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Stability of Neural Oscillations Supports Auditory-Motor Synchronization
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Abstract
Previous findings suggest that musical training leads to increased coactivation of auditory and motor brain networks, as well as enhanced auditory-motor synchronization. Less is known about the temporal dynamics of auditory-motor network interactions and how these temporal dynamics are shaped by musical training. The current study applied Recurrence Quantification Analysis, a nonlinear technique for characterizing the temporal dynamics of complex systems, to participants’ neurophysiological activity recorded via electroencephalography (EEG) during an auditory-motor synchronization task. We investigated changes in neural predictability and stability with musical training, and how these changes were related to synchronization accuracy and consistency. EEG was recorded while musicians and nonmusicians first tapped a familiar melody at a comfortable rate, called Spontaneous Production Rate (SPR). Then participants synchronized their taps with an auditory metronome presented at each participant’s SPR and at rates 15% and 30% slower than their SPR. EEG-based outcomes of determinism (predictability) and meanline (stability) were compared with behavioral synchronization measures. Musicians synchronized more consistently overall than nonmusicians. Both groups of participants showed decreased synchronization accuracy at slower rates, and higher EEG-based determinism (predictability) at slower rates. Furthermore, neural meanline (stability) measures correlated with synchronization consistency across all participants and stimulus rates; as neural stability increased, so did synchronization consistency. Neural stability may be a general mechanism supporting the maintenance of synchronization across rates, which may improve with musical training.
Title: Stability of Neural Oscillations Supports Auditory-Motor Synchronization
Description:
Abstract
Previous findings suggest that musical training leads to increased coactivation of auditory and motor brain networks, as well as enhanced auditory-motor synchronization.
Less is known about the temporal dynamics of auditory-motor network interactions and how these temporal dynamics are shaped by musical training.
The current study applied Recurrence Quantification Analysis, a nonlinear technique for characterizing the temporal dynamics of complex systems, to participants’ neurophysiological activity recorded via electroencephalography (EEG) during an auditory-motor synchronization task.
We investigated changes in neural predictability and stability with musical training, and how these changes were related to synchronization accuracy and consistency.
EEG was recorded while musicians and nonmusicians first tapped a familiar melody at a comfortable rate, called Spontaneous Production Rate (SPR).
Then participants synchronized their taps with an auditory metronome presented at each participant’s SPR and at rates 15% and 30% slower than their SPR.
EEG-based outcomes of determinism (predictability) and meanline (stability) were compared with behavioral synchronization measures.
Musicians synchronized more consistently overall than nonmusicians.
Both groups of participants showed decreased synchronization accuracy at slower rates, and higher EEG-based determinism (predictability) at slower rates.
Furthermore, neural meanline (stability) measures correlated with synchronization consistency across all participants and stimulus rates; as neural stability increased, so did synchronization consistency.
Neural stability may be a general mechanism supporting the maintenance of synchronization across rates, which may improve with musical training.
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