English

Partial vision leads to an unexpected emergent collective behavior in active aligning particles

Soft Condensed Matter 2026-07-30 v1 Computational Physics

Abstract

The Vicsek Model represents a paradigmatic framework for understanding the collective motion of active aligning particles, traditionally assuming isotropic interaction fields. Inspired by biological systems characterized by limited perception and blind spots, we propose a generalized Vicsek model featuring two distinct, non-overlapping angular vision cones. We systematically investigate the non-equilibrium phase behavior of this system by tuning the aperture area ({\alpha}) and the front-back orientation (\b{eta}) of the cones. Our results reveal that restricting the lateral vision area destabilizes global order, shifts the critical noise, and induces highly dense traveling bands. Furthermore, breaking the front-back symmetry introduces non-reciprocal interactions that profoundly alter the emergent spatial structures: forward-biased vision drives strong clustering through "follow the leader" alignment, whereas backward-biased alignment stabilizes an exceptionally homogeneous flocking state with suppressed density fluctuations. Finally, we incorporate short-range volume exclusion, demonstrating that the structural integrity of these novel tightly-clustered phases is highly sensitive to steric interactions. Our work provides new insights into the interplay between non-reciprocal perception, spatial anisotropy, and physical constraints in active matter.

Cite

@article{arxiv.2607.27819,
  title  = {Partial vision leads to an unexpected emergent collective behavior in active aligning particles},
  author = {Raúl Molina-Prados Lallena and José Martín-Roca and Chantal Valeriani},
  journal= {arXiv preprint arXiv:2607.27819},
  year   = {2026}
}