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Volume 39 Issue 12
Dec.  2017
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MA Junhu, LIU Changyuan, GAN Lu. CFAR Target Detection Algorithm Based on Compressive Sensing[J]. Journal of Electronics & Information Technology, 2017, 39(12): 2899-2904. doi: 10.11999/JEIT170382
Citation: MA Junhu, LIU Changyuan, GAN Lu. CFAR Target Detection Algorithm Based on Compressive Sensing[J]. Journal of Electronics & Information Technology, 2017, 39(12): 2899-2904. doi: 10.11999/JEIT170382

CFAR Target Detection Algorithm Based on Compressive Sensing

doi: 10.11999/JEIT170382
Funds:

The National Natural Science Foundation of China-China Academy of Engineering Physics Joint Foundation (NSAF) (U1530126)

  • Received Date: 2017-04-26
  • Rev Recd Date: 2017-07-10
  • Publish Date: 2017-12-19
  • A new Constant False Alarm Rate (CFAR) target detection algorithm is proposed based on Compressive Sensing (CS). Firstly, the sparsity of target in the distance dimension is analyzed and the sparse dictionary is constructed for the echo signal. Secondly, a certain measurement matrix and CFAR detection structure are designed based on CS. The proposed detector can detect sparse signals directly with high accuracy without any signal reconstruction. The proposed algorithm has a good noise reduction performance, which can detect low SNR and low Signal-to-Interference Ratio (SIR) signals successfully. Finally, computer simulation results verify that when SNR is equal to -14 dB and SIR is equal to -10 dB, the proposed detector can reduce the half measurements via compared with classical Matched Filter (MF) algorithm. Whats more, the performance of the proposed detector is better than CS MF algorithm.
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