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The James Webb Space Telescope (JWST) has spectroscopically confirmed numerous galaxies at $z > 10$.
Sersic J. L., 1968. Atlas de Galaxias Australes
1968
Earlier work this paper cites.
Oke J. B., Gunn J. E., 1983. Secondary standard stars for absolute spectrophotometry., ApJ , 266, 713
1983
Earlier work this paper cites.
Madau P., 1995. Radiative Transfer in a Clumpy Universe: The Colors of High-Redshift Galaxies, ApJ , 441, 18
1995
Earlier work this paper cites.
Kennicutt Robert C. J., 1998. Star Formation in Galaxies Along the Hubble Sequence, ARA&A , 36, 189
1998
Earlier work this paper cites.
Calzetti D., et al., 2000. The Dust Content and Opacity of Actively Star-forming Galaxies, ApJ , 533, 682
2000
Earlier work this paper cites.
Peng C. Y., Ho L. C., Impey C. D., Rix H.-W., 2002. Detailed Structural Decomposition of Galaxy Images, AJ , 124, 266
2002
Earlier work this paper cites.
Kroupa P., Boily C. M., 2002. On the mass function of star clusters, MNRAS , 336, 1188
2002
Earlier work this paper cites.
Bruzual G., Charlot S., 2003. Stellar population synthesis at the resolution of 2003, MNRAS , 344, 1000
2003
Earlier work this paper cites.
Giavalisco M., et al., 2004. The Great Observatories Origins Deep Survey: Initial Results from Optical and Near-Infrared Imaging, ApJ , 600, L93
2004
Earlier work this paper cites.
Beckwith S. V. W., et al., 2006. The Hubble Ultra Deep Field, AJ , 132, 1729
2006
Earlier work this paper cites.
Hunter J. D., 2007. Matplotlib: A 2D Graphics Environment, Computing in Science and Engineering , 9, 90
2007
Earlier work this paper cites.
Conroy C., Gunn J. E., White M., 2009. The Propagation of Uncertainties in Stellar Population Synthesis Modeling. I. The Relevance of Uncertain Aspects of Stellar Evolution and the Initial Mass Function to the Derived Physical Properties of Galaxies, ApJ , 699, 486
2009
Earlier work this paper cites.
Conroy C., Gunn J. E., 2010. The Propagation of Uncertainties in Stellar Population Synthesis Modeling. III. Model Calibration, Comparison, and Evaluation, ApJ , 712, 833
2010
Earlier work this paper cites.
Falcón-Barroso J., et al., 2011. An updated MILES stellar library and stellar population models, A&A , 532, A95
2011
Earlier work this paper cites.
Paxton B., et al., 2011. Modules for Experiments in Stellar Astrophysics (MESA), ApJS , 192, 3
2011
Earlier work this paper cites.
van der Walt S., Colbert S. C., Varoquaux G., 2011. The NumPy Array: A Structure for Efficient Numerical Computation, Computing in Science and Engineering , 13, 22
2011
Earlier work this paper cites.
Krist J. E., Hook R. N., Stoehr F., 2011. in Kahan M. A., ed., Society of Photo-Optical Instrumentation Engineers (SPIE) Conference Series Vol. 8127, Optical Modeling and Performance Predictions V. p. 81270J, doi:10.1117/12.892762
2011
Earlier work this paper cites.
Bressan A., et al., 2012. PARSEC: stellar tracks and isochrones with the PAdova and TRieste Stellar Evolution Code, MNRAS , 427, 127
2012
Earlier work this paper cites.
Ferland G. J., et al., 2013. The 2013 Release of Cloudy, Rev. Mexicana Astron. Astrofis. , 49, 137
2013
Earlier work this paper cites.
Paxton B., et al., 2013. Modules for Experiments in Stellar Astrophysics (MESA): Planets, Oscillations, Rotation, and Massive Stars, ApJS , 208, 4
2013
Earlier work this paper cites.
Astropy Collaboration et al., 2013. Astropy: A community Python package for astronomy, A&A , 558, A33
2013
Earlier work this paper cites.
Inoue A. K., Shimizu I., Iwata I., Tanaka M., 2014. An updated analytic model for attenuation by the intergalactic medium, MNRAS , 442, 1805
2014
Earlier work this paper cites.
Foreman-Mackey D., Sick J., Johnson B., 2014. python-fsps: Python bindings to FSPS (v0.1.1). Zenodo, doi:10.5281/zenodo.12157
2014
Earlier work this paper cites.
Perrin M. D., et al., 2014. in Oschmann Jacobus M. J., Clampin M., Fazio G. G., MacEwen H. A., eds, Society of Photo-Optical Instrumentation Engineers (SPIE) Conference Series Vol. 9143, Space Telescopes and Instrumentation 2014: Optical, Infrared, and Millimeter Wave. p. 91433X, doi:10.1117/12.2056689
2014
Earlier work this paper cites.
Paxton B., et al., 2015. Modules for Experiments in Stellar Astrophysics (MESA): Binaries, Pulsations, and Explosions, ApJS , 220, 15
2015
Earlier work this paper cites.
Chevallard J., Charlot S., 2016. Modelling and interpreting spectral energy distributions of galaxies with BEAGLE, MNRAS , 462, 1415
2016
Earlier work this paper cites.
Dotter A., 2016. MESA Isochrones and Stellar Tracks (MIST) 0: Methods for the Construction of Stellar Isochrones, ApJS , 222, 8
2016
Earlier work this paper cites.
Choi J., et al., 2016. Mesa Isochrones and Stellar Tracks (MIST). I. Solar-scaled Models, ApJ , 823, 102
2016
Cited alongside, same era.
Byler N., Dalcanton J. J., Conroy C., Johnson B. D., 2017. Nebular Continuum and Line Emission in Stellar Population Synthesis Models, ApJ , 840, 44
2017
Cited alongside, same era.
Carnall A. C., McLure R. J., Dunlop J. S., Davé R., 2018. Inferring the star formation histories of massive quiescent galaxies with BAGPIPES: evidence for multiple quenching mechanisms, MNRAS , 480, 4379
2018
Cited alongside, same era.
Planck Collaboration et al., 2020. Planck 2018 results. VI. Cosmological parameters, A&A , 641, A6
2018
Cited alongside, same era.
Paxton B., et al., 2018. Modules for Experiments in Stellar Astrophysics (MESA): Convective Boundaries, Element Diffusion, and Massive Star Explosions, ApJS , 234, 34
2018
Steinhardt C. L., Kokorev V., Rusakov V., Garcia E., Sneppen A., 2023. Templates for Fitting Photometry of Ultra-high-redshift Galaxies, ApJ , 951, L40
2023
Later among the works it cites.
Endsley R., et al., 2023. A JWST/NIRCam study of key contributors to reionization: the star-forming and ionizing properties of UV-faint z 7-8 galaxies, MNRAS , 524, 2312
2023
Later among the works it cites.
Oesch P. A., et al., 2023. The JWST FRESCO survey: legacy NIRCam/grism spectroscopy and imaging in the two GOODS fields, MNRAS , 525, 2864
2023
Later among the works it cites.
Rieke M. J., et al., 2023. JADES Initial Data Release for the Hubble Ultra Deep Field: Revealing the Faint Infrared Sky with Deep JWST NIRCam Imaging, ApJS , 269, 16
2023
Later among the works it cites.
Rinaldi P., et al., 2023. MIDIS: Strong (H β \beta +[O III]) and H α \alpha Emitters at Redshift z ≃ \simeq 7-8 Unveiled with JWST NIRCam and MIRI Imaging in the Hubble eXtreme Deep Field, ApJ , 952, 143
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Cited alongside, same era.
Astropy Collaboration et al., 2018. The Astropy Project: Building an Open-science Project and Status of the v2.0 Core Package, AJ , 156, 123
2018
Cited alongside, same era.
Speagle J. S., 2020. DYNESTY: a dynamic nested sampling package for estimating Bayesian posteriors and evidences, MNRAS , 493, 3132
2020
Cited alongside, same era.
Behroozi P., et al., 2020. The Universe at z > 10: predictions for JWST from the UNIVERSEMACHINE DR1, MNRAS , 499, 5702
2020
Cited alongside, same era.
Harris C. R., et al., 2020. Array programming with NumPy, Nature , 585, 357
2020
Cited alongside, same era.
Virtanen P., et al., 2020. SciPy 1.0: fundamental algorithms for scientific computing in Python, Nature Methods , 17, 261
2020
Cited alongside, same era.
Johnson B. D., Leja J., Conroy C., Speagle J. S., 2021. Stellar Population Inference with Prospector, ApJS , 254, 22
2021
Cited alongside, same era.
Gáspár A., et al., 2021. The Quantum Efficiency and Diffractive Image Artifacts of Si:As IBC mid-IR Detector Arrays at 5-10 μ \mu m: Implications for the JWST/MIRI Detectors, PASP , 133, 014504
2021
Cited alongside, same era.
2023
Later among the works it cites.
Bushouse H., et al., 2023. JWST Calibration Pipeline, doi:10.5281/zenodo.10022973
2023
Later among the works it cites.
Gaia Collaboration et al., 2023. Gaia Data Release 3. Summary of the content and survey properties, A&A , 674, A1
2023
Later among the works it cites.
Lange J. U., 2023. NAUTILUS: boosting Bayesian importance nested sampling with deep learning, MNRAS , 525, 3181
2023
Later among the works it cites.
Kannan R., et al., 2023. The MillenniumTNG project: the galaxy population at z ≥ \geq 8, MNRAS , 524, 2594
2023
Later among the works it cites.
Wilkins S. M., et al., 2023. First light and reionization epoch simulations (FLARES) XI: [O III] emitting galaxies at 5 < z < 10, MNRAS , 522, 4014
2023
Later among the works it cites.
Robertson B., et al., 2024. Earliest Galaxies in the JADES Origins Field: Luminosity Function and Cosmic Star Formation Rate Density 300 Myr after the Big Bang, ApJ , 970, 31
2024
Closest in time.
Hainline K. N., et al., 2024. The Cosmos in Its Infancy: JADES Galaxy Candidates at z > 8 in GOODS-S and GOODS-N, ApJ , 964, 71
2024
Closest in time.
Castellano M., et al., 2024. JWST NIRSpec Spectroscopy of the Remarkable Bright Galaxy GHZ2/GLASS-z12 at Redshift 12.34, ApJ , 972, 143
2024
Closest in time.
Carniani S., et al., 2024. Spectroscopic confirmation of two luminous galaxies at a redshift of 14, Nature , 633, 318
2024
Closest in time.
Zavala J. A., et al., 2024. A luminous and young galaxy at z = 12.33 revealed by a JWST/MIRI detection of H α \alpha and [O III], Nature Astronomy ,
2024
Closest in time.
Wilkins S. M., et al., 2024. First Light and Reionization Epoch Simulations (FLARES) - XIV. The Balmer/4000 Å breaks of distant galaxies, MNRAS , 527, 7965
2024
Closest in time.
Chon S., Hosokawa T., Omukai K., Schneider R., 2024. Impact of radiative feedback on the initial mass function of metal-poor stars, MNRAS ,
2024
Closest in time.
Woodrum C., et al., 2024. Using JADES NIRCam photometry to investigate the dependence of stellar mass inferences on the IMF in the early universe, Proceedings of the National Academy of Science , 121, e2317375121
2024
Closest in time.
Endsley R., et al., 2024. The star-forming and ionizing properties of dwarf z 6-9 galaxies in JADES: insights on bursty star formation and ionized bubble growth, MNRAS , 533, 1111
2024
Closest in time.
2024
Closest in time.
Alberts S., et al., 2024. To High Redshift and Low Mass: Exploring the Emergence of Quenched Galaxies and Their Environments at 3 < z < 6 in the Ultra-deep JADES MIRI F770W Parallel, ApJ , 975, 85
2024
Closest in time.
Boogaard L. A., et al., 2024. MIDIS: JWST/MIRI Reveals the Stellar Structure of ALMA-selected Galaxies in the Hubble Ultra Deep Field at Cosmic Noon, ApJ , 969, 27
2024
Closest in time.
Lyu J., et al., 2024. Active Galactic Nuclei Selection and Demographics: A New Age with JWST/MIRI, ApJ , 966, 229
2024
Closest in time.
Pérez-González P. G., et al., 2024. What Is the Nature of Little Red Dots and what Is Not, MIRI SMILES Edition, ApJ , 968, 4
2024
Closest in time.
Genzel R., et al., 2010. A study of the gas-star formation relation over cosmic time, MNRAS , 407, 2091
2091
Closest in time.
Peng C. Y., Ho L. C., Impey C. D., Rix H.-W., 2010. Detailed Decomposition of Galaxy Images. II. Beyond Axisymmetric Models, AJ , 139, 2097
2097
Closest in time.