Adaptive Beampattern Control Via Linear and Quadratic Constraints for Circular Array STAP

Abstract

A general framework for adaptive and non-adaptive space-time beampattern synthesis using quadratic beampattern constraints with linearly constrained minimum variance (LCMV) beamforming has been developed. Main beam and sidelobe pattern control is achieved by imposing a set of inequality constraints on the weighted mean-square error between the adaptive pattern and a desired beampattern over a set of angle-Doppler regions. An iterative procedure for satisfying the constraints is developed which can be applied as post-processing to standard LCMV beamformers. The algorithm is used to synthesize a nearly uniform sidelobe level quiescent pattern for the circular UHF Electronically Scanned Array (UESA), and to control sidelobe levels for the same array in an adaptive manner. The technique has been generalized for general rank reducing transformations to reduce computational complexity. Performance results using data provided by Lincoln Lab show that under low sample support conditions, sidelobes can be effectively suppressed while maintaining high signal-to-interference plus noise ratio, and deep nulls on clutter and interferers.

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Document Details

Document Type
Technical Report
Publication Date
Dec 01, 2002
Accession Number
ADA417462

Entities

People

  • Kristine L. Bell

Organizations

  • George Mason University

Tags

Communities of Interest

  • Sensors

DTIC Thesaurus Topics

  • Algorithms
  • Antenna Radiation Patterns
  • Antennas
  • Arrays
  • Computational Complexity
  • Covariance
  • Electronically Scanned Array
  • Inequalities
  • Iterations
  • Linear Arrays
  • Military Research
  • Noise
  • Radar
  • Sidelobes
  • Standards
  • Steering

Fields of Study

  • Engineering

Readers

  • Adaptive Control and Estimation with Uncertainty in Dynamic Systems.
  • Phased Array Antenna Design.

Technology Areas

  • Microelectronics
  • Space
  • Space - Spacecraft Maneuvers