Environment-Aware Network-Level Design of Generalized Pinching-Antenna Systems--Part II: Geometry-Aware Case
Yanqing Xu, Zhiguo Ding, Xiu Yin Zhang, Trung Q. Duong, and Tsung-Hui Chang

TL;DR
This paper develops an environment-aware, geometry- and blockage-aware network optimization framework for pinching-antenna systems, improving coverage and fairness in obstacle-rich environments through offline modeling and scalable algorithms.
Contribution
It introduces a grid-level SNR model with offline geometry-dependent calculations and formulates two novel network activation problems with efficient solution methods.
Findings
Validated gains in coverage and fairness through simulations.
Demonstrated scalability of the proposed algorithms.
Quantified performance improvements in obstacle-rich environments.
Abstract
This two-part paper aims to develop an environment-aware network-level design framework for generalized pinching-antenna systems to overcome the limitations of conventional link-level optimization, which is tightly coupled to instantaneous user geometry and thus sensitive to user mobility and localization errors. Part I investigates the traffic-aware case, where user presence is characterized statistically by a spatial traffic map and deployments are optimized using traffic-aware network-level metrics. Part II complements Part I by developing geometry-aware, blockage-aware network optimization for pinching-antenna systems in obstacle-rich environments. We introduce a grid-level average signal-to-noise (SNR) model with a deterministic LoS visibility indicator and a discrete activation architecture, where the geometry-dependent terms are computed offline in advance. Building on this…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsAdvanced MIMO Systems Optimization · Millimeter-Wave Propagation and Modeling · Wireless Networks and Protocols
