefore, biomechanics and environmental context must be considered to dissect algorithms for behavioral control. This is enabled by leveraging neuromechanical digital twins: computational models that embed artificial neural controllers within realistic body models in simulated environments. Here we review advances in the creation and use of neuromechanical digital twins while also highlighting emerging opportunities for the future. First, we illustrate how neuromechanical models allow researchers to infer hidden biophysical variables that may be difficult to measure experimentally. Additionally, by perturbing these models, one can generate new experimentally testable hypotheses. Next, we explore how neuromechanical twins have been used to foster a deeper exchange between neuroscience, robotics, and machine learning. Finally, we show how neuromechanical twins can advance healthcare. We envision that coupling studies on animals with active probing of their neuromechanical twins will greatly accelerate neuroscientific discovery.
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"date_created": "2026-02-17T05:53:16.295000Z",
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"abstract": "Animal behavior reflects interactions between the nervous system, body, and environment. Therefore, biomechanics and environmental context must be considered to dissect algorithms for behavioral control. This is enabled by leveraging neuromechanical digital twins: computational models that embed artificial neural controllers within realistic body models in simulated environments. Here we review advances in the creation and use of neuromechanical digital twins while also highlighting emerging opportunities for the future. First, we illustrate how neuromechanical models allow researchers to infer hidden biophysical variables that may be difficult to measure experimentally. Additionally, by perturbing these models, one can generate new experimentally testable hypotheses. Next, we explore how neuromechanical twins have been used to foster a deeper exchange between neuroscience, robotics, and machine learning. Finally, we show how neuromechanical twins can advance healthcare. We envision that coupling studies on animals with active probing of their neuromechanical twins will greatly accelerate neuroscientific discovery.",
"arxiv_id": "2601.08056",
"authors": [
"Sibo Wang-Chen",
"Pavan Ramdya"
],
"categories": [
"q-bio.NC",
"cs.RO"
],
"license": "http://creativecommons.org/licenses/by/4.0/",
"title": "The embodied brain: Bridging the brain, body, and behavior with neuromechanical digital twins",
"url": "https://arxiv.org/abs/2601.08056",
"version": "v1"
},
"schema_id": "dorsal/arxiv",
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