Adaptive conduction delays and phase locking in spiking Haken Lighthouse networks

Abstract We develop a theory of phase-locked activity in delayed spiking networks using the Haken Lighthouse model as an analytically tractable event-based description of neural dynamics. For networks with fixed delays, we derive self-consistency conditions for phase-locked states and an associated linear stability theory formulated directly in terms of spike-time perturbations. The framework is illustrated for a delayed autapse, a reciprocally coupled two-cell network, and spatially structured rings with distance-dependent coupling and conduction delays, where circulant symmetry allows stability to be decomposed into Fourier modes. We then introduce an activity-dependent white matter plasticity rule in which myelination modulates axonal conduction speed and hence communication delay. This leads naturally to a slow–fast system with state-dependent delays, in which frozen phase-locked branches organise the adaptive dynamics. The plasticity rule selects commensurate delay–period relationships, providing a mechanism for the emergence of synchrony, other frequency-locked states, slow switching between competing phase-locked patterns, and the organisation of heterogeneous delays into discrete delay–period classes. Direct simulations of the event-driven network support the analytical predictions and illustrate how adaptive conduction can reshape the attractor structure of a delayed spiking network and generate long-timescale transitions. These results provide a tractable mathematical framework for studying how activity-dependent myelination may regulate temporal coordination, synchrony, and communication through coherence in spiking neural systems.

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Publication Details

Journal
Biological Cybernetics
Published
2026-09-21
DOI
https://doi.org/10.1007/s00422-026-01064-2
Primary Topic
Neural dynamics and brain function
Type
article
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article

Adaptive conduction delays and phase locking in spiking Haken Lighthouse networks

Stefan Ruschel, Stephen Coombes, Rüdiger Thul, Rachel Nicks
Biological Cybernetics
Neural dynamics and brain function
article

Adaptive conduction delays and phase locking in spiking Haken Lighthouse networks

Stefan Ruschel, Stephen Coombes, Rüdiger Thul, Rachel Nicks
article en

Abstract

Abstract We develop a theory of phase-locked activity in delayed spiking networks using the Haken Lighthouse model as an analytically tractable event-based description of neural dynamics. For networks with fixed delays, we derive self-consistency conditions for phase-locked states and an associated linear stability theory formulated directly in terms of spike-time perturbations. The framework is illustrated for a delayed autapse, a reciprocally coupled two-cell network, and spatially structured rings with distance-dependent coupling and conduction delays, where circulant symmetry allows stability to be decomposed into Fourier modes. We then introduce an activity-dependent white matter plasticity rule in which myelination modulates axonal conduction speed and hence communication delay. This leads naturally to a slow–fast system with state-dependent delays, in which frozen phase-locked branches organise the adaptive dynamics. The plasticity rule selects commensurate delay–period relationships, providing a mechanism for the emergence of synchrony, other frequency-locked states, slow switching between competing phase-locked patterns, and the organisation of heterogeneous delays into discrete delay–period classes. Direct simulations of the event-driven network support the analytical predictions and illustrate how adaptive conduction can reshape the attractor structure of a delayed spiking network and generate long-timescale transitions. These results provide a tractable mathematical framework for studying how activity-dependent myelination may regulate temporal coordination, synchrony, and communication through coherence in spiking neural systems.

Biological CyberneticsVol. 120(5-6)
University of Nottingham (GB)
Openalex Percentile: Top 40%
Neural dynamics and brain function
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Adaptive conduction delays and phase locking in spiking Haken Lighthouse networks — Stefan Ruschel, Stephen Coombes, et al. · Biological Cybernetics (2026) | TGRS Research Map | TGRS