Cooperative Bistatic ISAC Systems for Low-Altitude Economy

Fuente: arXiv
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Main Authors: Zhang, Zhenkun, Xu, Yining, Pan, Cunhua, Ren, Hong, Zhang, Qixuan, Gao, Songtao, Wang, Jiangzhou
Format: Preprint
Published: 2025
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_version_ 1866917087499255808
author Zhang, Zhenkun
Xu, Yining
Pan, Cunhua
Ren, Hong
Zhang, Qixuan
Gao, Songtao
Wang, Jiangzhou
author_facet Zhang, Zhenkun
Xu, Yining
Pan, Cunhua
Ren, Hong
Zhang, Qixuan
Gao, Songtao
Wang, Jiangzhou
contents The burgeoning low-altitude economy (LAE) necessitates integrated sensing and communication (ISAC) systems capable of high-accuracy multi-target localization and velocity estimation under hardware and coverage constraints inherent in conventional ISAC architectures. This paper addresses these challenges by proposing a cooperative bistatic ISAC framework within MIMO-OFDM cellular networks, enabling robust sensing services for LAE applications through standardized 5G New Radio (NR) infrastructure. We first develop a low-complexity parameter extraction algorithm employing CANDECOMP/PARAFAC (CP) tensor decomposition, which exploits the inherent Vandermonde structure in delay-related factor matrices to efficiently recover bistatic ranges, Doppler velocities, and angles-of-arrival (AoA) from multi-dimensional received signal tensors. To resolve data association ambiguity across distributed transmitter-receiver pairs and mitigate erroneous estimates, we further design a robust fusion scheme based on the minimum spanning tree (MST) method, enabling joint 3D position and velocity reconstruction. Comprehensive simulation results validate the framework's superiority in computational efficiency and sensing performance for low-altitude scenarios.
format Preprint
id arxiv_https___arxiv_org_abs_2506_18067
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Cooperative Bistatic ISAC Systems for Low-Altitude Economy
Zhang, Zhenkun
Xu, Yining
Pan, Cunhua
Ren, Hong
Zhang, Qixuan
Gao, Songtao
Wang, Jiangzhou
Signal Processing
Information Theory
The burgeoning low-altitude economy (LAE) necessitates integrated sensing and communication (ISAC) systems capable of high-accuracy multi-target localization and velocity estimation under hardware and coverage constraints inherent in conventional ISAC architectures. This paper addresses these challenges by proposing a cooperative bistatic ISAC framework within MIMO-OFDM cellular networks, enabling robust sensing services for LAE applications through standardized 5G New Radio (NR) infrastructure. We first develop a low-complexity parameter extraction algorithm employing CANDECOMP/PARAFAC (CP) tensor decomposition, which exploits the inherent Vandermonde structure in delay-related factor matrices to efficiently recover bistatic ranges, Doppler velocities, and angles-of-arrival (AoA) from multi-dimensional received signal tensors. To resolve data association ambiguity across distributed transmitter-receiver pairs and mitigate erroneous estimates, we further design a robust fusion scheme based on the minimum spanning tree (MST) method, enabling joint 3D position and velocity reconstruction. Comprehensive simulation results validate the framework's superiority in computational efficiency and sensing performance for low-altitude scenarios.
title Cooperative Bistatic ISAC Systems for Low-Altitude Economy
topic Signal Processing
Information Theory
url https://arxiv.org/abs/2506.18067