Fetching the paper…
Reading the bibliography…
The satellite galaxies of the Milky Way (MW) are effective probes of the underlying dark matter (DM) substructure, which is sensitive to the nature of the DM particle.
1905
Earlier work this paper cites.
1912
Earlier work this paper cites.
T. Sawala, C.S. Frenk, A. Fattahi, J.F. Navarro, R.G. Bower, R.A. Crain et al., The APOSTLE simulations: Solutions to the Local Group’s cosmic puzzles , MNRAS 457
1931
Earlier work this paper cites.
W.H. Press and P. Schechter, Formation of Galaxies and Clusters of Galaxies by Self-Similar Gravitational Condensation , ApJ 187
1974
Earlier work this paper cites.
G. Efstathiou, M. Davis, S.D.M. White and C.S. Frenk, Numerical techniques for large cosmological N-body simulations , ApJS 57
1985
Earlier work this paper cites.
C.S. Frenk, S.D.M. White, M. Davis and G. Efstathiou, The formation of dark halos in a universe dominated by cold dark matter , ApJ 327
1988
Earlier work this paper cites.
J.R. Bond, S. Cole, G. Efstathiou and N. Kaiser, Excursion set mass functions for hierarchical Gaussian fluctuations , ApJ 379
1991
Earlier work this paper cites.
R.G. Bower, The evolution of groups of galaxies in the Press–Schechter formalism , MNRAS 248
1991
Earlier work this paper cites.
C. Lacey and S. Cole, Merger rates in hierarchical models of galaxy formation , MNRAS 262
1993
Earlier work this paper cites.
S. Cole, A. Aragón-Salamanca, C.S. Frenk, J.F. Navarro and S.E. Zepf, A recipe for galaxy formation , MNRAS 271
1994
Earlier work this paper cites.
G. Rossum, Python reference manual , Technical Report CWI (Centre for Mathematics and Computer Science), NLD (1995)
1995
Earlier work this paper cites.
O.Y. Gnedin, L. Hernquist and J.P. Ostriker, Tidal Shocking by Extended Mass Distributions , ApJ 514
1999
Earlier work this paper cites.
S. Cole, C.G. Lacey, C.M. Baugh and C.S. Frenk, Hierarchical galaxy formation , MNRAS 319
2000
Earlier work this paper cites.
V. Avila-Reese, P. Colín, O. Valenzuela, E. D’Onghia and C. Firmani, Formation and Structure of Halos in a Warm Dark Matter Cosmology , ApJ 559
2001
Earlier work this paper cites.
P. Bode, J.P. Ostriker and N. Turok, Halo Formation in Warm Dark Matter Models , ApJ 556
2001
Earlier work this paper cites.
V. Springel, S.D.M. White, G. Tormen and G. Kauffmann, Populating a cluster of galaxies – I. Results at z = 0 , MNRAS 328
2001
Earlier work this paper cites.
A.J. Benson, C.G. Lacey, C.M. Baugh, S. Cole and C.S. Frenk, The effects of photoionization on galaxy formation – I. Model and results at z=0 , MNRAS 333
2002
Earlier work this paper cites.
C. Power, J.F. Navarro, A. Jenkins, C.S. Frenk, S.D.M. White, V. Springel et al., The inner structure of Λ \Lambda CDM haloes — I. A numerical convergence study , MNRAS 338
2003
Earlier work this paper cites.
2004
Earlier work this paper cites.
M. Viel, J. Lesgourgues, M.G. Haehnelt, S. Matarrese and A. Riotto, Constraining warm dark matter candidates including sterile neutrinos and light gravitinos with WMAP and the Lyman-$\ensuremath {
2005
Earlier work this paper cites.
2005
Earlier work this paper cites.
V. Springel, S.D.M. White, A. Jenkins, C.S. Frenk, N. Yoshida, L. Gao et al., Simulations of the formation, evolution and clustering of galaxies and quasars , Nature 435
2005
Earlier work this paper cites.
J. Wang and S.D.M. White, Discreteness effects in simulations of hot/warm dark matter , MNRAS 380
2007
Earlier work this paper cites.
J.D. Hunter, Matplotlib A 2D Graphics Environment , Comput. Sci. Eng. 9
2007
Earlier work this paper cites.
2008
Earlier work this paper cites.
V. Springel, J. Wang, M. Vogelsberger, A. Ludlow, A. Jenkins, A. Helmi et al., The Aquarius Project: The subhaloes of galactic haloes , MNRAS 391
2008
Earlier work this paper cites.
E.J. Tollerud, J.S. Bullock, L.E. Strigari and B. Willman, Hundreds of Milky Way Satellites? Luminosity Bias in the Satellite Luminosity Function , ApJ 688
2008
Earlier work this paper cites.
H. Parkinson, S. Cole and J. Helly, Generating dark matter halo merger trees , MNRAS 383
2008
Earlier work this paper cites.
C. Giocoli, L. Pieri and G. Tormen, Analytical approach to subhalo population in dark matter haloes , MNRAS 387
2008
Earlier work this paper cites.
T. Okamoto, L. Gao and T. Theuns, Mass loss of galaxies due to an ultraviolet background , MNRAS 390
2008
Earlier work this paper cites.
S.M. Walsh, B. Willman and H. Jerjen, The Invisibles A Detection Algorithm to Trace the Faintest Milky Way Satellites , AJ 137
2009
Earlier work this paper cites.
L.L. Watkins, N.W. Evans, V. Belokurov, M.C. Smith, P.C. Hewett, D.M. Bramich et al., Substructure revealed by RR Lyraes in SDSS Stripe 82 , MNRAS 398
2009
Earlier work this paper cites.
K. Dolag, S. Borgani, G. Murante and V. Springel, Substructures in hydrodynamical cluster simulations , MNRAS 399
2009
Earlier work this paper cites.
G. Van Rossum and F.L. Drake, Python 3 Reference Manual , CreateSpace, Scotts Valley, CA (2009)
2009
Earlier work this paper cites.
M. Boylan-Kolchin, V. Springel, S.D.M. White and A. Jenkins, There’s no place like home? Statistics of Milky Way-mass dark matter haloes , MNRAS 406
2010
Earlier work this paper cites.
E. Komatsu, K.M. Smith, J. Dunkley, C.L. Bennett, B. Gold, G. Hinshaw et al., Seven-year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation , ApJS 192
2011
Earlier work this paper cites.
R. Errani and J.F. Navarro, The asymptotic tidal remnants of cold dark matter subhaloes , MNRAS 505
2011
Earlier work this paper cites.
E. Polisensky and M. Ricotti, Constraints on the dark matter particle mass from the number of Milky Way satellites , Phys. Rev. D 83
2011
Earlier work this paper cites.
A.S. Font, A.J. Benson, R.G. Bower, C.S. Frenk, A. Cooper, G. DeLucia et al., The population of Milky Way satellites in the Λ \Lambda cold dark matter cosmology , MNRAS 417
2011
Earlier work this paper cites.
M.T. Busha, P.J. Marshall, R.H. Wechsler, A. Klypin and J. Primack, THE MASS DISTRIBUTION AND ASSEMBLY OF THE MILKY WAY FROM THE PROPERTIES OF THE MAGELLANIC CLOUDS , ApJ 743
2011
Earlier work this paper cites.
S. van der Walt, S.C. Colbert and G. Varoquaux, The NumPy Array: A Structure for Efficient Numerical Computation , Comput. Sci. Eng. 13
2011
Earlier work this paper cites.
E. Jones, T. Oliphant and P. Peterson, SciPy Open source scientific tools for Python , 2011
2011
Earlier work this paper cites.
J. Onions, A. Knebe, F.R. Pearce, S.I. Muldrew, H. Lux, S.R. Knollmann et al., Subhaloes going Notts: The subhalo-finder comparison project , MNRAS 423
2012
Cited alongside, same era.
S. Kaviraj, D. Darg, C. Lintott, K. Schawinski and J. Silk, Tidal dwarf galaxies in the nearby Universe , MNRAS 419
2012
Cited alongside, same era.
A.W. McConnachie, The Observed Properties of Dwarf Galaxies in and around the Local Group , AJ 144
2012
Cited alongside, same era.
J. Wang, C.S. Frenk, J.F. Navarro, L. Gao and T. Sawala, The missing massive satellites of the Milky Way , MNRAS 424
2012
Cited alongside, same era.
R.E. Angulo, O. Hahn and T. Abel, The warm dark matter halo mass function below the cut-off scale , MNRAS 434
2013
Cited alongside, same era.
J.L. Carlin, D.J. Sand, R.R. Muñoz, K. Spekkens, B. Willman, Denija Crnojević et al., Deep Subaru Hyper Suprime-Cam Observations of Milky Way Satellites Columba I and Triangulum II , AJ 154
2017
Later among the works it cites.
T.S. Li, J.D. Simon, A. Drlica-Wagner, K. Bechtol, M.Y. Wang, J. García-Bellido et al., Farthest Neighbor: The Distant Milky Way Satellite Eridanus II , ApJ 838
2017
Later among the works it cites.
V. Iršič, M. Viel, M.G. Haehnelt, J.S. Bolton, S. Cristiani, G.D. Becker et al., New constraints on the free-streaming of warm dark matter from intermediate and small scale Lyman-$\ensuremath {
2017
Later among the works it cites.
S. Garrison-Kimmel, A. Wetzel, J.S. Bullock, P.F. Hopkins, M. Boylan-Kolchin, C.-A. Faucher-Giguère et al., Not so lumpy after all: Modelling the depletion of dark matter subhaloes by Milky Way-like galaxies , MNRAS 471
2017
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
A.J. Benson, A. Farahi, S. Cole, L.A. Moustakas, A. Jenkins, M. Lovell et al., Dark matter halo merger histories beyond cold dark matter – I. Methods and application to warm dark matter , MNRAS 428
2013
Cited alongside, same era.
A. Schneider, R.E. Smith and D. Reed, Halo mass function and the free streaming scale , MNRAS 433
2013
Cited alongside, same era.
M. Viel, G.D. Becker, J.S. Bolton and M.G. Haehnelt, Warm dark matter as a solution to the small scale crisis: New constraints from high redshift Lyman-$\ensuremath {
2013
Cited alongside, same era.
The Astropy Collaboration, T.P. Robitaille, E.J. Tollerud, P. Greenfield, M. Droettboom, E. Bray et al., Astropy A community Python package for astronomy , A&A 558
2013
Cited alongside, same era.
A. Boyarsky, O. Ruchayskiy, D. Iakubovskyi and J. Franse, Unidentified Line in X-Ray Spectra of the Andromeda Galaxy and Perseus Galaxy Cluster , Phys. Rev. 113
2014
Cited alongside, same era.
E. Bulbul, M. Markevitch, A. Foster, R.K. Smith, M. Loewenstein and S.W. Randall, Detection of an Unidentified Emission Line in the Stacked X-Ray Spectrum of Galaxy Clusters , ApJ 789
2014
Cited alongside, same era.
C. Bœhm, J.A. Schewtschenko, R.J. Wilkinson, C.M. Baugh and S. Pascoli, Using the Milky Way satellites to study interactions between cold dark matter and radiation , MNRAS 445
2014
Cited alongside, same era.
T. Sawala, P. Pihajoki, P.H. Johansson, C.S. Frenk, J.F. Navarro, K.A. Oman et al., Shaken and stirred: The Milky Way’s dark substructures , MNRAS 467
2017
Later among the works it cites.
P. Dayal, T.R. Choudhury, V. Bromm and F. Pacucci, Reionization and Galaxy Formation in Warm Dark Matter Cosmologies , ApJ 836
2017
Later among the works it cites.
V. Simha and S. Cole, Modelling galaxy merger time-scales and tidal destruction , MNRAS 472
2017
Later among the works it cites.
N. Cappelluti, E. Bulbul, A. Foster, P. Natarajan, M.C. Urry, M.W. Bautz et al., Searching for the 3.5 keV Line in the Deep Fields with Chandra : The 10 Ms Observations , ApJ 854
2018
Later among the works it cites.
M. Escudero, L. Lopez-Honorez, O. Mena, S. Palomares-Ruiz and P. Villanueva-Domingo, A fresh look into the interacting dark matter scenario , JCAP 2018
2018
Later among the works it cites.
O. Newton, M. Cautun, A. Jenkins, C.S. Frenk and J.C. Helly, The total satellite population of the Milky Way , MNRAS 479
2018
Later among the works it cites.
F.C. van den Bosch and G. Ogiya, Dark matter substructure in numerical simulations: A tale of discreteness noise, runaway instabilities, and artificial disruption , MNRAS 475
2018
Later among the works it cites.
S. Ploeckinger, K. Sharma, J. Schaye, R.A. Crain, M. Schaller and C. Barber, Tidal dwarf galaxies in cosmological simulations , MNRAS 474
2018
Later among the works it cites.
10.5281/zenodo.1205622
O. Newton and M. Cautun, “MW Satellite LF: V1.0.0 release.” Zenodo, Mar., 2018 · 2018
Later among the works it cites.
M. Leo, C.M. Baugh, B. Li and S. Pascoli, A new smooth-k space filter approach to calculate halo abundances , JCAP 2018
2018
Later among the works it cites.
S. Bose, A.J. Deason and C.S. Frenk, The Imprint of Cosmic Reionization on the Luminosity Function of Galaxies , ApJ 863
2018
Later among the works it cites.
C.A. Mason, T. Treu, M. Dijkstra, A. Mesinger, M. Trenti, L. Pentericci et al., The Universe Is Reionizing at z $\sim$ 7: Bayesian Inference of the IGM Neutral Fraction Using Ly$\upalpha$ Emission from Galaxies , ApJ 856
2018
Later among the works it cites.
E. Bañados, B.P. Venemans, C. Mazzucchelli, E.P. Farina, F. Walter, F. Wang et al., An 800-million-solar-mass black hole in a significantly neutral Universe at a redshift of 7.5 , Nature 553
2018
Later among the works it cites.
F.B. Davies, J.F. Hennawi, E. Bañados, Z. Lukić, R. Decarli, X. Fan et al., Quantitative Constraints on the Reionization History from the IGM Damping Wing Signature in Two Quasars at z $\greater$ 7 , ApJ 864
2018
Later among the works it cites.
M. Safarzadeh, E. Scannapieco and A. Babul, A Limit on the Warm Dark Matter Particle Mass from the Redshifted 21 cm Absorption Line , ApJ 859
2018
Later among the works it cites.
J.D. Bowman, A.E.E. Rogers, R.A. Monsalve, T.J. Mozdzen and N. Mahesh, An absorption profile centred at 78 megahertz in the sky-averaged spectrum , Nature 555
2018
Later among the works it cites.
The Astropy Collaboration, a.A.M. Price-Whelan, B.M. Sip\Hocz, H.M. Günther, P.L. Lim, S.M. Crawford et al., The Astropy Project: Building an Open-science Project and Status of the v2.0 Core Package , AJ 156
2018
Later among the works it cites.
E.O. Nadler, Y.-Y. Mao, G.M. Green and R.H. Wechsler, Modeling the Connection between Subhalos and Satellites in Milky Way–like Systems , ApJ 873
2019
Later among the works it cites.
M. Haslbauer, J. Dabringhausen, P. Kroupa, B. Javanmardi and I. Banik, Galaxies lacking dark matter in the Illustris simulation , A&A 626
2019
Later among the works it cites.
S. Bose, C.S. Frenk, A. Jenkins, A. Fattahi, F.A. Gómez, R.J.J. Grand et al., No cores in dark matter-dominated dwarf galaxies with bursty star formation histories , MNRAS 486
2019
Later among the works it cites.
T.M. Callingham, M. Cautun, A.J. Deason, C.S. Frenk, W. Wang, F.A. Gómez et al., The mass of the Milky Way from satellite dynamics , MNRAS 484
2019
Later among the works it cites.
A. Chatterjee, P. Dayal, T.R. Choudhury and A. Hutter, Ruling out 3 keV warm dark matter using 21 cm EDGES data , MNRAS 487
2019
Later among the works it cites.
A. Boyarsky, D. Iakubovskyi, O. Ruchayskiy, A. Rudakovskyi and W. Valkenburg, 21-cm observations and warm dark matter models , Phys. Rev. D 100
2019
Later among the works it cites.
A. Drlica-Wagner, K. Bechtol, S. Mau, M. McNanna, E.O. Nadler, A.B. Pace et al., Milky Way Satellite Census. I. The Observational Selection Function for Milky Way Satellites in DES Y3 and Pan-STARRS DR1 , ApJ 893
2020
Closest in time.
W. Wang, J. Han, M. Cautun, Z. Li and M.N. Ishigaki, The mass of our Milky Way , Sci. China Phys. Mech. Astron. 63
2020
Closest in time.
M. Cautun, A. Benítez-Llambay, A.J. Deason, C.S. Frenk, A. Fattahi, F.A. Gómez et al., The milky way total mass profile as inferred from Gaia DR2 , MNRAS 494
2020
Closest in time.
2020
Closest in time.
J. Richings, C. Frenk, A. Jenkins, A. Robertson, A. Fattahi, R.J.J. Grand et al., Subhalo destruction in the Apostle and Auriga simulations , MNRAS 492
2020
Closest in time.
J.J. Webb and J. Bovy, High-resolution simulations of dark matter subhalo disruption in a Milky-Way-like tidal field , MNRAS 499
2020
Closest in time.
M. Leo, T. Theuns, C.M. Baugh, B. Li and S. Pascoli, Constraining structure formation using EDGES , JCAP 2020
2020
Closest in time.
A. Rudakovskyi, D. Savchenko and M. Tsizh, Can EDGES observation favour any dark matter model? , MNRAS 497
2020
Closest in time.
C.R. Harris, K.J. Millman, S.J. van der Walt, R. Gommers, P. Virtanen, D. Cournapeau et al., Array programming with NumPy , Nature 585
2020
Closest in time.
P. Virtanen, R. Gommers, T.E. Oliphant, M. Haberland, T. Reddy, D. Cournapeau et al., SciPy 1.0: Fundamental algorithms for scientific computing in Python , Nature Methods 17
2020
Closest in time.
2021
Closest in time.
M. Cautun, C.S. Frenk, R. van de Weygaert, W.A. Hellwing and B.J.T. Jones, Milky Way mass constraints from the Galactic satellite gap , MNRAS 445
2049
Closest in time.
P. Jethwa, D. Erkal and V. Belokurov, The upper bound on the lowest mass halo , MNRAS 473
2060
Closest in time.
S.B. Green and F.C. van den Bosch, The tidal evolution of dark matter substructure – I. subhalo density profiles , MNRAS 490
2091
Closest in time.