Comparison of Fast, Hybrid Imaging Architectures for Multi-scale, Hierarchical Aperture Arrays
arXiv:2411.17804 · doi:10.1017/pasa.2024.121
Abstract
Two major areas of modern radio astronomy, namely, explosive astrophysical transient phenomena and observations of cosmological structures, are driving the design of aperture arrays towards large numbers of low-cost elements consisting of multiple spatial scales spanning the dimensions of individual elements, the size of stations (groupings of individual elements), and the spacing between stations. Such multi-scale, hierarchical aperture arrays require a combination of data processing architectures -- pre-correlation beamformer, generic version of FFT-based direct imager, post-correlation beamformer, and post-correlation FFT imager -- operating on different ranges of spatial scales to obtain optimal performance in imaging the entire field of view. Adopting a computational cost metric based on the number of floating point operations, its distribution over the dimensions of discovery space, namely, field of view, angular resolution, polarisation, frequency, and time is examined to determine the most efficient hybrid architectures over the parameter space of hierarchical aperture array layouts. Nominal parameters of specific upcoming and planned arrays -- the SKA at low frequencies (SKA-low), SKA-low-core, a proposed long baseline extension to SKA-low (LAMBDA-I), compact all-sky phased array (CASPA), and a lunar array (FarView-core) -- are used to determine the most optimal architecture hierarchy for each from a computational standpoint, and provide a guide for designing hybrid architectures for multi-scale aperture arrays. For large, dense-packed layouts, a FFT-based direct imager is most efficient for most cadence intervals, and for other layouts that have relatively lesser number of elements or greater sparsity in distribution, the best architecture is more sensitive to the cadence interval, which in turn is determined by the science goals.
Accepted for publication in PASA. 18 pages, 21 figures (including subpanels), 3 tables
References in corpus (13)
- The non-coplanar baselines effect in radio interferometry: The W-Projection algorithm
- Radio Emission Signatures in the Crab Pulsar
- Correcting direction-dependent gains in the deconvolution of radio interferometric images
- The Fast Fourier Transform Telescope
- Pulsar Radio Emission Mechanism: Radio Nanoshots as a Low Frequency Afterglow of Relativistic Magnetic Reconnection
- The variability timescales and brightness temperatures of radio flares from stars to supermassive black holes
- Detection of ultra-fast radio bursts from FRB 20121102A
- Formation of Sub-millisecond Pulsars and Possibility of Detection
- Fine structures of radio bursts from flare star AD Leo with FAST observations
- A Real-Time, All-Sky, High Time Resolution, Direct Imager for the Long Wavelength Array
- Four New Fast Radio Bursts Discovered in the Parkes 70-cm Pulsar Survey Archive
- The ultra narrow FRB20191107B, and the origins of FRB scattering
- Optimization and Commissioning of the EPIC Commensal Radio Transient Imager for the Long Wavelength Array