Fetching the paper…
Reading the bibliography…
Cosmological parameters are constrained by a wide variety of observations.
Semi-analytic forecasts for JWST - II. Physical properties and scaling relations for galaxies at z = 4-10
Yung, L.Y.A.; Somerville, R.S.; Popping, G.; Finkelstein, S.L.; Ferguson, H.C.; Davé, R · 1901
Earlier work this paper cites.
The Carnegie-Chicago Hubble Program. VIII. An Independent Determination of the Hubble Constant Based on the Tip of the Red Giant Branch
Freedman, W.L.; Madore, B.F.; Hatt, D.; Hoyt, T.J.; Jang, I.S.; Beaton, R.L.; Burns, C.R.; Lee, M.G.; Monson, A.J.; Neeley, J.R.; et al · 1907
Earlier work this paper cites.
H0LiCOW - XIII. A 2.4 per cent measurement of H 0
Wong, K.C.; Suyu, S.H.; Chen, G.C.F.; Rusu, C.E.; Millon, M.; Sluse, D.; Bonvin, V.; Fassnacht, C.D.; Taubenberger, S.; Auger, M.W.; et al · 1907
Earlier work this paper cites.
Planck 2018 results. V. CMB power spectra and likelihoods
Planck Collaboration.; Aghanim, N.; Akrami, Y.; Ashdown, M.; Aumont, J.; Baccigalupi, C.; Ballardini, M.; Banday, A.J.; Barreiro, R.B.; Bartolo, N.; et al · 1907
Earlier work this paper cites.
The Sheet of Giants: Unusual properties of the Milky Way’s immediate neighbourhood
Neuzil, M.K.; Mansfield, P.; Kravtsov, A.V · 1912
Earlier work this paper cites.
A new method of determining distances to galaxies
Tully, R.B.; Fisher, J.R · 1977
Earlier work this paper cites.
The cosmological constant and cold dark matter
Efstathiou, G.; Sutherland, W.J.; Maddox, S.J · 1990
Earlier work this paper cites.
The end of cold dark matter?
Davis, M.; Efstathiou, G.; Frenk, C.S.; White, S.D.M · 1992
Earlier work this paper cites.
The observational case for a low-density Universe with a non-zero cosmological constant
Ostriker, J.P.; Steinhardt, P.J · 1995
Earlier work this paper cites.
Cosmological constant
McGaugh, S.S · 1996
Earlier work this paper cites.
Observational Evidence from Supernovae for an Accelerating Universe and a Cosmological Constant
Riess, A.G.; Filippenko, A.V.; Challis, P.; Clocchiatti, A.; Diercks, A.; Garnavich, P.M.; Gilliland, R.L.; Hogan, C.J.; Jha, S.; Kirshner, R.P.; et al · 1998
Earlier work this paper cites.
Cosmology with modified Newtonian dynamics (MOND)
Sanders, R.H · 1998
Earlier work this paper cites.
Measurements of Ω \Omega and Λ \Lambda from 42 High-Redshift Supernovae
Perlmutter, S.; Aldering, G.; Goldhaber, G.; Knop, R.A.; Nugent, P.; Castro, P.G.; Deustua, S.; Fabbro, S.; Goobar, A.; Groom, D.E.; et al · 1999
Earlier work this paper cites.
A flat Universe from high-resolution maps of the cosmic microwave background radiation
de Bernardis, P.; Ade, P.A.R.; Bock, J.J.; Bond, J.R.; Borrill, J.; Boscaleri, A.; Coble, K.; Crill, B.P.; De Gasperis, G.; Farese, P.C.; et al · 2000
Earlier work this paper cites.
The Baryonic Tully-Fisher Relation
McGaugh, S.S.; Schombert, J.M.; Bothun, G.D.; de Blok, W.J.G · 2000
Earlier work this paper cites.
Final Results from the Hubble Space Telescope Key Project to Measure the Hubble Constant
Freedman, W.L.; Madore, B.F.; Gibson, B.K.; Ferrarese, L.; Kelson, D.D.; Sakai, S.; Mould, J.R.; Kennicutt, Jr., R.C.; Ford, H.C.; Graham, J.A.; et al · 2001
Earlier work this paper cites.
The 2dF Galaxy Redshift Survey: spectra and redshifts
Colless, M.; Dalton, G.; Maddox, S.; Sutherland, W.; Norberg, P.; Cole, S.; Bland-Hawthorn, J.; Bridges, T.; Cannon, R.; Collins, C.; et al · 2001
Earlier work this paper cites.
The 2dF Galaxy Redshift Survey: the power spectrum and the matter content of the Universe
Percival, W.J.; Baugh, C.M.; Bland-Hawthorn, J.; Bridges, T.; Cannon, R.; Cole, S.; Colless, M.; Collins, C.; Couch, W.; Dalton, G.; et al · 2001
Earlier work this paper cites.
First-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Interpretation of the TT and TE Angular Power Spectrum Peaks
Page, L.; Nolta, M.R.; Barnes, C.; Bennett, C.L.; Halpern, M.; Hinshaw, G.; Jarosik, N.; Kogut, A.; Limon, M.; Meyer, S.S.; et al · 2003
Earlier work this paper cites.
Cosmological parameters from SDSS and WMAP
Tegmark, M.; Strauss, M.A.; Blanton, M.R.; Abazajian, K.; Dodelson, S.; Sandvik, H.; Wang, X.; Weinberg, D.H.; Zehavi, I.; Bahcall, N.A.; et al · 2004
Earlier work this paper cites.
Confrontation of Modified Newtonian Dynamics Predictions with Wilkinson Microwave Anisotropy Probe First Year Data
McGaugh, S.S · 2004
Earlier work this paper cites.
The 2dF Galaxy Redshift Survey: power-spectrum analysis of the final data set and cosmological implications
Cole, S.; Percival, W.J.; Peacock, J.A.; Norberg, P.; Baugh, C.M.; Frenk, C.S.; Baldry, I.; Bland-Hawthorn, J.; Bridges, T.; Cannon, R.; et al · 2005
Earlier work this paper cites.
The Cosmological Mean Density and Its Local Variations Probed by Peculiar Velocities
Mohayaee, R.; Tully, R.B · 2005
Earlier work this paper cites.
The PHLEK Survey: A New Determination of the Primordial Helium Abundance
Hsyu, T.; Cooke, R.J.; Prochaska, J.X.; Bolte, M · 2005
Earlier work this paper cites.
Formation of the large nearby galaxies
Peebles, P.J.E · 2005
Earlier work this paper cites.
Using the Baryonic Tully-Fisher Relation to Measure H o
Schombert, J.; McGaugh, S.; Lelli, F · 2006
Earlier work this paper cites.
Before the Big Bang: AN Outrageous New Perspective and its Implications for Particle Physics
Penrose, R · 2006
Earlier work this paper cites.
Three-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Implications for Cosmology
Spergel, D.N.; Bean, R.; Doré, O.; Nolta, M.R.; Bennett, C.L.; Dunkley, J.; Hinshaw, G.; Jarosik, N.; Komatsu, E.; Page, L.; et al · 2007
Earlier work this paper cites.
New Relativistic Theory for Modified Newtonian Dynamics
Skordis, C.; Złośnik, T · 2007
Earlier work this paper cites.
The Carnegie-Chicago Hubble Program. IX. Calibration of the Tip of the Red Giant Branch Method in the Megamaser Host Galaxy, NGC 4258 (M106)
Jang, I.S.; Hoyt, T.J.; Beaton, R.L.; Freedman, W.L.; Madore, B.F.; Lee, M.G.; Neeley, J.R.; Monson, A.J.; Rich, J.A.; Seibert, M · 2008
Cited alongside, same era.
An update on the big bang nucleosynthesis prediction for 7
Cyburt, R.H.; Fields, B.D.; Olive, K.A · 2008
Cited alongside, same era.
Five-Year Wilkinson Microwave Anisotropy Probe Observations: Cosmological Interpretation
Komatsu, E.; Dunkley, J.; Nolta, M.R.; Bennett, C.L.; Gold, B.; Hinshaw, G.; Jarosik, N.; Larson, D.; Limon, M.; Page, L.; et al · 2009
Cited alongside, same era.
Nearby galaxies as pointers to a better theory of cosmic evolution
Peebles, P.J.E.; Nusser, A · 2010
Cited alongside, same era.
Seven-year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
Komatsu, E.; Smith, K.M.; Dunkley, J.; Bennett, C.L.; Gold, B.; Hinshaw, G.; Jarosik, N.; Larson, D.; Nolta, M.R.; Page, L.; et al · 2011
Cited alongside, same era.
Nanayakkara, T.; Glazebrook, K.; Jacobs, C.; Schreiber, C.; Brammer, G.; Esdaile, J.; Kacprzak, G.G.; Labbe, I.; Lagos, C.; Marchesini, D.; et al · 2022
Later among the works it cites.
The Hubble Constant: A Historical Review
Tully, R.B · 2023
Closest in time.
The Unsettled Number: Hubble’s Tension
Cervantes-Cota, J.L.; Galindo-Uribarri, S.; Smoot, G.F · 2023
Closest in time.
Cosmicflows-4
Tully, R.B.; Kourkchi, E.; Courtois, H.M.; Anand, G.S.; Blakeslee, J.P.; Brout, D.; Jaeger, T.d.; Dupuy, A.; Guinet, D.; Howlett, C.; et al · 2023
Closest in time.
The Absolute Age of M92
Ying, J.M.; Chaboyer, B.; Boudreaux, E.M.; Slaughter, C.; Boylan-Kolchin, M.; Weisz, D · 2023
Closest in time.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
CAMB: Code for Anisotropies in the Microwave Background
Lewis, A.; Challinor, A · 2011
Cited alongside, same era.
Modified gravity and cosmology
Clifton, T.; Ferreira, P.G.; Padilla, A.; Skordis, C · 2012
Cited alongside, same era.
Nine-year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Parameter Results
Hinshaw, G.; Larson, D.; Komatsu, E.; Spergel, D.N.; Bennett, C.L.; Dunkley, J.; Nolta, M.R.; Halpern, M.; Hill, R.S.; Odegard, N.; et al · 2013
Cited alongside, same era.
Planck 2013 results. XVI. Cosmological parameters
Planck Collaboration.; Ade, P.A.R.; Aghanim, N.; Armitage-Caplan, C.; Arnaud, M.; Ashdown, M.; Atrio-Barandela, F.; Aumont, J.; Baccigalupi, C.; Banday, A.J.; et al · 2014
Cited alongside, same era.
A tale of two paradigms: the mutual incommensurability of Λ \Lambda CDM and MOND
McGaugh, S.S · 2014
Cited alongside, same era.
On the Gravitization of Quantum Mechanics 1: Quantum State Reduction
Penrose, R · 2014
Cited alongside, same era.
On the Gravitization of Quantum Mechanics 2: Conformal Cyclic Cosmology
Penrose, R · 2014
Cited alongside, same era.
Uddin, S.A.; Burns, C.R.; Phillips, M.M.; Suntzeff, N.B.; Freedman, W.L.; Brown, P.J.; Morrell, N.; Hamuy, M.; Krisciunas, K.; Wang, L.; et al · 2023
Closest in time.
Constraints on S 8
Lange, J.U.; Hearin, A.P.; Leauthaud, A.; van den Bosch, F.C.; Xhakaj, E.; Guo, H.; Wechsler, R.H.; DeRose, J · 2023
Closest in time.
The Universe is not statistically isotropic
Jones, J.; Copi, C.J.; Starkman, G.D.; Akrami, Y · 2023
Closest in time.
Conformal theory of gravitation and cosmic expansion
Nesbet, R.K · 2023
Closest in time.
An extraordinarily massive galaxy that formed its stars at z r s i m 11 zrsim11
Glazebrook, K.; Nanayakkara, T.; Schreiber, C.; Lagos, C.; Kawinwanichakij, L.; Jacobs, C.; Chittenden, H.; Brammer, G.; Kacprzak, G.G.; Labbe, I.; et al · 2023
Closest in time.
JWST early Universe observations and Λ \Lambda CDM cosmology
Gupta, R.P · 2023
Closest in time.
Stress testing Λ \Lambda CDM with high-redshift galaxy candidates
Boylan-Kolchin, M · 2023
Closest in time.
A population of red candidate massive galaxies 600 Myr after the Big Bang
Labbé, I.; van Dokkum, P.; Nelson, E.; Bezanson, R.; Suess, K.A.; Leja, J.; Brammer, G.; Whitaker, K.; Mathews, E.; Stefanon, M.; et al · 2023
Closest in time.
Revealing galaxy candidates out to z = 16 with JWST observations of the lensing cluster SMACS0723
Atek, H.; Shuntov, M.; Furtak, L.J.; Richard, J.; Kneib, J.P.; Mahler, G.; Zitrin, A.; McCracken, H.J.; Charlot, S.; Chevallard, J.; et al · 2023
Closest in time.
Discovery and properties of ultra-high redshift galaxies (9 ¡ z ¡ 12) in the JWST ERO SMACS 0723 Field
Adams, N.J.; Conselice, C.J.; Ferreira, L.; Austin, D.; Trussler, J.A.A.; Juodžbalis, I.; Wilkins, S.M.; Caruana, J.; Dayal, P.; Verma, A.; et al · 2023
Closest in time.
Casey, C.M.; Akins, H.B.; Shuntov, M.; Ilbert, O.; Paquereau, L.; Franco, M.; Hayward, C.C.; Finkelstein, S.L.; Boylan-Kolchin, M.; Robertson, B.E.; et al · 2023
Closest in time.
Are the ultra-high-redshift galaxies at z ¿ 10 surprising in the context of standard galaxy formation models?
Yung, L.Y.A.; Somerville, R.S.; Finkelstein, S.L.; Wilkins, S.M.; Gardner, J.P · 2023
Closest in time.
A Comprehensive Study of Galaxies at z 9-16 Found in the Early JWST Data: Ultraviolet Luminosity Functions and Cosmic Star Formation History at the Pre-reionization Epoch
Harikane, Y.; Ouchi, M.; Oguri, M.; Ono, Y.; Nakajima, K.; Isobe, Y.; Umeda, H.; Mawatari, K.; Zhang, Y · 2023
Closest in time.
Finkelstein, S.L.; Leung, G.C.K.; Bagley, M.B.; Dickinson, M.; Ferguson, H.C.; Papovich, C.; Akins, H.B.; Arrabal Haro, P.; Dave, R.; Dekel, A.; et al · 2023
Closest in time.
Robertson, B.; Johnson, B.D.; Tacchella, S.; Eisenstein, D.J.; Hainline, K.; Arribas, S.; Baker, W.M.; Bunker, A.J.; Carniani, S.; Carreira, C.; et al · 2023
Closest in time.
The cosmic timeline implied by the JWST high-redshift galaxies
Melia, F · 2023
Closest in time.
Early Galaxy Formation and the Hubble Constant Tension
McGaugh, S.S · 2023
Closest in time.
The Megamaser Cosmology Project. XIII. Combined Hubble Constant Constraints
Pesce, D.W.; Braatz, J.A.; Reid, M.J.; Riess, A.G.; Scolnic, D.; Condon, J.J.; Gao, F.; Henkel, C.; Impellizzeri, C.M.V.; Kuo, C.Y.; et al · 2041
Closest in time.
A Comprehensive Measurement of the Local Value of the Hubble Constant with 1 km s -1
Riess, A.G.; Yuan, W.; Macri, L.M.; Scolnic, D.; Brout, D.; Casertano, S.; Jones, D.O.; Murakami, Y.; Anand, G.S.; Breuval, L.; et al · 2041
Closest in time.
A Test of the Cosmological Principle with Quasars
Secrest, N.J.; von Hausegger, S.; Rameez, M.; Mohayaee, R.; Sarkar, S.; Colin, J · 2041
Closest in time.
A Challenge to the Standard Cosmological Model
Secrest, N.J.; von Hausegger, S.; Rameez, M.; Mohayaee, R.; Sarkar, S · 2041
Closest in time.
Has JWST Already Falsified Dark-matter-driven Galaxy Formation?
Haslbauer, M.; Kroupa, P.; Zonoozi, A.H.; Haghi, H · 2041
Closest in time.
Two Remarkably Luminous Galaxy Candidates at z ≈ \approx 10-12 Revealed by JWST
Naidu, R.P.; Oesch, P.A.; van Dokkum, P.; Nelson, E.J.; Suess, K.A.; Brammer, G.; Whitaker, K.E.; Illingworth, G.; Bouwens, R.; Tacchella, S.; et al · 2041
Closest in time.
A Long Time Ago in a Galaxy Far, Far Away: A Candidate z 12 Galaxy in Early JWST CEERS Imaging
Finkelstein, S.L.; Bagley, M.B.; Haro, P.A.; Dickinson, M.; Ferguson, H.C.; Kartaltepe, J.S.; Papovich, C.; Burgarella, D.; Kocevski, D.D.; Huertas-Company, M.; et al · 2041
Closest in time.