TY - GEN
T1 - Arbitrary-Order Superdirective Beamforming for Three-Layer Concentric Circular Sensor Arrays
AU - Li, Xiaoyuan
AU - Wang, Yong
AU - Yang, Yixin
N1 - Publisher Copyright:
© 2022 IEEE.
PY - 2022
Y1 - 2022
N2 - Superdirectivity can yield large directivity using a small array aperture, but it is sensitive to random errors. An originally proposed superdirectivity model decomposes the optimal beampattern into eigenbeams with different orders, and robust superdirective beampatterns can be obtained by summing eigenbeams with appropriately selected orders. However, the superdirectivity model is only suitable for circular arrays with one layer or two layers. This paper aims at extending the original model to three-layer concentric circular sensor arrays. It is found that the noise cross-correlation matrix of three-layer concentric circular sensor arrays in isotropic noise shows a block-circulant property when the matrix entries are properly arranged. By utilizing this property, the optimal beampattern, directivity factor, and error sensitivity function can be then expressed as the sums of eigenbeams and their directivity factors and error sensitivity functions, respectively, like circular arrays with one layer or two layers. Robust beampatterns can be similarly synthesized by summing some appropriately selected eigenbeams, and the maximum order of the those eigenbeams can be an arbitrary real number in its range. Simulation results show the proposed method can achieve flexible superdirectivity results for three-layer concentric circular sensor arrays.
AB - Superdirectivity can yield large directivity using a small array aperture, but it is sensitive to random errors. An originally proposed superdirectivity model decomposes the optimal beampattern into eigenbeams with different orders, and robust superdirective beampatterns can be obtained by summing eigenbeams with appropriately selected orders. However, the superdirectivity model is only suitable for circular arrays with one layer or two layers. This paper aims at extending the original model to three-layer concentric circular sensor arrays. It is found that the noise cross-correlation matrix of three-layer concentric circular sensor arrays in isotropic noise shows a block-circulant property when the matrix entries are properly arranged. By utilizing this property, the optimal beampattern, directivity factor, and error sensitivity function can be then expressed as the sums of eigenbeams and their directivity factors and error sensitivity functions, respectively, like circular arrays with one layer or two layers. Robust beampatterns can be similarly synthesized by summing some appropriately selected eigenbeams, and the maximum order of the those eigenbeams can be an arbitrary real number in its range. Simulation results show the proposed method can achieve flexible superdirectivity results for three-layer concentric circular sensor arrays.
KW - directivity factor
KW - error sensitivity function
KW - optimal beampattern
KW - superdirectivity
KW - three-layer concentric circular sensor arrays
UR - http://www.scopus.com/inward/record.url?scp=85171793551&partnerID=8YFLogxK
U2 - 10.1109/ICSPS58776.2022.00016
DO - 10.1109/ICSPS58776.2022.00016
M3 - 会议稿件
AN - SCOPUS:85171793551
T3 - Proceedings - 2022 14th International Conference on Signal Processing Systems, ICSPS 2022
SP - 56
EP - 63
BT - Proceedings - 2022 14th International Conference on Signal Processing Systems, ICSPS 2022
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 14th International Conference on Signal Processing Systems, ICSPS 2022
Y2 - 18 November 2022 through 20 November 2022
ER -