Lost Horizon: Quantifying the Effect of Local Topography on Global 21 cm Cosmology Data Analysis

被引:16
作者
Bassett, Neil [1 ]
Rapetti, David [1 ,2 ,3 ]
Tauscher, Keith [1 ]
Nhan, Bang D. [4 ,5 ]
Bordenave, David D. [4 ,5 ]
Hibbard, Joshua J. [1 ]
Burns, Jack O. [1 ]
机构
[1] Univ Colorado, Dept Astrophys & Planetary Sci, Ctr Astrophys & Space Astron, Boulder, CO 80309 USA
[2] NASA Ames Res Ctr, Moffett Field, CA 94035 USA
[3] Univ Space Res Assoc, Res Inst Adv Comp Sci, Columbia, MD 21046 USA
[4] Univ Virginia, Dept Astron, Charlottesville, VA 22903 USA
[5] Natl Radio Astron Observ NRAO Technol Ctr NTC, Charlottesville, VA 22903 USA
基金
美国国家航空航天局;
关键词
SIGNAL EXTRACTION;
D O I
10.3847/1538-4357/ac1cde
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We present an investigation of the horizon and its effect on global 21 cm observations and analysis. We find that the horizon cannot be ignored when modeling low-frequency observations. Even if the sky and antenna beam are known exactly, forward models cannot fully describe the beam-weighted foreground component without accurate knowledge of the horizon. When fitting data to extract the 21 cm signal, a single time-averaged spectrum or independent multi-spectrum fits may be able to compensate for the bias imposed by the horizon. However, these types of fits lack constraining power on the 21 cm signal, leading to large uncertainties on the signal extraction, in some cases larger in magnitude than the 21 cm signal itself. A significant decrease in uncertainty can be achieved by performing multi-spectrum fits in which the spectra are modeled simultaneously with common parameters. The cost of this greatly increased constraining power, however, is that the time dependence of the horizon's effect, which is more complex than its spectral dependence, must be precisely modeled to achieve a good fit. To aid in modeling the horizon, we present an algorithm and Python package for calculating the horizon profile from a given observation site using elevation data. We also address several practical concerns such as pixelization error, uncertainty in the horizon profile, and foreground obstructions such as surrounding buildings and vegetation. We demonstrate that our training-set-based analysis pipeline can account for all of these factors to model the horizon well enough to precisely extract the 21 cm signal from simulated observations.
引用
收藏
页数:15
相关论文
共 38 条
[21]   SARAS: a precision system for measurement of the cosmic radio background and signatures from the epoch of reionization [J].
Patra, Nipanjana ;
Subrahmanyan, Ravi ;
Raghunathan, A. ;
Shankar, N. Udaya .
EXPERIMENTAL ASTRONOMY, 2013, 36 (1-2) :319-370
[22]   Probing Radio Intensity at High-Z from Marion: 2017 Instrument [J].
Philip, L. ;
Abdurashidova, Z. ;
Chiang, H. C. ;
Ghazi, N. ;
Gumba, A. ;
Heilgendor, H. M. ;
Jauregui-Garcia, J. M. ;
Malepe, K. ;
Nunhokee, C. D. ;
Peterson, J. ;
Sievers, J. L. ;
Simes, V. ;
Spann, R. .
JOURNAL OF ASTRONOMICAL INSTRUMENTATION, 2019, 8 (02)
[23]   Design and characterization of the Large-aperture Experiment to Detect the Dark Age (LEDA) radiometer systems [J].
Price, D. C. ;
Greenhill, L. J. ;
Fialkov, A. ;
Bernardi, G. ;
Garsden, H. ;
Barsdell, B. R. ;
Kocz, J. ;
Anderson, M. M. ;
Bourke, S. A. ;
Craig, J. ;
Dexter, M. R. ;
Dowell, J. ;
Eastwood, M. W. ;
Eftekhari, T. ;
Ellingson, S. W. ;
Hallinan, G. ;
Hartman, J. M. ;
Kimberk, R. ;
Lazio, T. Joseph W. ;
Leiker, S. ;
MacMahon, D. ;
Monroe, R. ;
Schinzel, F. ;
Taylor, G. B. ;
Tong, E. ;
Werthimer, D. ;
Woody, D. P. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2018, 478 (03) :4193-4213
[24]   Global 21 cm Signal Extraction from Foreground and Instrumental Effects. II. Efficient and Self-consistent Technique for Constraining Nonlinear Signal Models [J].
Rapetti, David ;
Tauscher, Keith ;
Mirocha, Jordan ;
Burns, Jack O. .
ASTROPHYSICAL JOURNAL, 2020, 897 (02)
[25]   An improved source-subtracted and destriped 408-MHz all-sky map [J].
Remazeilles, M. ;
Dickinson, C. ;
Banday, A. J. ;
Bigot-Sazy, M. -A. ;
Ghosh, T. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2015, 451 (04) :4311-4327
[26]   Quantifying ionospheric effects on global 21-cm observations [J].
Shen, Emma ;
Anstey, Dominic ;
Acedo, Eloy de Lera ;
Fialkov, Anastasia ;
Handley, Will .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2021, 503 (01) :344-353
[27]   Testing for calibration systematics in the EDGES low-band data using Bayesian model selection [J].
Sims, Peter H. ;
Pober, Jonathan C. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2020, 492 (01) :22-38
[28]   The Redshifted 21 cm Signal in the EDGES Low-band Spectrum [J].
Singh, Saurabh ;
Subrahmanyan, Ravi .
ASTROPHYSICAL JOURNAL, 2019, 880 (01)
[29]   First Results on the Epoch of Reionization from First Light with SARAS 2 [J].
Singh, Saurabh ;
Subrahmanyan, Ravi ;
Shankar, N. Udaya ;
Rao, Mayuri Sathyanarayana ;
Fialkov, Anastasia ;
Cohen, Aviad ;
Barkana, Rennan ;
Girish, B. S. ;
Raghunathan, A. ;
Somashekar, R. ;
Srivani, K. S. .
ASTROPHYSICAL JOURNAL LETTERS, 2017, 845 (02)
[30]   The Lunar Orbiter Laser Altimeter Investigation on the Lunar Reconnaissance Orbiter Mission [J].
Smith, David E. ;
Zuber, Maria T. ;
Jackson, Glenn B. ;
Cavanaugh, John F. ;
Neumann, Gregory A. ;
Riris, Haris ;
Sun, Xiaoli ;
Zellar, Ronald S. ;
Coltharp, Craig ;
Connelly, Joseph ;
Katz, Richard B. ;
Kleyner, Igor ;
Liiva, Peter ;
Matuszeski, Adam ;
Mazarico, Erwan M. ;
McGarry, Jan F. ;
Novo-Gradac, Anne-Marie ;
Ott, Melanie N. ;
Peters, Carlton ;
Ramos-Izquierdo, Luis A. ;
Ramsey, Lawrence ;
Rowlands, David D. ;
Schmidt, Stephen ;
Scott, V. Stanley, III ;
Shaw, George B. ;
Smith, James C. ;
Swinski, Joseph-Paul ;
Torrence, Mark H. ;
Unger, Glenn ;
Yu, Anthony W. ;
Zagwodzki, Thomas W. .
SPACE SCIENCE REVIEWS, 2010, 150 (1-4) :209-241