SIRE: A MIMO Radar for Landmine/IED Detection

Abstract

In this paper, we present the Synchronous Impulse Reconstruction Radar (SIRE) Ultra-wideband (UWB) radar designed by the Army Research Lab (ARL) for landmine and improvised explosive device (IED) detection as a 2 by 16 MIMO radar (with collocated antennas). Its improvement over its SIMO counterpart in terms of beampattern/cross range resolution are discussed and demonstrated using simulated data herein. The limitations of this radar for Radio Frequency Interference (RFI) suppression are also discussed in this paper. A relaxation method (RELAX) combined with averaging of multiple realizations of the measured data is presented for RFI suppression; results show no noticeable target signature distortion after suppression. In this paper, the back-projection (delay and sum) data independent method is used for generating SAR images. A side-lobe minimization technique called recursive side-lobe minimization (RSM) is also discussed for reducing side-lobes in this data independent approach. We introduce a data-dependent sparsity based spectral estimation technique called Sparse Learning via Iterative Minimization (SLIM) as well as a data-dependent CLEAN approach for generating SAR images for the SIRE radar. These data-adaptive techniques show improvement in side-lobe reduction and resolution for simulated data for the SIRE radar.

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Document Details

Document Type
Technical Report
Publication Date
Apr 30, 2013
Accession Number
ADA618058

Entities

People

  • Jian Li
  • Lam M. Nguyen
  • Ode Ojowu Jr.
  • Yue Wu

Organizations

  • Howard University

Tags

Communities of Interest

  • Counter IED

DTIC Thesaurus Topics

  • Algorithms
  • Bandwidth
  • Detection
  • Frequency
  • Imaging Techniques
  • Improvised Explosive Devices
  • Military Research
  • Mimo Radar
  • Multiple Input Multiple Output
  • Radar
  • Radar Imaging
  • Radar Signals
  • Radio Frequency
  • Radio Frequency Interference
  • Synthetic Aperture Radar
  • Target Signatures
  • Two Dimensional

Fields of Study

  • Engineering

Readers

  • Image Processing and Computer Vision.
  • Radio communications and signal processing.
  • Sensor Fusion and Tracking Systems.