Nonlinear model predicts diverse respiratory patterns of birdsong

A central aspect of the motor control of birdsong production is the capacity to generate diverse respiratory rhythms, which determine the coarse temporal pattern of song. The neural mechanisms that underlie this diversity of respiratory gestures and the resulting acoustic syllables are largely unkno...

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Autor principal: Trevisan, Marcos Alberto
Publicado: 2006
Materias:
Acceso en línea:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00319007_v96_n5_p_Trevisan
http://hdl.handle.net/20.500.12110/paper_00319007_v96_n5_p_Trevisan
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spelling paper:paper_00319007_v96_n5_p_Trevisan2023-06-08T14:58:45Z Nonlinear model predicts diverse respiratory patterns of birdsong Trevisan, Marcos Alberto Acoustics Neurology Respirators Acoustic syllables Nonlinear model Respiratory patterns Biomedical engineering animal biological model breathing computer simulation motoneuron nonlinear system physiology respiration center Serinus vocalization Animals Canaries Computer Simulation Models, Biological Motor Neurons Nonlinear Dynamics Respiration Respiratory Center Vocalization, Animal A central aspect of the motor control of birdsong production is the capacity to generate diverse respiratory rhythms, which determine the coarse temporal pattern of song. The neural mechanisms that underlie this diversity of respiratory gestures and the resulting acoustic syllables are largely unknown. We show that the respiratory patterns of the highly complex and variable temporal organization of song in the canary (Serinus canaria) can be generated as solutions of a simple model describing the integration between song control and respiratory centers. This example suggests that subharmonic behavior can play an important role in providing a complex variety of responses with minimal neural substrate. © 2006 The American Physical Society. Fil:Trevisan, M.A. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales; Argentina. 2006 https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00319007_v96_n5_p_Trevisan http://hdl.handle.net/20.500.12110/paper_00319007_v96_n5_p_Trevisan
institution Universidad de Buenos Aires
institution_str I-28
repository_str R-134
collection Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA)
topic Acoustics
Neurology
Respirators
Acoustic syllables
Nonlinear model
Respiratory patterns
Biomedical engineering
animal
biological model
breathing
computer simulation
motoneuron
nonlinear system
physiology
respiration center
Serinus
vocalization
Animals
Canaries
Computer Simulation
Models, Biological
Motor Neurons
Nonlinear Dynamics
Respiration
Respiratory Center
Vocalization, Animal
spellingShingle Acoustics
Neurology
Respirators
Acoustic syllables
Nonlinear model
Respiratory patterns
Biomedical engineering
animal
biological model
breathing
computer simulation
motoneuron
nonlinear system
physiology
respiration center
Serinus
vocalization
Animals
Canaries
Computer Simulation
Models, Biological
Motor Neurons
Nonlinear Dynamics
Respiration
Respiratory Center
Vocalization, Animal
Trevisan, Marcos Alberto
Nonlinear model predicts diverse respiratory patterns of birdsong
topic_facet Acoustics
Neurology
Respirators
Acoustic syllables
Nonlinear model
Respiratory patterns
Biomedical engineering
animal
biological model
breathing
computer simulation
motoneuron
nonlinear system
physiology
respiration center
Serinus
vocalization
Animals
Canaries
Computer Simulation
Models, Biological
Motor Neurons
Nonlinear Dynamics
Respiration
Respiratory Center
Vocalization, Animal
description A central aspect of the motor control of birdsong production is the capacity to generate diverse respiratory rhythms, which determine the coarse temporal pattern of song. The neural mechanisms that underlie this diversity of respiratory gestures and the resulting acoustic syllables are largely unknown. We show that the respiratory patterns of the highly complex and variable temporal organization of song in the canary (Serinus canaria) can be generated as solutions of a simple model describing the integration between song control and respiratory centers. This example suggests that subharmonic behavior can play an important role in providing a complex variety of responses with minimal neural substrate. © 2006 The American Physical Society.
author Trevisan, Marcos Alberto
author_facet Trevisan, Marcos Alberto
author_sort Trevisan, Marcos Alberto
title Nonlinear model predicts diverse respiratory patterns of birdsong
title_short Nonlinear model predicts diverse respiratory patterns of birdsong
title_full Nonlinear model predicts diverse respiratory patterns of birdsong
title_fullStr Nonlinear model predicts diverse respiratory patterns of birdsong
title_full_unstemmed Nonlinear model predicts diverse respiratory patterns of birdsong
title_sort nonlinear model predicts diverse respiratory patterns of birdsong
publishDate 2006
url https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00319007_v96_n5_p_Trevisan
http://hdl.handle.net/20.500.12110/paper_00319007_v96_n5_p_Trevisan
work_keys_str_mv AT trevisanmarcosalberto nonlinearmodelpredictsdiverserespiratorypatternsofbirdsong
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