Determination of radiation pattern for linear antenna array with multistage adaptive compensator of interferences

被引:0
|
作者
Semibalamut, K. M. [1 ]
Khamula, S. V. [1 ]
Zhuk, S. Ya. [2 ]
Litvintsev, S. M. [2 ]
机构
[1] Eugene Bereznyak Mil Diplomat Acad, Kiev, Ukraine
[2] Natl Tech Univ Ukraine, Igor Sikorsky Kyiv Polytech Inst, Kiev, Ukraine
关键词
digital antenna array; adaptive compensator of interference; parallel-sequence signal processing; radiation pattern; matrix impulse response;
D O I
10.20535/RADAP.2018.74.17-24
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Introduction. Adaptive compensation algorithms of interference in digital antenna array (DAA) are characterized by high computational complexity. As result, it makes it difficult to implement them in real time. A parallelization of computational processes and simultaneous processing in all parallel channels is one of the main directions of increasing the speed of processing. The approach based on block Gram-Schmidt orthogonalization makes it possible to synthesize multistage adaptive compensators of interference with parallel-sequential signal processing that similar to the architecture of multiprocessor computer systems. The signal processing in DAA based on multistage adaptive compensator of interference is more complex than in single-stage ones. Each stage has own set of weight coefficients. As result, a technique for calculating radiation pattern (RP) of a linear DAA with a multistage adaptive compensator of interference and certain architecture and parameters is required. Theoretical results. The block diagram of the adaptive compensator of interference by using block signal orthogonalization of compensation channels and consistent determination of the compensation error has a ladder form and includes some stages. Each stage consists groups of modules. Each module in the group is a multi-input weight adder. The complex signal envelope from the DAA output applies to the main channel of an adaptive compensator of interference. The technique for calculating RP of DAA with a multistage adaptive compensator of interference by using block orthogonalization of compensation channels signals includes the following steps: 1. Forming of the matrix impulse characteristics for the adaptive compensator of interference stages. 2. Calculation of the matrix impulse response for a multistage filter realizing an interference compensation procedure based on its factorized representation. 3. Determination of the weight coefficients of an equivalent single-stage adaptive compensator of interference in the form of multi-input weighted adder. 4. Calculation of the RP of DAA with an equivalent single-stage adaptive compensator of interference. Experimental results. RP analysis based on the proposed technique is carried out for six-element linear DAA with one-, two-, three- and six-stage adaptive compensators of interference and three jammers. The analysis confirms that considered adaptive compensators of interference have the same effectiveness of interference elimination. In the same time, they are characterized by the same accuracy of "zeros" formation on interference sources and the width of rejection zone for different values of correlation matrix conditioning of the interference. Conclusions. We propose the technique for calculating the RP of DAA with multi-stage adaptive compensator of interference by using the factorized representation of the matrix impulse response of a multistage filter. This compensator is based on block signals orthogonalization of compensating channels and provides parallel-sequence signal processing.
引用
收藏
页码:17 / 24
页数:8
相关论文
共 50 条
  • [41] Antenna array configuration effects on the radiation pattern and BER of the modified adaptive CMA in CDMA based systems
    Dadashzadeh, G.
    Jedari, E.
    Hakkak, M.
    Kamarei, M.
    IRANIAN JOURNAL OF SCIENCE AND TECHNOLOGY TRANSACTION B-ENGINEERING, 2006, 30 (B2): : 277 - 284
  • [42] Antenna pattern correction technique based on an adaptive array algorithm
    Viikari, Ville
    Kolmonen, Veli-Matti
    Salo, Jari
    Raisanen, Antti V.
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2007, 55 (08) : 2194 - 2199
  • [43] ADAPTIVE ANTENNA-ARRAY BEAMFORMING WITH WIDE PATTERN NULLING
    GERSHMAN, AV
    ERMOLAYEV, VT
    IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII RADIOFIZIKA, 1991, 34 (06): : 720 - 724
  • [44] Downlink radiation pattern in adaptive array with mutual coupling
    Perri, EB
    Trintinalia, LC
    IEEE ANTENNAS AND PROPAGATION SOCIETY SYMPOSIUM, VOLS 1-4 2004, DIGEST, 2004, : 2659 - 2662
  • [45] Radiation Pattern of a VLF Linear Antenna in an Anisotropic Magnetoplasma
    He, Tong
    Zhang, Xue Wei
    Zeng, Hui Ran
    Li, Kai
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2022, 70 (10) : 8922 - 8931
  • [46] Array Failure Correction With Placement of Wide Nulls In The Radiation Pattern of A Linear Array Antenna Using Iterative Fast Fourier Transform
    Yadav, Kuldeep
    Rajak, Amit Kumar
    Singh, Harshavardhan
    2015 IEEE INTERNATIONAL CONFERENCE ON COMPUTATIONAL INTELLIGENCE AND COMMUNICATION TECHNOLOGY CICT 2015, 2015, : 471 - 474
  • [47] Optimal array factor radiation pattern synthesis for linear antenna array using cat swarm optimization: validation by an electromagnetic simulator
    Ram, Gopi
    Mandal, Durbadal
    Ghoshal, Sakti Prasad
    Kar, Rajib
    FRONTIERS OF INFORMATION TECHNOLOGY & ELECTRONIC ENGINEERING, 2017, 18 (04) : 570 - 577
  • [48] Optimal array factor radiation pattern synthesis for linear antenna array using cat swarm optimization: validation by an electromagnetic simulator
    Gopi Ram
    Durbadal Mandal
    Sakti Prasad Ghoshal
    Rajib Kar
    Frontiers of Information Technology & Electronic Engineering, 2017, 18 : 570 - 577
  • [49] Design of Linear Biconical Antenna Array for the Generation of Trapezoidal Pattern
    Sudhakar, A.
    Rao, C. Subba
    Yashwanth, A. V.
    PIERS 2013 STOCKHOLM: PROGRESS IN ELECTROMAGNETICS RESEARCH SYMPOSIUM, 2013, : 39 - 42
  • [50] Pattern synthesis of nonuniform linear antenna array based on FFDM
    Guo, Qiang
    Wang, Yani
    Li, Youming
    Qi, Liangang
    Chernogor, Leonid F.
    DIGITAL SIGNAL PROCESSING, 2023, 137