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Nonuniform fast fourier transforms using min-max interpolation

IEEE Transactions on Signal Processing · 2003 · Vol. 51(2) · pp. 560–574
Jeffrey A. FesslerBradley P. Sutton

Abstract

The fast Fourier transform (FFT) is used widely in signal processing for efficient computation of the FT of finite-length signals over a set of uniformly spaced frequency locations. However, in many applications, one requires nonuniform sampling in the frequency domain, i.e., a nonuniform FT. Several papers have described fast approximations for the nonuniform FT based on interpolating an oversampled FFT. This paper presents an interpolation method for the nonuniform FT that is optimal in the min-max sense of minimizing the worst-case approximation error over all signals of unit norm. The proposed method easily generalizes to multidimensional signals. Numerical results show that the min-max approach provides substantially lower approximation errors than conventional interpolation methods. The min-max criterion is also useful for optimizing the parameters of interpolation kernels such as the Kaiser-Bessel function.

Advanced Electrical Measurement TechniquesImage and Signal Denoising MethodsDigital Filter Design and ImplementationInterpolation (computer graphics)Fast Fourier transformMathematicsAlgorithmSignal processingBessel functionNorm (philosophy)Frequency domainComputationMathematical analysis

Funding

  • National Science Foundation
  • University of Michigan
  • National Institutes of Health
Citations
1,312
FWCI
18.01
field-weighted impact
References
70
Percentile
100%
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References
The Fourier reconstruction of a head section
IEEE Transactions on Nuclear Science · 1974 · 2,155 citations
Advances in sensitivity encoding with arbitrary <i>k</i>‐space trajectories
Magnetic Resonance in Medicine · 2001 · 1,205 citations
SENSE: Sensitivity encoding for fast MRI
Magnetic Resonance in Medicine · 1999 · 6,058 citations
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