论文标题

使用梁因子校正了建模光谱仪数据色素的贝叶斯方法-I。数学形式主义

A Bayesian approach to modelling spectrometer data chromaticity corrected using beam factors -- I. Mathematical formalism

论文作者

Sims, Peter H., Bowman, Judd D., Mahesh, Nivedita, Murray, Steven G., Barrett, John P., Cappallo, Rigel, Monsalve, Raul A., Rogers, Alan E. E., Samson, Titu, Vydula, Akshatha K.

论文摘要

在全局21-CM信号分析中,通过仪器色上与检测21-CM信号相关的量表所引起的光谱仪数据中的光谱结构的准确考虑。在公开可用的边缘低频数据集中,使用基于光束因子的色度校正(BFCC)抑制这种复杂的结构,该结构通过将数据除以仪器梁光谱结构的天空映射模型来工作。对该数据的几项分析采用了模型,从该校正完成的假设开始。但是,尽管BFCC减轻了仪器色对数据的影响,但给定对前景光谱结构的现实假设,但校正仅是部分的。这使拟合与固有的天空模型(对数据的光谱结构没有工具贡献的模型)的解释变得复杂。在本文中,我们从BFCC的分析处理中得出了BFCC数据模型,并使用模拟观察结果证明,与对数据使用固有的天空模型相反,BFCC数据模型可以无公正地恢复模拟的全局21-CM信号从光束上的横梁变性校正数据校正的限制数据,该数据与数据纠正了误差未误差模型。

Accurately accounting for spectral structure in spectrometer data induced by instrumental chromaticity on scales relevant for detection of the 21-cm signal is among the most significant challenges in global 21-cm signal analysis. In the publicly available EDGES low-band data set, this complicating structure is suppressed using beam-factor based chromaticity correction (BFCC), which works by dividing the data by a sky-map-weighted model of the spectral structure of the instrument beam. Several analyses of this data have employed models that start with the assumption that this correction is complete. However, while BFCC mitigates the impact of instrumental chromaticity on the data, given realistic assumptions regarding the spectral structure of the foregrounds, the correction is only partial. This complicates the interpretation of fits to the data with intrinsic sky models (models that assume no instrumental contribution to the spectral structure of the data). In this paper, we derive a BFCC data model from an analytic treatment of BFCC and demonstrate using simulated observations that, in contrast to using an intrinsic sky model for the data, the BFCC data model enables unbiased recovery of a simulated global 21-cm signal from beam-factor chromaticity corrected data in the limit that the data is corrected with an error-free beam-factor model.

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