English

Super-resolution Full Polarimetric Imaging for Radio Interferometry with Sparse Modeling

Instrumentation and Methods for Astrophysics 2017-03-29 v3 High Energy Astrophysical Phenomena

Abstract

We propose a new technique for radio interferometry to obtain super-resolution full polarization images in all four Stokes parameters using sparse modeling. The proposed technique reconstructs the image in each Stokes parameter from the corresponding full-complex Stokes visibilities by utilizing two regularization functions: the 1\ell _1-norm and total variation (TV) of the brightness distribution. As an application of this technique, we present simulated linear polarization observations of two physically motivated models of M87 with the Event Horizon Telescope (EHT). We confirm that 1\ell _1+TV regularization can achieve an optimal resolution of 2530\sim 25-30\% of the diffraction limit λ/Dmax\lambda/D_{\rm max}, which is the nominal spatial resolution of a radio interferometer for both the total intensity (i.e. Stokes II) and linear polarizations (i.e. Stokes QQ and UU). This optimal resolution is better than that obtained from the widely used Cotton-Schwab CLEAN algorithm or from using 1\ell _1 or TV regularizations alone. Furthermore, we find that 1\ell _1+TV regularization can achieve much better image fidelity in linear polarization than other techniques over a wide range of spatial scales, not only in the super-resolution regime, but also on scales larger than the diffraction limit. Our results clearly demonstrate that sparse reconstruction is a useful choice for high-fidelity full-polarimetric interferometric imaging.

Keywords

Cite

@article{arxiv.1702.00424,
  title  = {Super-resolution Full Polarimetric Imaging for Radio Interferometry with Sparse Modeling},
  author = {Kazunori Akiyama and Shiro Ikeda and Mollie Pleau and Vincent L. Fish and Fumie Tazaki and Kazuki Kuramochi and Avery Broderick and Jason Dexter and Monika Mościbrodzka and Michael Gowanlock and Mareki Honma and Sheperd S. Doeleman},
  journal= {arXiv preprint arXiv:1702.00424},
  year   = {2017}
}

Comments

12 pages, 4 Figures, accepted for publication in the Astronomical Journal (AJ)

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