English

A Fast Broadband Beamspace Transformation

Signal Processing 2026-04-17 v2

Abstract

We present a new computationally efficient method for multi-beamforming in the broadband setting. Our "fast beamspace transformation" forms BB beams from MM sensor outputs using a number of operations per sample that scales linearly (to within logarithmic factors) with MM when BMB\sim M. While the narrowband version of this transformation can be performed efficiently with a spatial fast Fourier transform, the broadband setting requires coherent processing of multiple array snapshots simultaneously. Our algorithm works by taking NN samples off of each of MM sensors and encoding the sensor outputs into a set of coefficients using a special non-uniform spaced Fourier transform. From these coefficients, each beam is formed by solving a small system of equations that has Toeplitz structure. The total runtime complexity is O(MlogN+BlogN)\mathcal{O}(M\log N+B\log N) operations per sample, exhibiting essentially the same scaling as in the narrowband case and vastly outperforming broadband beamformers based on delay and sum whose computations scale as O(MB)\mathcal{O}(MB). Alongside a careful mathematical formulation and analysis of our fast broadband beamspace transform, we provide a host of numerical experiments demonstrating the algorithm's favorable computational scaling and high accuracy. Finally, we demonstrate how tasks such as interpolating to ``off-grid" angles and nulling an interferer are more computationally efficient when performed directly in beamspace.

Keywords

Cite

@article{arxiv.2512.08887,
  title  = {A Fast Broadband Beamspace Transformation},
  author = {Nakul Singh and Coleman DeLude and Mark Davenport and Justin Romberg},
  journal= {arXiv preprint arXiv:2512.08887},
  year   = {2026}
}
R2 v1 2026-07-01T08:17:32.958Z