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Arkadii Kazanskii

Publications and source records attributed to Arkadii Kazanskii.

2 recordsLinked to original sources

Friction-Augmented Drifting Models for Resource-Efficient Domain Translation

Single-step generators promise high-fidelity synthesis at a fraction of the inference and training cost of ordinary differential equation (ODE)-based flow models, a central concern when compute is limited. Drifting Models (DMs) train a one-step generator by evolving samples under a kernel-based drift field, avoiding ODE integration entirely, but a two-particle surrogate of their iteration admits a \emph{locally repulsive} regime in which repulsion can dominate the attraction to the target. We introduce DMF (Drifting Model with Friction), which scales the drift field by a linearly-scheduled coefficient $1-γ(i)$. A closed-form analysis of the surrogate gives a per-step contraction threshold and a finite-horizon bound on the error trajectory, suggesting why friction can halt the iteration before it relaxes to a spurious force-balance fixed point. On FFHQ latent-space domain translation, DMF significantly improves on the frictionless DM it extends in both Fréchet Inception Distance (FID; paired $p=0.019$, Cohen's $d=1.71$) and CLIP-MMD (CMMD; $p=0.005$, $d=2.55$) with no additional forward passes or parameters, and on a 2D task it sharply improves DM's Fréchet (moment-matching) error while remaining on par under the 2-Wasserstein distance. DMF also achieves FID and CMMD comparable to the far more expensive Optimal Flow Matching (OFM) in our runs, at roughly $29\times$ lower training wall-clock on identical hardware. DMF thus delivers these gains with a single scheduled scalar.

cs.LG

Exploring Radial Symmetry on Phased Arrays Using Particle Swarm Optimization

Phased antenna arrays enable dynamic beam shaping, which is essential for Non-Geostationary (NGSO) satellite communications where efficient beam distribution is important. This study focuses on thinning phased antenna arrays with circular apertures made up of eight replicated sectors. Circular apertures reduce the number of active elements, lowering system costs and improving radiation performance by evenly distributing energy, which helps to reduce Side Lobe Levels (SLL). Particle Swarm Optimization was used to approach the thinning problem, addressing the challenge of selecting which elements should be activated. The resulting design achieves an SLL of (-25.67 dB), outperforming previous designs with SLL reductions of (-22.53 dB). Achieved results underscore the potential of circular aperture phased arrays to improve beam quality, minimize interference, and deliver cost-effective solutions for NGSO satellites.

eess.SP