REVIEW 3 major objections 5 minor 92 references
Toward the fabric of the Milky Way I. The density of disk streams from a local $250^3$ pc$^3$ volume
T0 review · 3 major / 5 minor · reviewed 2026-08-04 · deepseek-v4-flash
Pith's one-line read A local Gaia census finds ~820 disk streams per cubic kiloparsec—10 to 100 times more than simulations predict.
desk verdict The headline density is a raw count from an uncalibrated census, so don't quote 820/kpc^3 yet, but the paper is a serious first attempt at a volume census of disk streams and deserves a fair referee. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The argument is carried by a volume-controlled census: 12 stream-like populations previously flagged as interlopers in a Sco-Cen survey are re-expanded beyond the search box using the SigMA clustering pipeline on 6D phase space and the Uncover membership method on 5D data, then counted against the true box volume of 14.625×10^6 pc^3. The working definition of a disk stream—coeval and comoving with aspect ratio >3:1—sets what is being counted; extreme deconvolution supplies cleaned velocity dispersions, and Jacobi-radius analysis separates streams with bound cores from fully unbound ones.
What would settle it
Count stream-like structures in a different, comparably complete local volume (e.g., a 250^3 pc^3 box away from Sco-Cen) while injecting synthetic disk streams with known lengths and velocity dispersions into Gaia-like data to measure the pipeline's recovery fraction; if the completeness-corrected count is tens per kpc^3 rather than roughly 800, the density claim collapses.
Extended reading notes
Core claim
The paper's central claim is that disk streams—coeval, comoving stellar structures with aspect ratios above 3:1—are abundant in the local Milky Way disk. From 12 such streams found inside a fully sampled 300×250×195 pc box (the '250^3 pc^3' volume), the authors derive a volume density of about 820 streams per kpc^3 for |Z|<100 pc and a projected surface density of about 160 streams per kpc^2. The streams are dynamically cold, with 3D velocity dispersions of 2.1–5.1 km/s, highly elongated (average aspect ratio 7:1, lengths 120–430 pc), and have ages from about 50 Myr to 1 Gyr with a median near 100 Myr. Because the observed density exceeds the N-body prediction by one to two orders of magnitu
Load-bearing premise
The density estimate treats the 12 streams recovered in the Sco-Cen-centered search box as a complete, independent census of disk streams in that volume, and treats that volume as representative of the local disk, although the pipeline's detection completeness is not quantified and the box is not randomly placed.
Editorial extensions
If this is right
- Disk streams are not rare byproducts of cluster dissolution; the local census implies hundreds of them per cubic kiloparsec near the mid-plane, making them a common phase in stellar life.
- N-body estimates of Gaia-detectable streams need revision: either birth conditions produce far more elongated structures, or GMC encounters destroy them far more slowly than the 10–100 Myr timescales usually assumed.
- Because the streams are cold and coeval, they can act as dynamical tracers: their orbits, lengths, and internal velocity structure probe the Galactic potential and the gas distribution on kiloparsec scales.
- The four streams with bound cores hold most of their mass outside the core (~65%), so even 'surviving' clusters are mostly dissolving into the field; older streams are almost all fully unbound, suggesting core dissolution is a late stage.
- The apparent non-correlation between stream length and age challenges simple tidal-tail growth models, implying either initial conditions dominate or current Gaia data miss the faintest tails.
Reading between the lines
- Beyond the paper: if the local density of ~160 streams/kpc^2 holds across the star-forming disk, the Milky Way would host of order 10^5 disk streams within 100 pc of the mid-plane—a population large enough to make stream statistics a standard tool for cluster disruption studies.
- Beyond the paper: the same pipeline's sensitivity limit (median stream density ~50 times below the field) means the 820/kpc^3 count is likely a lower limit; Gaia DR4's better astrometry should reveal longer, hotter streams and could push the census higher, not lower.
- Beyond the paper: the reported absence of age-length and age-velocity-dispersion correlations may be a selection effect of density-based clustering, which cannot recover tails with signal-to-noise near 1; a test would be to re-cluster in action-angle space and see if the correlations appear.
- Beyond the paper: the apparent disruption of Theia 368 inside Sco-Cen suggests primordial gas, not just GMC encounters, can shape streams; if a traceback with the association's gas mass confirms it, OB-association gas should be added to N-body destruction models.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper presents a follow-up census of 12 elongated, coeval, comoving structures ('disk streams') first flagged as interlopers in the Sco-Cen-targeted SigMA run of Paper I (Ratzenböck et al. 2023a) inside a 300×250×195 pc box. Using SigMA and Uncover on Gaia DR3 6D/5D data, the authors extend the member lists, measure lengths, aspect ratios, ages, masses, velocity dispersions, and boundedness, and count these 12 objects to derive a local disk stream volume density of ~820/kpc3 and surface density ~160/kpc2, one to two orders of magnitude above N-body predictions (HCT21). They also report tentative evidence that Theia 368 is being disrupted by Sco-Cen gas.
Significance. The paper offers a valuable catalog of nearby stream-like systems and the first attempt to turn Gaia detections into a stream density. The contamination checks (CMD narrowing, S/N, XD outlier modeling) are sensible and support that the 12 systems are real coherent structures. The expanded membership and the public source catalog are useful. However, the headline density is not yet a calibrated measurement: the initial detection was not a blind, completeness-controlled stream census, and the search volume is centered on Sco-Cen. The central claim therefore needs additional selection-function work before it can be compared directly to N-body predictions.
major comments (3)
- [§1, §3.1, §4.3, §5.2] The central density estimate in §5.2 is a raw count: 12 streams divided by 14,625,000 pc3. The initial identification of these 12 systems (Paper I) was not a blind stream survey; they are interlopers in a Sco-Cen-targeted SigMA run (§2). No injection-recovery or other false-negative calibration is provided, so the selection function of the stream census is unknown. The sensitivity statement in §4.3 ('median stream densities ... 0.001 stars/pc3') describes the average density of the streams actually recovered, not a demonstrated detection limit; a lower-contrast or differently oriented stream could be missed. The paper itself notes in §5.1 that members with velocity offsets of a few km/s are lost at S/N~1. Thus the 'volume-complete sample' claim in §1 is unsupported. As written, 820/kpc3 cannot be treated as a point estimate; at best it is a lower limit under an unverified assumption of z
- [§2, §5.2, §5.4] The search volume was not drawn randomly from the local disk: X=[-50,250], Y=[-200,50], Z=[-95,100] pc was the box used in Paper I to study Sco-Cen, and §5.4 shows that the streams 'are tightly packed' around Sco-Cen, with S1, S2, and S8 spatially overlapping the association. The statement in §5.2 that the box 'lies within a region ... representative of typical stellar populations' is an assertion; the age spread argument is not a test of stream density. Because the central comparison is to N-body predictions for the average disk, the authors need to show that the stream density in this Sco-Cen-centered volume is not enhanced by the OB association environment. A concrete step would be to measure stream counts in independent subvolumes of the same 500 pc data (e.g., boxes away from Sco-Cen) or to compare with all-sky cluster/stream catalogs over a matched volume. Without that, the '820/kp
- [§5.2, §4.6] The comparison to HCT21 in §5.2 may conflate different definitions of 'disk stream.' HCT21's predictions are for streams detectable with a specific Gaia DR2 astrometric selection and cluster disruption model, whereas this paper defines streams purely morphologically (aspect ratio >3:1) and includes unbound associations, moving groups, tidal tails, and cluster coronae (§1). The paper partially addresses this by removing the four bound-core clusters, but even the remaining eight include structures whose physical nature (e.g., moving groups, tidal tails) may differ from the N-body 'streams' in HCT21. The 1-2 dex gap in §5.2 should be accompanied by a quantitative discussion of how much of the gap is due to this definitional mismatch rather than to a failure of destruction mechanisms.
minor comments (5)
- [§4.3, Appendix E.2] The mean S/N is quoted as 28 in §4.3 and as 27 in Appendix E.2; the values in Table 1 average to ~26.8. Please harmonize.
- [Table 1] The 'Size' column is not defined in the caption; it appears to be the number of selected members and should be labeled as such.
- [Table 1] Minor typographical issues: 'V olans-Carina' contains a spurious space, and the aspect ratio column would benefit from an explicit statement that the first number is the ratio of the largest to the smallest principal component.
- [§5.2] The density estimates are quoted without uncertainties. Please provide at least Poisson counting uncertainties and a brief systematic error budget.
- [Appendix D.1] The XD contamination estimate has a built-in floor: the background component is constrained to account for at least 5% of the observations. This should be stated when interpreting the mean 9% contamination rate.
Circularity Check
No circularity: the stream density is a raw count divided by a fixed volume; self-citations provide tools/sample but do not force the result.
full rationale
The central density estimate (820 objects/kpc^3) is computed directly as 12 streams divided by the fixed Paper I search-box volume of 14,625,000 pc^3 (Sects. 2 and 5.2). It is a measurement, not the output of a fitted model: no parameter is adjusted to match a target density, and no equation reduces the density to the algorithm parameters. The 12 streams are inherited from the authors' Paper I interloper list, but the current paper re-detects them with SigMA and Uncover and validates them with three independent checks (XD outlier component, CMD isochrone concentration, velocity S/N; Sect. 4.3, Apps. D-E), so the count is not an unexamined fitted input. The comparison to HCT21 N-body predictions is an external benchmark. The self-citations (Paper I, Ratzenböck et al. 2020, 2023a,b; MAR21) supply detection tools and a prior catalog; they do not define the density, and the density would be unchanged if different published tools had been used. The acknowledged limitations—no injection-recovery completeness calibration, the non-random Sco-Cen-centered box, and the possible loss of low-contrast velocity-tail members (Sect. 5.1)—are real validity threats to interpreting 820/kpc^3 as a complete census, but they are completeness/representativeness concerns, not circular reductions. The sensitivity statement in Sect. 4.3 reports the average densities of the streams actually found; it is descriptive and does not enter the density calculation. Therefore no circular step can be exhibited; the non-zero score reflects only the presence of several self-citations, none load-bearing for the central claim.
Assumptions & free parameters
free parameters (4)
- Disk stream aspect ratio threshold =
3:1
- SigMA kinematic scale factors =
20 values in range 1.5 to 35.2
- Velocity pre-selection cut =
20 km/s
- XD background constraints =
Diagonal covariance > 10 km/s; minimum background weight 5%
assumptions (5)
- domain assumption Gaia DR3 positions, parallaxes, proper motions, and radial velocities are accurate enough for the claimed phase-space resolution.
- ad hoc to paper The Paper I SigMA run inside the box provides a complete census of clusters and streams in that volume.
- ad hoc to paper The 250^3 pc^3 volume is representative of the local Milky Way disk.
- domain assumption The 12 streams are independent structures, not fragments of larger parent populations.
- domain assumption PARSEC isochrones and a Kroupa IMF at solar metallicity describe the stream populations.
invented entities (1)
-
Ratzenboeck 1 (disk stream S1)
independent evidence
Cite this review
Pith. "Pith review of Toward the fabric of the Milky Way I. The density of disk streams from a local $250^3$ pc$^3$ volume." pith.science (2026). https://pith.science/paper/7CPDPBBX
@misc{pith2026250907075,
author = {Pith},
title = {Pith review of: Toward the fabric of the Milky Way I. The density of disk streams from a local $250^3$ pc$^3$ volume},
year = {2026},
howpublished = {\url{https://pith.science/paper/7CPDPBBX}},
note = {Machine review of arXiv:2509.07075}
}
abstract
We studied 12 disk streams found in a 250$^3$ pc$^3$ volume in the solar neighborhood, which we define as coeval and comoving stellar structures with aspect ratios greater than 3:1. Using Gaia Data Release 3 data and the advanced clustering algorithms SigMA and Uncover, we identified and characterized these streams beyond the search volume, doubling, on average, their known populations. We estimate the number density of disk streams to be $\approx 820$ objects / kpc$^3$ (for $|Z| < 100$ pc), or surface densities of $\approx 160$ objects / kpc$^2$. These estimates surpass N-body estimates by one to two orders of magnitude and challenge the prevailing understanding of their destruction mechanisms. Our analysis reveals that these 12 disk streams are dynamically cold with 3D velocity dispersions between 2 and 5 km s$^{-1}$, exhibit narrow sequences in the Hertzsprung-Russell diagram, and are highly elongated with average aspect ratios of 7:1, extending up to several hundred parsecs. We find evidence suggesting that one of the disk streams, currently embedded in the Scorpius-Centaurus association, is experiencing disruption, likely due to the primordial gas mass of the association.
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Works this paper leans on
-
[1]
J., Curtis, J
Andrews, J. J., Curtis, J. L., Chanam \'e , J., et al. 2022, The Astronomical Journal, 163, 275
2022
-
[2]
M., Sip o cz , B
Astropy Collaboration , Price-Whelan , A. M., Sip o cz , B. M., et al. 2018, , 156, 123
2018
-
[3]
P., Tollerud , E
Astropy Collaboration , Robitaille , T. P., Tollerud , E. J., et al. 2013, , 558, A33
2013
-
[4]
Bailer-Jones , C. A. L., Rybizki , J., Fouesneau , M., Demleitner , M., & Andrae , R. 2021, , 161, 147
2021
-
[5]
Beccari, G., Boffin, H. M. J., & Jerabkova, T. 2019, , 491, 2205
2019
-
[6]
Beccari , G., Boffin , H. M. J., & Jerabkova , T. 2020, , 491, 2205
2020
-
[7]
& Bovy , J
Bennett , M. & Bovy , J. 2019, , 482, 1417
2019
-
[8]
& Fernique , P
Boch , T. & Fernique , P. 2014, in Astronomical Society of the Pacific Conference Series, Vol. 485, Astronomical Data Analysis Software and Systems XXIII, ed. N. Manset & P. Forshay , 277
2014
Show all 92 references
-
[9]
2000, , 143, 33
Bonnarel , F., Fernique , P., Bienaym \'e , O., et al. 2000, , 143, 33
2000
-
[10]
2019, , 623, A108
Bossini , D., Vallenari , A., Bragaglia , A., et al. 2019, , 623, A108
2019
-
[11]
2015, The Astrophysical Journal Supplement Series, 216, 29
Bovy, J. 2015, The Astrophysical Journal Supplement Series, 216, 29
2015
-
[12]
2016, , 116, 121301
Bovy, J. 2016, , 116, 121301
2016
-
[13]
W., & Roweis, S
Bovy, J., Hogg, D. W., & Roweis, S. T. 2011, The Annals of Applied Statistics, 5, 1657
2011
-
[14]
& Anders , F
Cantat-Gaudin , T. & Anders , F. 2020, , 633, A99
2020
-
[15]
2020, , 643, A114
Chen , B., D'Onghia , E., Alves , J., & Adamo , A. 2020, , 643, A114
2020
-
[16]
L., Agüeros, M
Curtis, J. L., Agüeros, M. A., Mamajek, E. E., Wright, J. T., & Cummings, J. D. 2019, Astron. J., 158, 77
2019
-
[17]
2019, , 623, A112
Damiani , F., Prisinzano , L., Pillitteri , I., Micela , G., & Sciortino , S. 2019, , 623, A112
2019
-
[18]
P., Laird, N
Dempster, A. P., Laird, N. M., & Rubin, D. B. 1977, J. R. Stat. Soc. Series B Stat. Methodol., 39, 1
1977
-
[19]
Eggen, O. J. 1996, Astron. J., 112, 1595
1996
-
[20]
Ernst, A., Just, A., Berczik, P., & Petrov, M. I. 2010, , 524, A62
2010
-
[21]
Fisher, R. A. 1934, in Breakthroughs in statistics (Springer), 66--70
1934
-
[22]
2019, , 624, L11
F \"u rnkranz , V., Meingast , S., & Alves , J. 2019, , 624, L11
2019
-
[23]
2024, , 961, 113
Fürnkranz, V., Rix, H.-W., Coronado, J., & Seeburger, R. 2024, , 961, 113
2024
-
[24]
& Faherty , J
Gagn \'e , J. & Faherty , J. K. 2018, , 862, 138
2018
-
[25]
E., Malo , L., et al
Gagn \'e , J., Mamajek , E. E., Malo , L., et al. 2018c, , 856, 23
-
[26]
K., & Mamajek, E
Gagné, J., Faherty, J. K., & Mamajek, E. E. 2018, , 865, 136
2018
-
[27]
K., Moranta, L., & Popinchalk, M
Gagné, J., Faherty, J. K., Moranta, L., & Popinchalk, M. 2021, The Astrophysical Journal Letters, 915, L29
2021
-
[28]
Gaia Collaboration , Vallenari , A., Brown , A. G. A., et al. 2023, , 674, A1
2023
-
[29]
Gieles, M., Zwart, S. F. P., Baumgardt, H., et al. 2006, Monthly Notices of the Royal Astronomical Society, 371, 793
2006
-
[30]
2024, , 683, A33
Golovin, A., Reffert, S., Vani, A., et al. 2024, , 683, A33
2024
-
[31]
2021, , 652, A2
Grasser , N., Ratzenb \"o ck , S., Alves , J., et al. 2021, , 652, A2
2021
-
[32]
2018, , 615, L15
GRAVITY Collaboration , Abuter , R., Amorim , A., et al. 2018, , 615, L15
2018
-
[33]
J., Freeman, K
Grillmair, C. J., Freeman, K. C., Irwin, M., & Quinn, P. J. 1995,
1995
-
[34]
2011, Wiley Series in Probability and Statistics (John Wiley & Sons, Inc.), 503--509
Hampel, F., Ronchetti, E., Rousseeuw, P., & Stahel, W. 2011, Wiley Series in Probability and Statistics (John Wiley & Sons, Inc.), 503--509
2011
-
[35]
2020, Monthly Notices of the Royal Astronomical Society, 496, 2422
Hawkins, K., Lucey, M., & Curtis, J. 2020, Monthly Notices of the Royal Astronomical Society, 496, 2422
2020
-
[36]
Hunt, E. L. & Reffert, S. 2023, , 673, A114
2023
-
[37]
Hunt, E. L. & Reffert, S. 2024, , 686, A42
2024
-
[38]
Hunter , J. D. 2007, Computing in Science and Engineering, 9, 90
2007
-
[39]
A., Lewis, G
Ibata, R. A., Lewis, G. F., & Martin, N. F. 2016, , 819, 1
2016
-
[40]
Jerabkova, T., Boffin, H. M. J., Beccari, G., et al. 2021, , 647, A137
2021
-
[41]
2021, arXiv e-prints, arXiv:2106.02050
Kamdar , H., Conroy , C., & Ting , Y.-S. 2021, arXiv e-prints, arXiv:2106.02050
2021 arXiv
-
[42]
2019, The Astrophysical Journal, 884, 173
Kamdar, H., Conroy, C., Ting, Y.-S., et al. 2019, The Astrophysical Journal, 884, 173
2019
-
[43]
Kerr , R. M. P., Rizzuto , A. C., Kraus , A. L., & Offner , S. S. R. 2021, , 917, 23
2021
-
[44]
1962, , 67, 471
King , I. 1962, , 67, 471
1962
-
[45]
& Covey , K
Kounkel , M. & Covey , K. 2019, , 158, 122
2019
-
[46]
2001, , 322, 231
Kroupa, P. 2001, , 322, 231
2001
-
[47]
2022, Mon
Kroupa, P., Jerabkova, T., Thies, I., et al. 2022, Mon. Not. R. Astron. Soc., 517, 3613
2022
-
[48]
Kruijssen, J. M. D., Pelupessy, F. I., Lamers, H. J. G. L. M., Portegies Zwart, S. F., & Icke, V. 2011, , 414, 1339
2011
-
[49]
R., McKee, C
Krumholz, M. R., McKee, C. F., & Bland-Hawthorn, J. 2019, , 57, 227
2019
-
[50]
1960, Robust tests for equality of variances
Levene, H. 1960, Robust tests for equality of variances
1960
-
[51]
A., Hern \'a ndez , J., et al
Lindegren , L., Klioner , S. A., Hern \'a ndez , J., et al. 2021, , 649, A2
2021
-
[52]
A., & Martin, N
Malhan, K., Ibata, R. A., & Martin, N. F. 2018, , 481, 3442
2018
-
[53]
Mamajek, E. E. 2006, The Astronomical Journal, 132, 2198
2006
-
[54]
2017, The Astrophysical Journal, 835, 77
Marigo, P., Girardi, L., Bressan, A., et al. 2017, The Astrophysical Journal, 835, 77
2017
-
[55]
2023, Mon
Mateu, C. 2023, Mon. Not. R. Astron. Soc
2023
-
[56]
& Alves , J
Meingast , S. & Alves , J. 2019, , 621, L3
2019
-
[57]
2019, , 622, L13
Meingast , S., Alves , J., & F \"u rnkranz , V. 2019, , 622, L13
2019
-
[58]
2021, , 645, A84
Meingast , S., Alves , J., & Rottensteiner , A. 2021, , 645, A84
2021
-
[59]
Miret-Roig , N., Galli , P. A. B., Brandner , W., et al. 2020, , 642, A179
2020
-
[60]
Moranta, L., Gagn \'e , J., Couture, D., & Faherty, J. K. 2022, , 939, 94
2022
-
[61]
R., Mann, A
Newton, E. R., Mann, A. W., Kraus, A. L., et al. 2021, AJS, 161, 65
2021
-
[62]
2000, , 143, 23
Ochsenbein , F., Bauer , P., & Marcout , J. 2000, , 143, 23
2000
-
[63]
K., Rockosi, C
Odenkirchen, M., Grebel, E. K., Rockosi, C. M., et al. 2001, , 548, L165
2001
-
[64]
, Ade, P
Planck Collaboration , Abergel, A. , Ade, P. A. R. , et al. 2014, , 571, A11
2014
-
[65]
2015, Collaborative data science, Montreal, QC
Plotly Technologies Inc. 2015, Collaborative data science, Montreal, QC
2015
-
[66]
F., McMillan, S
Portegies Zwart, S. F., McMillan, S. L., & Gieles, M. 2010, Annual Review of Astronomy and Astrophysics, 48, 431
2010
-
[67]
Price-Whelan, A. M. & Bonaca, A. 2018, , 863, L20
2018
-
[68]
2023, , 265, 12
Qin, S., Zhong, J., Tang, T., & Chen, L. 2023, , 265, 12
2023
-
[69]
E., Alves, J., et al
Ratzenb \"o ck, S., Gro schedl, J. E., Alves, J., et al. 2023b, , 678, A71
-
[70]
o ck, S., Gro schedl, J. E., M \
Ratzenb \"o ck, S., Gro schedl, J. E., M \"o ller, T., et al. 2023a, , 677, A59
-
[71]
o ck , S., Meingast , S., Alves , J., M \
Ratzenb \"o ck , S., Meingast , S., Alves , J., M \"o ller , T., & Bomze , I. 2020, , 639, A64
2020
-
[72]
o ck, S., Oberm\
Ratzenb\" o ck, S., Oberm\" u ller, V., M\" o ller, T., Alves, J. a., & Bomze, I. M. 2023, IEEE Transactions on Visualization and Computer Graphics, 29, 3855
2023
-
[73]
W., et al
Riello , M., De Angeli , F., Evans , D. W., et al. 2021, , 649, A3
2021
-
[74]
2019, , 621, L2
R \"o ser , S., Schilbach , E., & Goldman , B. 2019, , 621, L2
2019
-
[75]
Schmitt , J. H. M. M., Czesla , S., Freund , S., Robrade , J., & Schneider , P. C. 2022, , 661, A40
2022
-
[76]
1999, in Proceedings of the 12th International Conference on Neural Information Processing Systems, NIPS'99 (Cambridge, MA, USA: MIT Press), 582–588
Sch\" o lkopf, B., Williamson, R., Smola, A., Shawe-Taylor, J., & Platt, J. 1999, in Proceedings of the 12th International Conference on Neural Information Processing Systems, NIPS'99 (Cambridge, MA, USA: MIT Press), 582–588
1999
-
[77]
2010, , 403, 1829
Sch \"o nrich , R., Binney , J., & Dehnen , W. 2010, , 403, 1829
2010
-
[78]
Scott, D. W. 1979, Biometrika, 66, 605
1979
-
[79]
2022, , 659, A59
Tarricq, Y., Soubiran, C., Casamiquela, L., et al. 2022, , 659, A59
2022
-
[80]
Taylor , M. B. 2005, in Astronomical Society of the Pacific Conference Series, Vol. 347, Astronomical Data Analysis Software and Systems XIV, ed. P. Shopbell , M. Britton , & R. Ebert , 29
2005
-
[81]
2020, Astrophys
Tian, H.-J. 2020, Astrophys. J., 904, 196
2020
-
[82]
C., & Varoquaux , G
van der Walt , S., Colbert , S. C., & Varoquaux , G. 2011, Computing in Science and Engineering, 13, 22
2011
-
[83]
2000, , 143, 9
Wenger , M., Ochsenbein , F., Egret , D., et al. 2000, , 143, 9
2000
-
[84]
Wilson, D. J. 2019, Proceedings of the National Academy of Sciences, 116, 1195
2019
-
[85]
A., Alves, J., et al
Zucker, C., Goodman, A. A., Alves, J., et al. 2022 a , Nature, 601, 334
2022
-
[86]
Zucker, C., Peek, J. E. G., & Loebman, S. 2022 b , , 936, 160
2022
-
[87]
Zuckerman, B., Song, I., & Bessell, M. S. 2004, , 613, L65
2004
-
[88]
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-
[89]
write newline
" write newline "" before.all 'output.state := FUNCTION n.dashify 't := "" t empty not t #1 #1 substring "-" = t #1 #2 substring "--" = not "--" * t #2 global.max substring 't := t #1 #1 substring "-" = "-" * t #2 global.max substring 't := while if t #1 #1 substring * t #2 gl...
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[90]
@esa (Ref
\@ifclassloaded agu2001 natbib The agu2001 class already includes natbib coding, so you should not add it explicitly Type <Return> for now, but then later remove the command natbib from the document \@ifclassloaded aguplus natbib The aguplus class already includes natbib codin...
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[91]
@stdbsttrue NAT@ctr \@lbibitem[ NAT@ctr ] \@lbibitem[#1]#2 \@extra@b@citeb \@ifundefined br@#2\@extra@b@citeb \@namedef br@#2 \@nameuse br@#2\@extra@b@citeb \@ifundefined b@#2\@extra@b@citeb @num @parse #2 [ @natanchorstart #2\@extra@b@citeb \@biblabel @num @natanchorend] @ifc...
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[92]
<S O S s cR8 s kT3 &''(
@open @close @open @close and [1] URL: #1 \@ifundefined chapter * \@mkboth \@ifundefined NAT@sectionbib * \@mkboth * \@mkboth\@gobbletwo \@ifclassloaded amsart * \@ifclassloaded amsbook * \@ifundefined bib@heading @heading NAT@ctr thebibliography [1] @ \@biblabel NAT@ctr \@bib...
1996 arXiv
Reviewed August 4, 2026 · model on record in the stance chip above.
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