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High-Efficiency Super-Resolution FMCW Radar Algorithm Based on FFT Estimation

Title
High-Efficiency Super-Resolution FMCW Radar Algorithm Based on FFT Estimation
Author(s)
Kim, Bong-seokJin, YoungseokLee, JonghunKim, Sangdong
DGIST Authors
Kim, Bong-seokJin, YoungseokLee, JonghunKim, Sangdong
Issued Date
2021-06
Type
Article
Author Keywords
FMCW radarsuper-resolutionlow complexityMUSIC
Keywords
DOA ESTIMATIONACCURACY
ISSN
1424-8220
Abstract
This paper proposes a high-efficiency super-resolution frequency-modulated continuous-wave (FMCW) radar algorithm based on estimation by fast Fourier transform (FFT). In FMCW radar systems, the maximum number of samples is generally determined by the maximum detectable distance. However, targets are often closer than the maximum detectable distance. In this case, even if the number of samples is reduced, the ranges of targets can be estimated without degrading the performance. Based on this property, the proposed algorithm adaptively selects the number of samples used as input to the super-resolution algorithm depends on the coarsely estimated ranges of targets using the FFT. The proposed algorithm employs the reduced samples by the estimated distance by FFT as input to the super resolution algorithm instead of the maximum number of samples set by the maximum detectable distance. By doing so, the proposed algorithm achieves the similar performance of the conventional multiple signal classification algorithm (MUSIC), which is a representative of the super resolution algorithms while the performance does not degrade. Simulation results demonstrate the feasibility and performance improvement provided by the proposed algorithm; that is, the proposed algorithm achieves average complexity reduction of 88% compared to the conventional MUSIC algorithm while achieving its similar performance. Moreover, the improvement provided by the proposed algorithm was verified in practical conditions, as evidenced by our experimental results. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
URI
http://hdl.handle.net/20.500.11750/15439
DOI
10.3390/s21124018
Publisher
Multidisciplinary Digital Publishing Institute (MDPI)
Related Researcher
  • 이종훈 Lee, Jonghun
  • Research Interests Radar; AI; DL/ML; signal processing
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Appears in Collections:
Division of Automotive Technology Advanced Radar Tech. Lab 1. Journal Articles
Division of Automotive Technology 1. Journal Articles

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