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Dipole Anisotropy as an Essential Qualifier for the Monopole Component of the Cosmic-dawn Spectral Signature, and the Potential of Diurnal Pattern for Foreground Estimation

机译:偶极偶联作为宇宙曙光光谱签名单极组分的基本限定,以及前景估计的昼夜模式的潜力

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摘要

While the importance of detecting the global spectral signatures of the redshifted 21 cm line of atomic hydrogen from the very early epochs cannot be overstated, the associated challenges are not limited to isolating the weak signal of interest from the orders of magnitude brighter foregrounds, and extend equally to reliably establishing the origin of the apparent global signal to the very early epochs. This Letter proposes a critical dipole test that the measurements of the monopole component of the spectrum of interest should necessarily pass. Our criterion is based on a unique correspondence between the intrinsic monopole spectrum and the differential spectrum as an imprint of dipole anisotropy (DA) resulting from the motion of observer with respect to the rest frame of our source (such as that of our solar system, interpreted from the DA in the cosmic microwave background radiation (CMBR)). More importantly, the spectral manifestation of the DA gets amplified by a significant factor, depending on the monopole spectral slopes, rendering it feasible to measure. We describe the details of such a test, and illustrate its application with the help of simulations. The Letter also alludes to a novel model-independent path toward isolating the foreground contribution, using the diurnal pattern readily apparent in drift-scan observations. Such a dipole qualifier for the monopole spectrum, when combined with reliable foreground estimation, is expected to pave way for in situ validation of spectral signatures from early epochs, which are important to presently reported and future detections of Epoch of Reionization (EoR) signal.
机译:虽然检测从非常早期的时期的红移21厘米原子氢线的全局光谱签名的重要性不能夸大,但相关的挑战不仅限于将感兴趣的弱势信号隔离,并延伸同样可靠地将表观全局信号的​​起源与早期的时期建立起来。这封信提出了一个关键的偶极测试,即感兴趣的光谱的单极组分的测量应该必须通过。我们的标准基于内在单极频谱和差分谱之间的唯一对应关系,作为由观察者关于我们的源的休息帧的运动员(例如我们太阳系的休息帧)产生的偶极偏差(DA)的印记。从宇宙微波背景辐射(CMBR)中的DA解释。更重要的是,DA的光谱表现因重大因素而放大,这取决于单极光谱斜率,使其可行测量。我们描述了这种测试的细节,并在模拟的帮助下说明了其应用。这些信还通过在漂移扫描观测中易于明显的昼夜图案来分离前景贡献的新型模型无关的路径。当与可靠的前景估计结合时,这种偶极谱的偶极谱预期在早期时期的频谱签名方面铺平道路,这对于目前报告和未来的标准(EOR)信号的纪元检测是重要的。

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