In this paper, we study the multi-target detection problem in a movable-antenna (MA)-enabled wireless sensing system with linear arrays, in which both the direct line-of-sight (LoS) paths and the first-order non-LoS (NLoS) paths are explicitly considered. Unlike conventional fixed-position antenna arrays, MAs provide additional design degrees of freedom by enabling adaptive antenna positioning to reconfigure the propagation geometry, offering great potential to enhance the sensing performance in complex multi-target multipath scenarios. Under this setup, we first develop a cross sparsity Markov mixture prior to derive the posterior probabilities of target locations, in which the structural correlation between the LoS and NLoS paths is effectively exploited to enhance the location estimation accuracy. Based on the derived posterior probabilities, we further analyze the angular-domain sensing performance for multi-target detection by proposing a new two-dimensional (2D) ambiguity function as the performance metric. Next, we optimize the MA positions to suppress the sidelobe levels and narrow the mainlobe width of the proposed ambiguity function. Although the resulting problem is highly non-convex, we develop a low-complexity Dykstra-based projected gradient descent algorithm to solve it efficiently. Finally, simulation results verify the accuracy of the proposed ambiguity function analysis, demonstrate the substantial performance gains enabled by the proposed prior model and MAs, and show that the proposed algorithm achieves performance comparable to existing methods with significantly lower computational complexity.
This paper investigates the angle-of-arrival (AoA) estimation problem for wireless sensing systems equipped with movable antennas and proposes a successive convex approximation-based position optimization algorithm that achieves superior AoA estimation performance.
Chengzhi Ye, Ruo-Yu Zhang, Shichao Wei et al.· 1 citation
Functional analysis of the SPEB's moment structure proves that the optimal antenna distributions can be realized by a centro-symmetric structure, and shows that the worst-case target is located at the array broadside on the Rayleigh boundary.
The growing demand for high spectral efficiency in 6G and beyond has driven research into adaptive antenna architectures capable of exploiting the spatial structure of multipath propagation channels. Conventional base station arrays are deployed with fixed element positions and cannot adapt to the instantaneous spatial...
Yi-Zhe Zhao, Amna Irshad, Emil Bjornson· IEEE International Symposium...· 0 citations
This paper investigates robust beamforming and antenna position design for movable antenna (MA)-enabled integrated sensing and communication (ISAC) systems under antenna position errors. In particular, deviations between the actual and nominal antenna positions in practical MA arrays are inevitable due to limited mecha...
Ze-Yuan Zhang, Ning Wei, Ahmad Bazzi et al.· 0 citations
This paper proposes a novel fluid antenna (FA) assisted orthogonal channel construction scheme for the near-field (NF) line-of-sight (LoS) multiple-input multiple-output (MIMO) system. Specifically, we consider a transmitter (Tx) equipped with a fixed-position uniform planar array (UPA) and a mobile receiver (Rx) equip...
Hai-Bo Liu, Lin Chen, Xiao-Jun Yuan et al.· IEEE Transactions on Communi...· 0 citations
This letter investigates a movable antenna (MA)-enabled multiuser communication system, where the base station (BS) is equipped with multiple movable subarrays to realize group movement of antenna elements. To balance the modeling accuracy of the spherical-wave model (SWM) and the simplicity of the plane-wave model (PW...