REVIEW 3 major objections 6 minor 94 references
A quasi-gravitational potential can recover dynamically dominant voids and their galaxy trends despite J-PAS photometric redshift errors.
Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →
T0 review · grok-4.5
2026-07-30 16:34 UTC pith:A56BPSJT
load-bearing objection Solid controlled mock demo that quasi-potential watershed voids and massive void-galaxy trends hold under J-PAS-like photo-z errors; useful infrastructure, not a cosmology result, with the real-data leap already caveated. the 3 major comments →
J-PAS & FLAMINGO: Cosmic voids and void galaxies in the gravitational landscape of photometric surveys
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
In FLAMINGO mocks at z=0.3 with J-PAS-like photometric redshift errors, a watershed applied to a thresholded quasi-gravitational potential recovers dynamically dominant voids whose size and ellipticity distributions match those of the ideal mock, recovers a substantial matched subset occupying roughly 63 percent of the thresholded volume, and still yields massive void-core galaxies that are less massive, bluer and more star-forming than equal-mass galaxies in high-density regions.
What carries the argument
The quasi-gravitational potential: the Poisson solution of the log-transformed galaxy number density, thresholded to positive (expanding) regions and partitioned by watershed. It acts as a low-pass filter that isolates the dynamically dominant supervoids while suppressing small-scale noise introduced by photo-z scatter.
Load-bearing premise
That fixing the log-density transform, one-megaparsec grid and positive-potential threshold is already enough to claim the method will deliver reliable voids once real survey masks, selection functions and full redshift posteriors are included.
What would settle it
Apply the identical pipeline to a larger mock that also includes survey geometry, masks, selection functions and full photo-z posteriors; if the recovered-void volume fraction collapses well below 63 percent or the void-versus-dense galaxy property trends disappear, the claim fails.
If this is right
- J-PAS and similar photometric surveys can host catalogues of dynamically dominant voids without waiting for complete spectroscopy.
- Massive void-galaxy trends in colour, stellar mass and star-formation rate remain measurable at J-PAS photo-z precision.
- Stacking analyses that rely on void centres (Alcock–Paczyński, ISW, weak lensing) become feasible on photometric samples once the quasi-potential filter is applied.
- Smaller nested voids and void-in-cloud systems are deliberately excluded, so cosmological constraints will reflect only the expanding supervoid population.
Where Pith is reading between the lines
- The same potential watershed could serve as a common void definition across heterogeneous photometric and spectroscopic surveys, reducing finder-to-finder systematics.
- Because the method already discards contracting regions, it may automatically suppress the void-in-cloud population that contaminates many cosmological void probes.
- Extending the identical pipeline to Euclid-scale volumes would test whether the recovered volume fraction and galaxy trends remain stable when sample variance drops.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper tests whether a quasi-gravitational potential (Poisson solve on ln(1+δ) from a DTFE galaxy density field), followed by a Φ>0-thresholded watershed, can identify dynamically dominant voids in FLAMINGO-based J-PAS mocks despite photometric redshift errors. Comparing an ideal FBI mock to a JP mock with J-PAS-like line-of-sight scatter at z=0.3 and mi<20, the authors report compatible void size and ellipticity distributions, recovery of ~425 matched voids (IoU>0.5) occupying ~63% of the FBI thresholded quasi-potential volume with strong object-by-object Spearman correlations, and preservation of expected massive void-core galaxy trends (lower M*, bluer colours, elevated SFR/sSFR at fixed mass) relative to a high-density comparison sample. The main photo-z impact is interior contamination of JP density profiles and a modest drop in void abundance.
Significance. If the controlled mock result holds, the work offers a practical path for void and void-galaxy science in narrow-band photometric surveys such as J-PAS, where raw density-based void finders are known to degrade under photo-z scatter. The FBI–JP design, dual size estimators (Req and Dmax), KS and Spearman tests, spherical plus boundary density profiles, and mass-binned galaxy property comparisons with bootstrap intervals constitute a clear, falsifiable demonstration within the stated scope. Strengths include the explicit differential mock test, the dynamical motivation for restricting to expanding Φ>0 basins, and candid caveats on deferred systematics and the M*≥10^10 cut. The result is incremental rather than transformative, but useful for the community preparing J-PAS and similar surveys.
major comments (3)
- [§3.2, §6] §3.2 and §6 state that grid resolution, log-transform, and the quasi-potential threshold (exclude −Φ≥0) are not calibrated here and are deferred to McCarthy et al. (in prep.). The central claim that the method ‘mitigates redshift errors’ and yields ‘reliable’ voids therefore rests on a single fixed parameter set (1 Mpc grid, Φ>0 cut, ~55–56% volume occupation). Without at least a limited sensitivity check in this manuscript (e.g., threshold variation and effect on KS p-values, recovery fraction, and stacked profiles), it is hard to judge how load-bearing those choices are for the reported FBI–JP agreement. A short appendix or table quantifying stability under modest threshold/grid changes would substantially strengthen the robustness claim.
- [§5.1–5.2, Fig. 12] §4.3 and §5.1 document clear photo-z contamination of JP void interiors (elevated central 1+δ; SMF excess above ~10^11 M⊙; fewer void-core galaxies because collecting spheres shrink). The galaxy-property conclusions in §5.2 (bluer colours, higher SFR/sSFR at fixed mass) are drawn from the full JP void-core sample, not the 8990 ID-matched galaxies common to FBI and JP. Given that contamination is the dominant photo-z effect, the paper should either (i) repeat Fig. 12 on the matched subset or (ii) quantify how much the JP–high-density contrast shrinks when contaminants are removed. Without that, the claim that ‘expected trends survive’ in the JP mock is only partially stress-tested.
- [§3.3, §4.5, Abstract] §3.3–4.5 define recovery via IoU>0.5 and report 425 recovered voids (~40% of FBI voids; ~63% of FBI thresholded volume) with high Spearman rs for Dmax and ellipticity. The abstract and conclusions call this a ‘reasonable number’ and evidence that voids are ‘reliably’ identified. The paper should state more explicitly what success criterion was set a priori (volume fraction? purity/completeness vs size?) and how sensitive the 63% figure is to the IoU cut (e.g., IoU>0.3 vs 0.5). As written, ‘reasonable’ is post hoc and weakens the quantitative recovery claim.
minor comments (6)
- [Fig. 3] Fig. 3 caption and body: watershed boundaries are said to be shown in a 5 Mpc-thick slice in one place and 1 Mpc in another; clarify slice thickness consistently for density vs quasi-potential panels.
- [§3.2] Eq. (5) and surrounding text: the quasi-potential is defined via Poisson on ln(1+δ), but the symbol Φ is used for both the standard and quasi potential. Introduce a distinct symbol (e.g. Φ_q) to avoid confusion when discussing Φ>0 thresholds.
- [§2.2] §2.2: the J-PAS calibration sample is restricted to well-defined primary peaks and 0.2<z<0.4, mi<20; the text correctly notes it may not represent the full J-PAS population. A one-sentence quantitative comparison of the error distribution to the broader miniJPAS/TOPz sample would help readers gauge selection bias.
- [Abstract, §4.2] §4.2: KS test on Req rejects equality (p=0.0012) while Dmax does not (p=0.065). The text correctly prefers Dmax, but the abstract’s ‘overall size … distributions agree well’ should briefly acknowledge the Req tension so it is not overstated.
- [Title, §2.1, §3.2] Typos/notation: ‘J-P AS’ spacing inconsistencies in title/headers; ‘goaldz’ in §2.1; ‘Superhubble Bubbles’ may need a brief definition or citation call-out on first use beyond Icke 1984.
- [Figs. 7–8] Fig. 7–8 inset difference panels are useful; ensure axis labels and the sign convention (JP−FBI vs FBI−JP) are stated in the caption.
Circularity Check
No load-bearing circularity: FBI–JP agreement and void-galaxy trends are independent mock measurements, not fits or definitional identities.
specific steps
-
self citation load bearing
[§3.2 (quasi-potential watershed); also §2.2 photo-z modelling]
"In the present study we therefore apply the watershed identification of voids in a quasi-gravitational potential field (McCarthy 2024). [...] We note that this paper concerns an application of the quasi-potential framework to J-PAS galaxy mocks, rather than a methodological validation paper of the quasi-potential method. A quantitative calibration and sensitivity suite [...] is the core subject of a dedicated companion methods paper currently in preparation (McCarthy et al., in prep.)."
The quasi-potential watershed framing and the photo-z error injection recipe lean on prior/coauthor work (McCarthy 2024; Mansour et al. 2025) whose full parameter calibration is deferred. This is ordinary method inheritance, not a uniqueness theorem or a fitted input renamed as prediction: FBI and JP are still processed independently and compared with external statistics (KS tests, IoU, SMFs, SFR trends). Not load-bearing circularity; flagged only as minor self-dependence.
full rationale
The paper’s central chain is a controlled differential test: the same DTFE → log-density quasi-potential → Φ>0 watershed pipeline is run independently on an ideal FBI mock and a JP mock with externally calibrated J-PAS-like line-of-sight errors; size/ellipticity distributions, IoU-matched recovery, density profiles, and void-core vs high-density galaxy properties are then measured and compared. Nothing in that chain defines the JP outcome in terms of the FBI outcome, nor fits a free parameter to force agreement and then relabels it a prediction. Environmental ‘expected trends’ (lower M*, bluer colours, elevated SFR/sSFR) are external literature benchmarks, not quantities tuned inside the mocks. Mild self-dependence exists only as ordinary methodological background (Mansour et al. 2025 for the photo-z displacement recipe; McCarthy 2024 / in-prep for the quasi-potential watershed framing), which does not reduce the reported statistics to inputs by construction. Calibration of thresholds/grid/log-transform is explicitly deferred and caveated. Score 1 reflects that minor self-citation footprint without elevating it to circularity.
Axiom & Free-Parameter Ledger
free parameters (6)
- quasi-potential watershed threshold (exclude -Φ ≥ 0 / keep Φ>0 basins) =
Φ>0 (volume occupation ~55% FBI, ~56% JP)
- DTFE / potential grid spacing =
1 Mpc
- void-core galaxy local density cut =
log10(1+δ) < -0.3 plus sphere enclosing 50% of void mean density
- high-density comparison cut =
log10(1+δ) > 0.5
- void recovery IoU threshold =
IoU > 0.5
- galaxy sample limits (mi, M*, z snapshot, photo-z quality cuts) =
z=0.3, mi<20, M*≥1e10 M⊙; calibration 0.2<z<0.4 primary peaks
axioms (5)
- ad hoc to paper Poisson quasi-potential on ln(1+δ) preserves the dynamically relevant large-scale void basins under photo-z line-of-sight scatter better than raw density watersheds.
- domain assumption FLAMINGO L1_m8 galaxies with ≥100 star particles are adequate tracers for void structure and massive void-galaxy property trends at z=0.3.
- domain assumption J-PAS photo-z errors can be modelled as z-axis comoving distance offsets drawn from the TOPz calibration error distribution, ignoring RSD, masks, and selection functions for this controlled test.
- domain assumption Watershed basins on the thresholded negative quasi-potential correspond to dynamically dominant expanding voids (void-in-void / Superhubble-type regions).
- standard math Periodic-box DTFE density on a Cartesian grid is a faithful continuous tracer field for void finding.
invented entities (2)
-
Quasi-gravitational potential (Poisson solve on ln(1+δ) galaxy density)
no independent evidence
-
Void-core galaxy sample (max-potential-centred sphere at 50% void mean density ∩ log10(1+δ)<-0.3)
no independent evidence
read the original abstract
Photometric surveys offer a powerful way to map the large-scale structure of the Universe, but their redshift errors complicate the identification of cosmic voids, challenging studies of their environmental effect on galaxy properties. We present an approach to robustly identify dynamically relevant voids and void galaxies in galaxy mocks of the Javalambre Physics of the Accelerating Universe Astrophysical Survey (J-PAS), testing whether known trends in void galaxy properties survive photometric redshift errors. Using FLAMINGO mocks at z = 0.3 and mi < 20, we compare a FLAMINGO-based ideal (FBI) mock to a FLAMINGO-based JP mock with J-PAS-like redshift errors. We mitigate redshift errors using a quasi-gravitational potential field in the two galaxy mocks. We apply a watershed algorithm to the thresholded quasi-potential field to identify dynamically dominant voids, and define massive void galaxies alongside a comparison sample in high-density regions. Photometric errors lead to a slightly lower void abundance and a marginal shift toward larger, less spherical voids, but overall size and ellipticity distributions agree well between mocks. Their main impact is contamination of void interiors in the JP density profiles by galaxies scattered from high-density regions. We recover a reasonable number of FBI sample voids in the JP sample, with excellent size and shape agreement, occupying ~63% of the thresholded quasi-potential volume. In both mocks, void galaxies show lower stellar masses, bluer colours, and enhanced star formation relative to equal-mass galaxies in high-density regions. These results suggest a quasi-potential can mitigate redshift errors at the level expected for J-PAS, enabling identification of reliable, dynamically dominant voids that are less sensitive to small-scale noise. The massive void galaxy population shows the expected trends relative to high-density environments.
Figures
Reference graph
Works this paper leans on
-
[1]
Abbott, T. M. C., Aguena, M., Alarcon, A., et al. 2022, Phys. Rev. D, 105, 023520
2022
-
[2]
Aragon-Calvo, M. A. & Szalay, A. S. 2013, MNRAS, 428, 3409 Aragón-Calvo, M. A., van de Weygaert, R., & Jones, B. J. T. 2010, MNRAS, 408, 2163
2013
-
[3]
2014, arXiv e-prints, arXiv:1403.5237
Benitez, N., Dupke, R., Moles, M., et al. 2014, arXiv e-prints, arXiv:1403.5237
Pith/arXiv arXiv 2014
-
[4]
2024, MNRAS, 529, 4325
Bermejo, R., Wilding, G., van de Weygaert, R., et al. 2024, MNRAS, 529, 4325
2024
-
[5]
F., van der Hulst, J
Beygu, B., Peletier, R. F., van der Hulst, J. M., et al. 2017, MNRAS, 464, 666
2017
-
[6]
R., Kofman, L., & Pogosyan, D
Bond, J. R., Kofman, L., & Pogosyan, D. 1996, Nature, 380, 603
1996
-
[7]
2021, A&A, 653, A31
Bonoli, S., Marín-Franch, A., Varela, J., et al. 2021, A&A, 653, A31
2021
-
[8]
Bos, E. G. P., van de Weygaert, R., Dolag, K., & Pettorino, V . 2012, MNRAS, 426, 440
2012
-
[9]
Cautun, M., Cai, Y .-C., & Frenk, C. S. 2016, MNRAS, 457, 2540
2016
-
[10]
Cautun, M., van de Weygaert, R., Jones, B. J. T., & Frenk, C. S. 2014, MNRAS, 441, 2923
2014
-
[11]
Cautun, M. C. & van de Weygaert, R. 2011, arXiv e-prints, arXiv:1105.0370
Pith/arXiv arXiv 2011
-
[12]
Ceccarelli, L., Paz, D., Lares, M., Padilla, N., & Lambas, D. G. 2013, MNRAS, 434, 1435
2013
-
[13]
M., Pearce, F., Foster, C., et al
Colberg, J. M., Pearce, F., Foster, C., et al. 2008, MNRAS, 387, 933
2008
-
[14]
& Jones, B
Coles, P. & Jones, B. 1991, MNRAS, 248, 1
1991
-
[15]
A., Jackson, C., et al
Colless, M., Peterson, B. A., Jackson, C., et al. 2003, The 2dF Galaxy Redshift Survey: Final Data Release
2003
-
[16]
M., García-Benito, R., González Delgado, R
Conrado, A. M., García-Benito, R., González Delgado, R. M., et al. 2026, A&A, 709, A227
2026
-
[17]
M., González Delgado, R
Conrado, A. M., González Delgado, R. M., García-Benito, R., et al. 2024, A&A, 687, A98
2024
-
[18]
2024, A&A, 682, A20
Contarini, S., Pisani, A., Hamaus, N., et al. 2024, A&A, 682, A20
2024
-
[19]
2026, arXiv e-prints, arXiv:2601.14362
Contarini, S., Verza, G., & Pisani, A. 2026, arXiv e-prints, arXiv:2601.14362
arXiv 2026
-
[20]
Curtis, O., McDonough, B., & Brainerd, T. G. 2024, ApJ, 962, 58 de Jong, R. S., Agertz, O., Berbel, A. A., et al. 2019, The Messenger, 175, 3 de Lapparent, V ., Geller, M. J., & Huchra, J. P. 1986, ApJ, 302, L1
2024
-
[21]
1934, Izvestiya Akademii Nauk SSSR
Delaunay, B. 1934, Izvestiya Akademii Nauk SSSR. Otdelenie Matematich- eskikh i Estestvennykh Nauk, 793, bulletin de l’Académie des Sciences de l’URSS. Classe des sciences mathématiques et naturelles DESI Collaboration, Abareshi, B., Aguilar, J., et al. 2022, AJ, 164, 207 Domínguez-Gómez, J., Pérez, I., Ruiz-Lara, T., et al. 2023, Nature, 619, 269
1934
-
[22]
S., Finoguenov, A., et al
Doubrawa, L., Cypriano, E. S., Finoguenov, A., et al. 2024, A&A, 685, A98
2024
-
[23]
1980, ApJ, 236, 351
Dressler, A. 1980, ApJ, 236, 351
1980
-
[24]
N., Goldwirth, D
Dubinski, J., da Costa, L. N., Goldwirth, D. S., Lecar, M., & Piran, T. 1993, ApJ, 410, 458
1993
-
[25]
& Courtois, H
Dupuy, A. & Courtois, H. M. 2023, A&A, 678, A176
2023
-
[26]
M., Libeskind, N
Dupuy, A., Courtois, H. M., Libeskind, N. I., & Guinet, D. 2020, MNRAS, 493, 3513
2020
-
[27]
1991, MNRAS, 250, 802
Einasto, M. 1991, MNRAS, 250, 802
1991
-
[28]
2022, A&A, 668, A69
Einasto, M., Kipper, R., Tenjes, P., et al. 2022, A&A, 668, A69
2022
-
[29]
2025, A&A, 704, A151 Euclid Collaboration, Mellier, Y ., Abdurro’uf, et al
Einasto, M., Tenjes, P., Kipper, R., et al. 2025, A&A, 704, A151 Euclid Collaboration, Mellier, Y ., Abdurro’uf, et al. 2025, A&A, 697, A1
2025
-
[30]
A., Kannappan, S
Florez, J., Berlind, A. A., Kannappan, S. J., et al. 2021, ApJ, 906, 97
2021
-
[31]
E., Hoffman, Y ., Gottlöber, S., Klypin, A., & Yepes, G
Forero-Romero, J. E., Hoffman, Y ., Gottlöber, S., Klypin, A., & Yepes, G. 2009, MNRAS, 396, 1815 Ganeshaiah Veena, P., Cautun, M., Tempel, E., van de Weygaert, R., & Frenk, C. S. 2019, MNRAS, 487, 1607–1625 García-Benito, R., Jiménez, A., Sánchez-Menguiano, L., et al. 2024, A&A, 691, A161 González Delgado, R. M., Díaz-García, L. A., de Amorim, A., et al....
2009
-
[32]
Gregory, S. A. & Thompson, L. A. 1978, ApJ, 222, 784
1978
-
[33]
Grogin, N. A. & Geller, M. J. 1999, The Astronomical Journal, 118, 2561–2580
1999
-
[34]
2020, MNRAS, 493, 899
Habouzit, M., Pisani, A., Goulding, A., et al. 2020, MNRAS, 493, 899
2020
-
[35]
2016, PRL, 117
Hamaus, N., Pisani, A., Sutter, P., et al. 2016, PRL, 117
2016
-
[36]
Helly, J. C., McGibbon, R. J., Schaye, J., et al. 2026, arXiv e-prints, arXiv:2604.24324 Hernán-Caballero, A., Varela, J., López-Sanjuan, C., et al. 2021, A&A, 654, A101 Hernán-Caballero, A., Willmer, C. N. A., Varela, J., et al. 2023, A&A, 671, A71
Pith/arXiv arXiv 2026
-
[37]
2026, arXiv e-prints, arXiv:2604.18209
Hertzsch, B., Feldbrugge, J., & van de Weygaert, R. 2026, arXiv e-prints, arXiv:2604.18209
Pith/arXiv arXiv 2026
-
[38]
& Melchior, P
Horowitz, B. & Melchior, P. 2025, MNRAS, 538, 2050
2025
-
[39]
R., V ogeley, M
Hoyle, F., Rojas, R. R., V ogeley, M. S., & Brinkmann, J. 2005, ApJ, 620, 618
2005
-
[40]
S., & Pan, D
Hoyle, F., V ogeley, M. S., & Pan, D. 2012, MNRAS, 426, 3041
2012
-
[41]
P., Macri, L
Huchra, J. P., Macri, L. M., Masters, K. L., et al. 2012, ApJS, 199, 26
2012
-
[42]
1984, MNRAS, 206, 1P Ivezi´c, Ž., Kahn, S
Icke, V . 1984, MNRAS, 206, 1P Ivezi´c, Ž., Kahn, S. M., Tyson, J. A., et al. 2019, ApJ, 873, 111 Jõeveer, M., Einasto, J., & Tago, E. 1978, MNRAS, 185, 357
1984
-
[43]
2013, MNRAS, 434, 2167
Jennings, E., Li, Y ., & Hu, W. 2013, MNRAS, 434, 2167
2013
-
[44]
Jones, B. J. T., van de Weygaert, R., & Aragón-Calvo, M. A. 2010, MNRAS, 408, 897
2010
-
[45]
P., Oemler, Augustus, J., Schechter, P
Kirshner, R. P., Oemler, Augustus, J., Schechter, P. L., & Shectman, S. A. 1987, ApJ, 314, 493
1987
-
[46]
2016, PRL, 116
Kitaura, F.-S., Chuang, C.-H., Liang, Y ., et al. 2016, PRL, 116
2016
-
[47]
A., et al
Kreckel, K., Platen, E., Aragón-Calvo, M. A., et al. 2011, AJ, 141, 4 J.A Mansour et al.: J-PAS & FLAMINGO: Cosmic voids and void galaxies in the gravitational landscape of photometric surveys
2011
-
[48]
A., et al
Kreckel, K., Platen, E., Aragón-Calvo, M. A., et al. 2012, The Astronomical Journal, 144, 16
2012
-
[49]
D., Pisani, A., Carbone, C., et al
Kreisch, C. D., Pisani, A., Carbone, C., et al. 2019, MNRAS, 488, 4413
2019
-
[50]
2023, MNRAS, 526, 6103
Kugel, R., Schaye, J., Schaller, M., et al. 2023, MNRAS, 526, 6103
2023
-
[51]
& van de Weygaert, R
Kugel, R. & van de Weygaert, R. 2026, MNRAS, 547, stag193
2026
-
[52]
2022, A&A, 668, A8
Laur, J., Tempel, E., Tamm, A., et al. 2022, A&A, 668, A8
2022
-
[53]
& Wandelt, B
Lavaux, G. & Wandelt, B. D. 2010, MNRAS, 403, 1392
2010
-
[54]
2025, MNRAS, 543, 2204
Lim, S., Tacchella, S., Maiolino, R., Schaye, J., & Schaller, M. 2025, MNRAS, 543, 2204
2025
-
[55]
A., Liivamägi, L
Mansour, J. A., Liivamägi, L. J., Tamm, A., et al. 2025, A&A, 695, A174 Martínez-Solaeche, G., González Delgado, R. M., García-Benito, R., et al. 2021, A&A, 647, A158 Martínez-Solaeche, G., Queiroz, C., González Delgado, R. M., et al. 2023, A&A, 673, A103
2025
-
[56]
Maturi, M., Finoguenov, A., Lopes, P. A. A., et al. 2023, A&A, 678, A145
2023
-
[57]
McCarthy, B. M. 2024, Comparative Analysis of the Watershed V oid Finding Technique, bSc thesis, University of Groningen
2024
-
[58]
G., Schaye, J., Bird, S., & Le Brun, A
McCarthy, I. G., Schaye, J., Bird, S., & Le Brun, A. M. C. 2017, MNRAS, 465, 2936
2017
-
[59]
1963, Morse theory, Based on lecture notes by M
Milnor, J. 1963, Morse theory, Based on lecture notes by M. Spivak and R. Wells. Annals of Mathematics Studies, No. 51 (Princeton, N.J.: Princeton University Press), vi+153
1963
-
[60]
1934, The calculus of variations in the large, V ol
Morse, M. 1934, The calculus of variations in the large, V ol. 18 (American Math- ematical Soc.)
1934
-
[61]
& Hotchkiss, S
Nadathur, S. & Hotchkiss, S. 2014, MNRAS, 440, 1248
2014
-
[62]
Newman, J. A. & Gruen, D. 2022, ARA&A, 60, 363
2022
-
[63]
Neyrinck, M. C. 2008, MNRAS, 386, 2101
2008
-
[64]
2000, Spatial tessellations : concepts and applications of voronoi diagrams
Okabe, A., ed. 2000, Spatial tessellations : concepts and applications of voronoi diagrams
2000
-
[65]
Oprea, A. G. 2025, Hierarchical Topology of the Cosmic Web Tidal Force Field, bSc thesis, University of Groningen
2025
-
[66]
Paillas, E., Lagos, C. D. P., Padilla, N., et al. 2017, MNRAS, 470, 4434
2017
-
[67]
& Roukema, B
Peper, M. & Roukema, B. F. 2021, MNRAS, 505, 1223 Pérez, I., Verley, S., Sánchez-Menguiano, L., et al. 2024, A&A, 689, A213 Pérez-Ràfols, I., Abramo, L. R., Martínez-Solaeche, G., et al. 2023, A&A, 678, A144
2021
-
[68]
N., et al
Pisani, A., Massara, E., Spergel, D. N., et al. 2019, BAAS, 51, 40
2019
-
[69]
2005, PhD thesis, Groningen
Platen, E. 2005, PhD thesis, Groningen
2005
-
[70]
Platen, E., van de Weygaert, R., & Jones, B. J. T. 2007, MNRAS, 380, 551
2007
-
[71]
Platen, E., van de Weygaert, R., & Jones, B. J. T. 2008, MNRAS, 387, 128
2008
-
[72]
Platen, E., van de Weygaert, R., Jones, B. J. T., Vegter, G., & Calvo, M. A. A. 2011, MNRAS, 416, 2494
2011
-
[73]
2024, The Tidal Origin of the Cosmic Web: A Hidden Structure in the Primordial Universe, bSc thesis, University of Groningen Rodríguez-Medrano, A
Ram, J. 2024, The Tidal Origin of the Cosmic Web: A Hidden Structure in the Primordial Universe, bSc thesis, University of Groningen Rodríguez-Medrano, A. M., Paz, D. J., Stasyszyn, F. A., et al. 2023, MNRAS, 521, 916–925
2024
-
[74]
R., V ogeley, M
Rojas, R. R., V ogeley, M. S., Hoyle, F., & Brinkmann, J. 2004, ApJ, 617, 50
2004
-
[75]
R., V ogeley, M
Rojas, R. R., V ogeley, M. S., Hoyle, F., & Brinkmann, J. 2005, ApJ, 624, 571
2005
-
[76]
Rosas-Guevara, Y ., Tissera, P., Lagos, C. d. P., Paillas, E., & Padilla, N. 2022, MNRAS, 517, 712 Sánchez, C., Clampitt, J., Kovacs, A., et al. 2017, MNRAS, 465, 746
2022
-
[77]
Schaap, W. E. & van de Weygaert, R. 2000, A&A, 363, L29
2000
-
[78]
2023, MNRAS, 526, 4978
Schaye, J., Kugel, R., Schaller, M., et al. 2023, MNRAS, 526, 4978
2023
-
[79]
2019, Journal of Cosmology and Astroparticle Physics, 2019, 055
Schuster, N., Hamaus, N., Pisani, A., et al. 2019, Journal of Cosmology and Astroparticle Physics, 2019, 055
2019
-
[80]
A., Heitmann, K., & Habib, S
Shandarin, S., Feldman, H. A., Heitmann, K., & Habib, S. 2006, MNRAS, 367, 1629
2006
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