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Early JWST studies reporting an unexpected abundance of massive galaxies at $z \sim 5$--$8$ challenge galaxy formation models in the $\Lambda$CDM framework.
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Calzetti, D., Armus, L., Bohlin, R. C., et al. 2000, The Dust Content and Opacity of Actively Star-forming Galaxies, ApJ, 533, 682, doi: 10.1086/308692
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Kroupa, P. 2001, On the variation of the initial mass function, MNRAS, 322, 231, doi: 10.1046/j.1365-8711.2001.04022.x
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Bruzual, G., & Charlot, S. 2003, Stellar population synthesis at the resolution of 2003, MNRAS, 344, 1000, doi: 10.1046/j.1365-8711.2003.06897.x
2003
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Bregman, J. N. 2007, The Search for the Missing Baryons at Low Redshift, ARA&A, 45, 221, doi: 10.1146/annurev.astro.45.051806.110619
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2008
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Moster, B. P., Somerville, R. S., Newman, J. A., & Rix, H.-W. 2011, A Cosmic Variance Cookbook, ApJ, 731, 113, doi: 10.1088/0004-637X/731/2/113
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Walter, F., Decarli, R., Carilli, C., et al. 2012, The intense starburst HDF 850.1 in a galaxy overdensity at z ≈ \approx 5.2 in the Hubble Deep Field, Nature, 486, 233, doi: 10.1038/nature11073
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Watson, W. A., Iliev, I. T., D’Aloisio, A., et al. 2013, The halo mass function through the cosmic ages, MNRAS, 433, 1230, doi: 10.1093/mnras/stt791
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Grazian, A., Fontana, A., Santini, P., et al. 2015, The galaxy stellar mass function at 3.5 ≤ \leq z ≤ \leq 7.5 in the CANDELS/UDS, GOODS-South, and HUDF fields, A&A, 575, A96, doi: 10.1051/0004-6361/201424750
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Merlin, E., Bourne, N., Castellano, M., et al. 2016, T-PHOT version 2.0: Improved algorithms for background subtraction, local convolution, kernel registration, and new options, A&A, 595, A97, doi: 10.1051/0004-6361/201628751
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Rodríguez-Puebla, A., Primack, J. R., Behroozi, P., & Faber, S. M. 2016, Is main-sequence galaxy star formation controlled by halo mass accretion?, MNRAS, 455, 2592, doi: 10.1093/mnras/stv2513
2016
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Wang, T., Elbaz, D., Schreiber, C., et al. 2016, Infrared Color Selection of Massive Galaxies at z ¿ 3, ApJ, 816, 84, doi: 10.3847/0004-637X/816/2/84
2016
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Byler, N., Dalcanton, J. J., Conroy, C., & Johnson, B. D. 2017, Nebular Continuum and Line Emission in Stellar Population Synthesis Models, ApJ, 840, 44, doi: 10.3847/1538-4357/aa6c66
2017
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Davidzon, I., Ilbert, O., Laigle, C., et al. 2017, The COSMOS2015 galaxy stellar mass function . Thirteen billion years of stellar mass assembly in ten snapshots, A&A, 605, A70, doi: 10.1051/0004-6361/201730419
2017
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Nayyeri, H., Hemmati, S., Mobasher, B., et al. 2017, CANDELS Multi-wavelength Catalogs: Source Identification and Photometry in the CANDELS COSMOS Survey Field, ApJS, 228, 7, doi: 10.3847/1538-4365/228/1/7
2017
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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, doi: 10.1093/mnras/sty2169
2018
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Franco, M., Elbaz, D., Béthermin, M., et al. 2018, GOODS-ALMA: 1.1 mm galaxy survey. I. Source catalog and optically dark galaxies, A&A, 620, A152, doi: 10.1051/0004-6361/201832928
2018
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Behroozi, P., Wechsler, R. H., Hearin, A. P., & Conroy, C. 2019, UNIVERSEMACHINE: The correlation between galaxy growth and dark matter halo assembly from z = 0-10, MNRAS, 488, 3143, doi: 10.1093/mnras/stz1182
2019
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Merlin, E., Pilo, S., Fontana, A., et al. 2019, A-PHOT: a new, versatile code for precision aperture photometry, A&A, 622, A169, doi: 10.1051/0004-6361/201833991
2019
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Wang, T., Schreiber, C., Elbaz, D., et al. 2019, A dominant population of optically invisible massive galaxies in the early Universe, Nature, 572, 211, doi: 10.1038/s41586-019-1452-4
2019
Earlier work this paper cites.
Yamaguchi, Y., Kohno, K., Hatsukade, B., et al. 2019, ALMA 26 arcmin 2
2019
Earlier work this paper cites.
Adams, N. J., Bowler, R. A. A., Jarvis, M. J., Häußler, B., & Lagos, C. D. P. 2021, Evolution of the galaxy stellar mass function: evidence for an increasing M* from z = 2 to the present day, MNRAS, 506, 4933, doi: 10.1093/mnras/stab1956
2021
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Alvarez-Marquez, J., Hashimoto, T., Arribas, S., et al. 2021, ALMA [OIII]88um Emitters. Signpost of Early Stellar Buildup and Reionization in the Universe,, JWST Proposal. Cycle 1, ID. #1840
2021
Cited alongside, same era.
Dunlop, J. S., Abraham, R. G., Ashby, M. L. N., et al. 2021, PRIMER: Public Release IMaging for Extragalactic Research,, JWST Proposal. Cycle 1, ID. #1837
2021
Cited alongside, same era.
Marley, M. S., Saumon, D., Visscher, C., et al. 2021, The Sonora Brown Dwarf Atmosphere and Evolution Models. I. Model Description and Application to Cloudless Atmospheres in Rainout Chemical Equilibrium, ApJ, 920, 85, doi: 10.3847/1538-4357/ac141d
2021
Cited alongside, same era.
Bradley, L., Sipőcz, B., Robitaille, T., et al. 2022, astropy/photutils: 1.5.0,, 1.5.0 Zenodo, doi: 10.5281/zenodo.6825092
2022
Cited alongside, same era.
Kakimoto, T., Tanaka, M., Onodera, M., et al. 2024, A Massive Quiescent Galaxy in a Group Environment at z = 4.53, The Astrophysical Journal, 963, 49, doi: 10.3847/1538-4357/ad1ff1
2024
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Li, Z., Dekel, A., Sarkar, K. C., et al. 2024, Feedback-free starbursts at cosmic dawn: Observable predictions for JWST, A&A, 690, A108, doi: 10.1051/0004-6361/202348727
2024
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Matthee, J., Naidu, R. P., Brammer, G., et al. 2024, Little Red Dots: An Abundant Population of Faint Active Galactic Nuclei at z ∼ \sim 5 Revealed by the EIGER and FRESCO JWST Surveys, ApJ, 963, 129, doi: 10.3847/1538-4357/ad2345
2024
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McLeod, D. J., Donnan, C. T., McLure, R. J., et al. 2024, The galaxy UV luminosity function at z ≃ 11 from a suite of public JWST ERS, ERO, and Cycle-1 programs, MNRAS, 527, 5004, doi: 10.1093/mnras/stad3471
2024
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2022
Cited alongside, same era.
Weaver, J. R., Kauffmann, O. B., Ilbert, O., et al. 2022, COSMOS2020: A Panchromatic View of the Universe to z ∼ \sim 10 from Two Complementary Catalogs, ApJS, 258, 11, doi: 10.3847/1538-4365/ac3078
2022
Cited alongside, same era.
Zhang, Z., Wang, H., Luo, W., et al. 2022, Massive star-forming galaxies have converted most of their halo gas into stars, A&A, 663, A85, doi: 10.1051/0004-6361/202142866
2022
Cited alongside, same era.
Boylan-Kolchin, M. 2023, Stress testing Λ \Lambda CDM with high-redshift galaxy candidates, Nature Astronomy, 7, 731, doi: 10.1038/s41550-023-01937-7
2023
Cited alongside, same era.
Carnall, A. C., McLure, R. J., Dunlop, J. S., et al. 2023, A massive quiescent galaxy at redshift 4.658, Nature, 619, 716, doi: 10.1038/s41586-023-06158-6
2023
Cited alongside, same era.
Casey, C. M., Kartaltepe, J. S., Drakos, N. E., et al. 2023, COSMOS-Web: An Overview of the JWST Cosmic Origins Survey, ApJ, 954, 31, doi: 10.3847/1538-4357/acc2bc
2023
Cited alongside, same era.
Chen, Y., Mo, H. J., & Wang, K. 2023, Massive dark matter haloes at high redshift: implications for observations in the JWST era, MNRAS, 526, 2542, doi: 10.1093/mnras/stad2866
2023
Cited alongside, same era.
Dekel, A., Sarkar, K. C., Birnboim, Y., Mandelker, N., & Li, Z. 2023, Efficient formation of massive galaxies at cosmic dawn by feedback-free starbursts, MNRAS, 523, 3201, doi: 10.1093/mnras/stad1557
2023
Cited alongside, same era.
Pérez-González, P. G., Barro, G., Rieke, G. H., et al. 2024, What Is the Nature of Little Red Dots and what Is Not, MIRI SMILES Edition, ApJ, 968, 4, doi: 10.3847/1538-4357/ad38bb
2024
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2024
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2024
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http://arxiv.org/abs/2409.03829
Weibel, A., de Graaff, A., Setton, D. J., et al. 2024, RUBIES Reveals a Massive Quiescent Galaxy at z=7.3, arXiv · 2024
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Weibel, A., Oesch, P. A., Barrufet, L., et al. 2024, Galaxy build-up in the first 1.5 Gyr of cosmic history: insights from the stellar mass function at z 4-9 from JWST NIRCam observations, MNRAS, 533, 1808, doi: 10.1093/mnras/stae1891
2024
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Williams, C. C., Alberts, S., Ji, Z., et al. 2024, The Galaxies Missed by Hubble and ALMA: The Contribution of Extremely Red Galaxies to the Cosmic Census at 3 ¡ z ¡ 8, ApJ, 968, 34, doi: 10.3847/1538-4357/ad3f17
2024
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Xiao, M., Oesch, P. A., Elbaz, D., et al. 2024, Accelerated formation of ultra-massive galaxies in the first billion years, Nature, 635, 311, doi: 10.1038/s41586-024-08094-5
2024
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2025
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Kocevski, D. D., Finkelstein, S. L., Barro, G., et al. 2025, The Rise of Faint, Red Active Galactic Nuclei at z ¿ 4: A Sample of Little Red Dots in the JWST Extragalactic Legacy Fields, ApJ, 986, 126, doi: 10.3847/1538-4357/adbc7d
2025
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Labbe, I., Greene, J. E., Bezanson, R., et al. 2025, UNCOVER: Candidate Red Active Galactic Nuclei at 3 ¡ z ¡ 7 with JWST and ALMA, ApJ, 978, 92, doi: 10.3847/1538-4357/ad3551
2025
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Williams, C. C., Oesch, P. A., Weibel, A., et al. 2025, The PANORAMIC Survey: Pure Parallel Wide Area Legacy Imaging with JWST/NIRCam, ApJ, 979, 140, doi: 10.3847/1538-4357/ad97bc
2025
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Baggen, J. F. W., van Dokkum, P., Brammer, G., et al. 2024, The Small Sizes and High Implied Densities of “Little Red Dots” with Balmer Breaks Could Explain Their Broad Emission Lines without an Active Galactic Nucleus, ApJ, 977, L13, doi: 10.3847/2041-8213/ad90b8
2041
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Bagley, M. B., Finkelstein, S. L., Koekemoer, A. M., et al. 2023, CEERS Epoch 1 NIRCam Imaging: Reduction Methods and Simulations Enabling Early JWST Science Results, ApJ, 946, L12, doi: 10.3847/2041-8213/acbb08
2041
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Huang, J. S., Zheng, X. Z., Rigopoulou, D., et al. 2011, Four IRAC Sources with an Extremely Red H - [3.6] Color: Passive or Dusty Galaxies at z ¿ 4.5?, ApJ, 742, L13, doi: 10.1088/2041-8205/742/1/L13
2041
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Langeroodi, D., & Hjorth, J. 2023, Little Red Dots or Brown Dwarfs? NIRSpec Discovery of Three Distant Brown Dwarfs Masquerading as NIRCam-selected Highly Reddened Active Galactic Nuclei, ApJ, 957, L27, doi: 10.3847/2041-8213/acfeec
2041
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Papovich, C., Cole, J. W., Yang, G., et al. 2023, CEERS Key Paper. V. Galaxies at 4 ¡ z ¡ 9 Are Bluer than They Appear–Characterizing Galaxy Stellar Populations from Rest-frame ∼ \sim 1 μ \mu m Imaging, ApJ, 949, L18, doi: 10.3847/2041-8213/acc948
2041
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Wang, B., Leja, J., de Graaff, A., et al. 2024a, RUBIES: Evolved Stellar Populations with Extended Formation Histories at z ∼ \sim 7–8 in Candidate Massive Galaxies Identified with JWST/NIRSpec, ApJ, 969, L13, doi: 10.3847/2041-8213/ad55f7
2041
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Wang, Y.-Y., Lei, L., Yuan, G.-W., & Fan, Y.-Z. 2023, Modeling the JWST High-redshift Galaxies with a General Formation Scenario and the Consistency with the Λ \Lambda CDM Model, ApJ, 954, L48, doi: 10.3847/2041-8213/acf46c
2041
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Yan, H., Ma, Z., Ling, C., Cheng, C., & Huang, J.-S. 2023, First Batch of z ≈ \approx 11-20 Candidate Objects Revealed by the James Webb Space Telescope Early Release Observations on SMACS 0723-73, ApJ, 942, L9, doi: 10.3847/2041-8213/aca80c
2041
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Yang, G., Papovich, C., Bagley, M. B., et al. 2023, CEERS MIRI Imaging: Data Reduction and Quality Assessment, ApJ, 956, L12, doi: 10.3847/2041-8213/acfaa0
2041
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