exoALMA. IX. Regularized Maximum Likelihood Imaging of Non-Keplerian Features

Brianna Zawadzki, Ian Czekala, Maria Galloway-Sprietsma, Jaehan Bae, Marcelo Barraza-Alfaro, Myriam Benisty, Gianni Cataldi, Pietro Curone, Stefano Facchini, Daniele Fasano, Mario Flock, Misato Fukagawa, Himanshi Garg, Cassandra Hall, Thomas Hilder, Jane Huang, John D. Ilee, Andrea Isella, Andrés F. Izquierdo, Kazuhiro Kanagawa, Geoffroy Lesur, Cristiano Longarini, Ryan A. Loomis, Ryuta Orihara, Christophe Pinte, Daniel J. Price, Giovanni Rosotti, Jochen Stadler, Richard Teague, Hsi-Wei Yen, Gaylor Wafflard-Fernandez, David J. Wilner, Andrew J. Winter, Lisa Wölfer and Tomohiro C. Yoshida
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Abstract

The planet-hunting Atacama Large Millimeter/submillimeter Array (ALMA) large program exoALMA observed 15 protoplanetary disks at angular resolution and ∼100 m s−1 spectral resolution, characterizing disk structures and kinematics in enough detail to detect non-Keplerian features (NKFs) in the gas emission. As these features are often small and low-contrast, robust imaging procedures are critical for identifying and characterizing NKFs, including determining which features may be signatures of young planets. The exoALMA collaboration employed two different imaging procedures to ensure the consistent detection of NKFs: CLEAN, the standard iterative deconvolution algorithm, and regularized maximum likelihood (RML) imaging. This Letter presents the exoALMA RML images, obtained by maximizing the likelihood of the visibility data given a model image and subject to regularizer penalties. Crucially, in the context of exoALMA, RML images serve as an independent verification of marginal features seen in the fiducial CLEAN images. However, best practices for synthesizing RML images of multichanneled (i.e., velocity-resolved) data remain undefined, as prior work on RML imaging for protoplanetary disk data has primarily addressed single-image cases. We used the open-source Python package MPoL to explore RML image validation methods for multichanneled data and synthesize RML images from the exoALMA observations of seven protoplanetary disks with apparent NKFs in the 12CO J = 3–2 CLEAN images. We find that RML imaging methods independently reproduce the NKFs seen in the CLEAN images of these sources, suggesting that the NKFs are robust features rather than artifacts from a specific imaging procedure.
exoALMA。9。非开普勒天体特征的正则化极大似然成像
寻找行星的阿塔卡马大型毫米/亚毫米阵列(ALMA)大型程序外ALMA以角分辨率和~ 100 m s - 1光谱分辨率观测了15个原行星盘,以足够详细的方式表征了盘的结构和运动学,以探测气体发射中的非开普勒特征(NKFs)。由于这些特征通常很小且对比度低,稳健的成像程序对于识别和表征nkf至关重要,包括确定哪些特征可能是年轻行星的特征。exoALMA合作采用了两种不同的成像程序来确保NKFs的一致检测:CLEAN,标准迭代反卷积算法和正则化最大似然(RML)成像。本文介绍了exoALMA RML图像,该图像通过最大化给定模型图像的可见性数据的可能性并受到正则化惩罚而获得。至关重要的是,在exoALMA的背景下,RML图像可以作为基准CLEAN图像中看到的边缘特征的独立验证。然而,合成多通道(即速度分辨)数据的RML图像的最佳实践仍然不明确,因为先前对原行星盘数据的RML成像工作主要是解决单图像情况。我们使用开源Python包MPoL探索多通道数据的RML图像验证方法,并从12CO J = 3-2 CLEAN图像中具有表观NKFs的七个原行星盘的外alma观测中合成RML图像。我们发现RML成像方法独立地再现了这些来源的CLEAN图像中看到的nkf,这表明nkf是鲁棒特征,而不是特定成像程序的伪像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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