Fecha de publicación:
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Fuente:
PubMed "swarm"
Bioinspir Biomim. 2026 Sep 30. doi: 10.1088/1748-3190/aeae93. Online ahead of print.ABSTRACTBirds routinely solve high-speed, three-dimensional collision-avoidance problems that
remain a central challenge for autonomous micro-aerial vehicles (MAVs). While pairwise
avoidance is well studied in budgerigars, comparatively little is known about how
avoidance kinematics change when more than two birds must simultaneously resolve a
potential collision-the regime in which distributed control becomes attractive for MAV
swarms. Using an openly available stereo-camera dataset (n = 150 1v1, n = 80 2v2,
n = 30 3v3 trials), we extracted nine kinematic indices per encounter and tested for
group-size effects using dual statistical frameworks supplemented by stratified,
subsampling-robustness and noise-floor sensitivity analyses. The two most robust findings
are (i) that the optic-flow time-to-contact margin τ is qualitatively conserved across group
sizes (the time-course is preserved while the absolute margins compress with group size),
and (ii) that the minimum inter-bird separation does not shrink with group size and in
fact grows mildly. By contrast, evidence that birds in the 3v3 condition react later,
modulate forward speed less, or fly more curved paths is conditionally supported at best:
the reaction-distance effect replicates in only 19.5% of subsampled iterations, and the
path-complexity effects are significant only after trial-level aggregation. The agility
metrics (peak lateral acceleration and minimum turn radius) are heavily confounded with
tracking noise; a majority of 3v3 encounters fall below the empirical noise floor and these
values should not be used as an engineering target. These observations are consistent
with-but do not strongly mandate-a bioinspired design hypothesis in which a fixed
τ-based visual policy is paired with a group-size- adaptive reaction threshold. A
proof-of-concept multi-agent simulation of this controller resolves pairwise head-on
encounters reliably (100% collision-free) but degrades sharply with group size and density,
indicating that a purely reactive single-threat policy is insufficient for swarm-scale
operation and that an explicit multi-threat coordination mechanism is required.PMID:42815536 | DOI:10.1088/1748-3190/aeae93