Stability Control of Metastable States as a Unified Mechanism for Flexible Temporal Modulation in Cognitive Processing

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Hauptverfasser: Kurikawa, Tomoki, Kaneko, Kunihiko
Format: Preprint
Veröffentlicht: 2025
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author Kurikawa, Tomoki
Kaneko, Kunihiko
author_facet Kurikawa, Tomoki
Kaneko, Kunihiko
contents Flexible modulation of temporal dynamics in neural sequences underlies many cognitive processes. For instance, we can adaptively change the speed of motor sequences and speech. While such flexibility is influenced by various factors such as attention and context, the common neural mechanisms responsible for this modulation remain poorly understood. We developed a biologically plausible neural network model that incorporates neurons with multiple timescales and Hebbian learning rules. This model is capable of generating simple sequential patterns as well as performing delayed match-to-sample (DMS) tasks that require the retention of stimulus identity. Fast neural dynamics establish metastable states, while slow neural dynamics maintain task-relevant information and modulate the stability of these states to enable temporal processing. We systematically analyzed how factors such as neuronal gain, external input strength (contextual cues), and task difficulty influence the temporal properties of neural activity sequences - specifically, dwell time within patterns and transition times between successive patterns. We found that these factors flexibly modulate the stability of metastable states. Our findings provide a unified mechanism for understanding various forms of temporal modulation and suggest a novel computational role for neural timescale diversity in dynamically adapting cognitive performance to changing environmental demands.
format Preprint
id arxiv_https___arxiv_org_abs_2504_09080
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Stability Control of Metastable States as a Unified Mechanism for Flexible Temporal Modulation in Cognitive Processing
Kurikawa, Tomoki
Kaneko, Kunihiko
Neurons and Cognition
Disordered Systems and Neural Networks
Adaptation and Self-Organizing Systems
Biological Physics
Flexible modulation of temporal dynamics in neural sequences underlies many cognitive processes. For instance, we can adaptively change the speed of motor sequences and speech. While such flexibility is influenced by various factors such as attention and context, the common neural mechanisms responsible for this modulation remain poorly understood. We developed a biologically plausible neural network model that incorporates neurons with multiple timescales and Hebbian learning rules. This model is capable of generating simple sequential patterns as well as performing delayed match-to-sample (DMS) tasks that require the retention of stimulus identity. Fast neural dynamics establish metastable states, while slow neural dynamics maintain task-relevant information and modulate the stability of these states to enable temporal processing. We systematically analyzed how factors such as neuronal gain, external input strength (contextual cues), and task difficulty influence the temporal properties of neural activity sequences - specifically, dwell time within patterns and transition times between successive patterns. We found that these factors flexibly modulate the stability of metastable states. Our findings provide a unified mechanism for understanding various forms of temporal modulation and suggest a novel computational role for neural timescale diversity in dynamically adapting cognitive performance to changing environmental demands.
title Stability Control of Metastable States as a Unified Mechanism for Flexible Temporal Modulation in Cognitive Processing
topic Neurons and Cognition
Disordered Systems and Neural Networks
Adaptation and Self-Organizing Systems
Biological Physics
url https://arxiv.org/abs/2504.09080