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Active Matter Flocking via Predictive Alignment

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arxiv 2504.07778 v2 pith:MNTOJ6SA submitted 2025-04-10 cond-mat.soft nlin.AO

classification cond-mat.softnlin.AO
keywords alignmentactiveflockingmatternoisepredictivecohesiongroup
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Understanding collective self-organization in active matter, such as bird flocks and fish schools, remains a grand challenge in physics. Interactions that induce alignment are essential for flocking; however, alignment alone is generally insufficient to maintain group cohesion in the presence of noise, leading traditional models to introduce artificial boundaries or explicit attractive forces. Here, we propose a model that achieves cohesive flocking through purely alignment-based interactions by introducing predictive alignment, in which agents reorient to maximize alignment with the prevailing orientations of their anticipated future neighbors. Implemented in a discrete-time Vicsek-type framework, this approach delivers robust, noise-resistant cohesion without additional parameters. In the stable regime, flock size scales linearly with interaction radius, remaining nearly immune to noise or propulsion speed, and the group coherently follows a leader under noise. These findings reveal how predictive strategies enhance self-organization, paving the way for a new class of active matter models blending physics and cognitive-like dynamics.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Order-Disorder Transition in Delay Vicsek Model

    cond-mat.soft 2025-08 conditional novelty 6.0 of 10

    Delays in the Vicsek model stabilize phase-separated bands, broaden the interval of coexistence, and increase band number, making delay a control parameter for collective motion.

  2. AdaFusion: Prompt-Guided Inference with Adaptive Fusion of Pathology Foundation Models

    cs.CV 2025-08 conditional novelty 6.0 of 10

    In the delayed Vicsek model at high speed, delay widens the noise range of phase-separated bands, shifts the transition to disorder to higher noise, and speeds band formation by generating larger swirls.

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