REVIEW 2 major objections 3 minor 150 references
Precise Asteroseismic Ages for the Helmi Streams
T0 review · 2 major / 3 minor · reviewed 2026-08-06 · deepseek-v4-flash
Pith's one-line read This paper reports precise asteroseismic ages for two Helmi stream red giants, 11.16 and 12.52 billion years, and shows that global asteroseismic parameters underestimate ages of metal-poor giants.
desk verdict One solid age (HD 128279), one conditional age (HD 175305), and a useful confirmation of scaling-relation biases—worth peer review despite the unresolved evolutionary-state question. 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 load-bearing tool is detailed asteroseismic modeling of individual oscillation mode frequencies, especially the mixed $\ell=1$ modes that couple pressure modes in the outer envelope to gravity modes in the core and therefore carry age information. The authors generate stellar evolutionary tracks, compute mode frequencies, apply a two-term surface correction, and use a differential-evolution optimizer to minimize a combined spectroscopic and seismic $\chi^2$. The gravity-mode period spacing $\Delta\Pi_1$ is used as a consistency check on evolutionary state. This machinery converts faint oscillation peaks in TESS power spectra into masses, radii, and ages that disagree sharply with global-scaling-relation results.
What would settle it
Observe HD 175305 with a longer TESS baseline and measure its gravity-mode period spacing $\Delta\Pi_1$: a value near 275 s would show it is core-helium burning and invalidate the 11.16 Gyr age, while a value near 68 s would confirm the red-giant-branch interpretation. A second decisive test is an independent stellar radius from interferometry consistent with the detailed model radius (~7.4 $R_\odot$) rather than the larger global-scaling radius.
Extended reading notes
Core claim
The paper's central claim is that two metal-poor red giants in the Helmi streams can be precisely dated by modeling their individual radial, dipole, and quadrupole oscillation frequencies along with spectroscopic temperatures, luminosities, and metallicities. The best-fit models give $\tau = 11.16 \pm 0.91$ Gyr for HD 175305 and $\tau = 12.52 \pm 1.05$ Gyr for HD 128279, with the older star more metal-poor and more $\alpha$-enhanced. The authors argue these ages are consistent with the stream's known star-formation history and chemical-abundance spread, and that the older age bounds when the progenitor first formed stars to at least ~12 Gyr ago. They further claim that grid-based ages using only global asteroseismic parameters are severely underestimated (6.4 Gyr versus 11.2 Gyr for HD 175305, and 4.5 Gyr versus 12.5 Gyr for HD 128279), so individual mode frequencies are necessary for age-dating metal-poor giants.
Load-bearing premise
HD 175305 is a first-ascent red giant burning hydrogen in a shell; if it is actually a core-helium-burning clump star, the reported 11.16 Gyr age collapses because such a star would be much younger.
Editorial extensions
If this is right
- The Helmi streams' progenitor must have begun forming stars at least ~12 Gyr ago, predating its merger with the Milky Way 5–8 Gyr ago.
- Ages of metal-poor, $\alpha$-enhanced red giants derived from global asteroseismic scaling relations are systematically too young, so future halo archaeology needs individual-mode modeling for such stars.
- The older, more metal-poor star being more $\alpha$-enhanced supports a picture where the stream's chemical evolution ran from an $\alpha$-rich, low-metallicity population to a less $\alpha$-rich, more metal-rich one.
- The ~50 bright Helmi stream giants visible to TESS become plausible targets for turning the stream's star-formation history into a dated sequence.
- Precise asteroseismic ages for r-process-enhanced stream members like HD 175305 could calibrate radioactive cosmochronometry ages.
Reading between the lines
- If HD 175305 is actually a secondary-clump helium-burning star, its reported 11.16 Gyr age would be too young, and the stream-age lower bound would rest on HD 128279 alone; longer TESS observations of its period spacing could settle this.
- The $f_{\nu_{\rm max}}$ values near 1.05–1.11 imply the standard $\nu_{\rm max}$ scaling relation overestimates surface gravity for these stars; extending individual-mode fits to a larger metal-poor sample could turn this offset into a metallicity-dependent correction.
- The age-metallicity trend across the two stars lines up with the 'inverted knee' in [Mg/Fe] versus [Fe/H] seen spectroscopically, so dating more stream members could test whether that knee is a time sequence rather than a spatial abundance pattern.
- A testable extension is to model the ~50 bright Helmi giant candidates with TESS sectors to map the stream's age-[Fe/H] plane and compare with dwarf-galaxy chemical-evolution models.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper reports detailed asteroseismic modeling of two bright red giants in the Helmi streams, HD 175305 and HD 128279, using TESS photometry. Individual oscillation mode frequencies are extracted with TACO and fitted with MESA/GYRE evolutionary models, with effective temperature, luminosity, and chemical abundances as external constraints. The best-fit ages are τ = 11.16 ± 0.91 Gyr for HD 175305 and τ = 12.52 ± 1.05 Gyr for HD 128279. The authors argue these ages match prior isochrone-based star-formation histories of the Helmi streams, and they further show that global asteroseismic scaling relations would give younger ages and larger masses for these metal-poor, α-enhanced stars. The central conclusions are that the Helmi-stream progenitor formed stars at least ~12 Gyr ago and that global asteroseismic parameters systematically bias ages for this stellar population.
Significance. If the ages are correct, this is the first detailed asteroseismic dating of individual Helmi-stream members, providing a quantitative anchor for the progenitor's star-formation history and strengthening the case that the stream formed more than 12 Gyr ago. The paper also makes a useful contribution to the growing body of evidence that global asteroseismic scaling relations overestimate masses and underestimate ages for metal-poor giants; that claim is supported independently by HD 128279 and by previous work. The manuscript is unusually transparent: mode-frequency tables are provided, the optimization and cost-function steps are detailed in the appendix, and the MESA/GYRE inlists and tracks are archived on Zenodo. The period-spacing analysis is a valuable cross-check even where, as for HD 175305, it does not uniquely determine the evolutionary state. These strengths make the paper well positioned for the field, but the conditional nature of the HD 175305 age needs to be addressed before the two-star conclusions can be taken at face value.
major comments (2)
- [§2.2 and §5.4] The age of HD 175305 is conditional on the assumption that it is a first-ascent red giant branch star, and the paper's own period-spacing analysis shows that this assumption is not secure. Section 5.4 reports that the PBJam/reggae posterior has a global maximum at ΔΠ1 ≈ 275 s, which is the signature of core-helium burning, with only a local maximum near 68 s consistent with first-ascent RGB; the authors explicitly state that they cannot definitively rule out a secondary clump. Because the asteroseismic optimization in Section 3 and Appendix A searches only first-ascent RGB evolutionary tracks, the reported τ = 11.16 ± 0.91 Gyr is the age of the best RGB model conditional on an unverified evolutionary state. If HD 175305 is a secondary-clump helium-burning star, it would be much younger unless its structure results from a merger or mass-transfer event. This affects the abstract's two-star age set and the statement that the results 'reinforce the hypothesis' of a ≥12 Gyr progenitor, although the ≥12 Gyr conclusion survives through HD 128279 alone. I recommend that the authors either quantify the secondary-clump interpretation (for example, by modeling HD 175305 with core-helium-burning tracks and reporting the resulting age and posterior weight) or explicitly restrict the headline conclusion to HD 128279 and present the HD 175305 age as conditional on the RGB assumption.
- [§5.3, Figure 8] The best-fit model radius for HD 175305 is 7.40 ± 0.07 R⊙, which is more than 5σ smaller than the CHARA interferometric radius of 8.2 ± 0.11 R⊙ reported in §5.3. The paper attributes this to the surface-term correction removing sensitivity to the near-surface layers, but this discrepancy raises a concrete question about the robustness of the detailed-model inferences, including the age. Since the interferometric radius also implies a lower effective temperature (Teff = 4850 ± 118 K) than the adopted spectroscopic value, the authors should test whether including the interferometric radius or the interferometric Teff as an additional constraint changes the best-fit mass and age of HD 175305. At minimum, the paper should state explicitly how the reported age uncertainties incorporate this external radius disagreement.
minor comments (3)
- [§2.2] The text says 'we assume that both HD 17305 and HD 128279 are first ascent red giant branch stars'; 'HD 17305' should be 'HD 175305'.
- [§5.4, Eq. (6)] The integral in Eq. (6) is typeset as 'Z core N r dr' in the draft; this should be ∫(N/r) dr over the core to match the standard definition of the buoyancy integral.
- [§5.3] The fνmax values (1.05 for HD 175305 and 1.11 for HD 128279) are quoted without uncertainties; propagating the uncertainties on νmax, mass, radius, and Teff would make the comparison with previous work more quantitative.
Circularity Check
Partial circularity: the old age of HD 175305 is conditioned on a first-ascent RGB assumption motivated by the old-stream prior it is then used to reinforce; the independent HD 128279-based lower bound is not circular.
-
self definitional
[Section 2.2 and Section 5.4 (evolutionary-state assumption and period-spacing caveat)]
"This assumption is made based on the two stars’ kinematic membership in the relatively old Helmi streams structure and their low metallicities. ... we cannot definitively rule out HD 175305 being a core Helium burning star based solely on the asteroseismic data. If HD 175305 was a secondary clump helium burning star, it would be much younger."
The modeling pipeline optimizes only first-ascent RGB tracks, and the RGB choice is justified by the prior that the stars belong to the old Helmi streams. For HD 175305, the paper's own PBJam/reggae analysis finds a global period-spacing maximum near 275 s, a core-He burning signature, and only a local maximum near 68 s, consistent with RGB, so the 11.16 Gyr best-fit age is an output of the assumed evolutionary state rather than an independent measurement. Using that conditional age to reinforce the hypothesis that the Helmi streams' progenitor must have existed at least 12 Gyr ago therefore leans on the prior it claims to confirm.
full rationale
The core fitting procedure is not circular: MESA/GYRE models are optimized against individual mode frequencies, Teff, luminosity, and [Fe/H], with the age emerging from the best-fit model rather than being a fitted input. The global-versus-detailed asteroseismology comparison is an independent check using a custom grid and Asfgrid. Self-citations (Lindsay et al. 2024 cost function, Ong & Basu 2020 mode isolation, Hon et al. 2024 modelflows) are methodological and non-load-bearing. The one circular step is the use of the old-stream membership to justify the first-ascent RGB assumption for HD 175305, which then produces the old age used to reinforce the stream's old age; the paper is transparent about this limitation. Because HD 128279 independently anchors the old-age conclusion, the central claim retains independent content, and no self-citation chain or fitted-parameter renaming is present. Score 3 reflects this partial, localized circularity rather than wholesale reduction of the derivation to its inputs.
Assumptions & free parameters
free parameters (5)
- Initial mass M0 =
0.83 M_sun (HD 175305), 0.77 M_sun (HD 128279)
- Initial helium abundance Y0 =
0.25 (HD 175305), 0.26 (HD 128279)
- Initial metal-to-hydrogen ratio f = Z0/X0 =
Model [Fe/H] = -1.46 (HD 175305), -2.17 (HD 128279)
- Convective mixing length alpha_mlt =
1.80 (HD 175305), 1.97 (HD 128279)
- Surface-term correction coefficients (Ball & Gizon 2014) =
a, b (not tabulated, fitted to the ℓ=0 modes)
assumptions (7)
- domain assumption MESA stellar models with the chosen input physics (element diffusion, exponential overshoot, gray atmosphere) adequately represent metal-poor red giants.
- domain assumption The two-term Ball & Gizon (2014) surface correction is valid for low-metallicity giants.
- domain assumption The spectroscopic parameters from Ishigaki et al. (2012) are accurate for both stars.
- ad hoc to paper HD 175305 is a first-ascent red giant branch star.
- domain assumption The luminosities derived from SED fitting (SEDEX) are reliable.
- domain assumption The two stars are single and their oscillation spectra are not significantly affected by binarity.
- domain assumption The kinematic membership of HD 175305 and HD 128279 in the Helmi streams is correct.
Cite this review
Pith. "Pith review of Precise Asteroseismic Ages for the Helmi Streams." pith.science (2026). https://pith.science/paper/EI6TDFE4
@misc{pith2026250701091,
author = {Pith},
title = {Pith review of: Precise Asteroseismic Ages for the Helmi Streams},
year = {2026},
howpublished = {\url{https://pith.science/paper/EI6TDFE4}},
note = {Machine review of arXiv:2507.01091}
}
abstract
The Helmi streams are remnants of a dwarf galaxy that was accreted by the Milky Way and whose stars now form a distinct kinematic and chemical substructure in the Galactic halo. Precisely age-dating these typically faint stars of extragalactic origin has been notoriously difficult due to the limitations of using only spectroscopic data, interferometry, or coarse asteroseismic measurements. Using observations from NASA's Transiting Exoplanet Survey Satellite, we report the detailed asteroseismic modeling of two of the brightest red giants within the Helmi streams, HD 175305 and HD 128279. By modeling the individual oscillation mode frequencies and the spectroscopic properties of both stars, we determine their fundamental properties including mass, radius, and age ($\tau$). We report $\tau = 11.16 \pm 0.91$ Gyr for HD 175305 and $\tau = 12.52 \pm 1.05$ Gyr for HD 128279, consistent with previously inferred star-formation histories for the Helmi streams and the differential chemical abundances between the two stars. With precise ages for individual stream members, our results reinforce the hypothesis that the Helmi streams' progenitor must have existed at least 12 Gyr ago. Our results also highlight that the ages of metal-poor, $\alpha$-enhanced red giants can be severely underestimated when inferred using global asteroseismic parameters instead of individual mode frequencies.
Figures
Figures from the paper (8 more)
Reference graph
Works this paper leans on
-
[1]
, " * write output.state after.block = add.period write newline
ENTRY address adsurl archivePrefix author booktitle chapter doi edition editor eprint howpublished institution journal key month number organization pages publisher school series title misctitle type volume year version url label extra.label sort.label short.list INTEGERS output.state before.all mid.sentence after.sentence after.block FUNCTION init.state....
-
[2]
write newline
" write newline "" before.all 'output.state := FUNCTION format.url url empty "" new.block "" url * "" * if FUNCTION format.eprint eprint empty "" archivePrefix empty "" archivePrefix "arXiv" = new.block " " eprint * " " * new.block " " eprint * " " * if if if FUNCTION format.doi doi empty "" " " doi * " " * if FUNCTION format.pid doi empty eprint empty ur...
-
[3]
4 g+5&eqϴpϑ e r̷2ȷ2^dpWs R Gsu02 pm ͖' <r @qo,8 w) ԅ恐 !tiM3-#W6in pΣ=/96m M O59'iY tpi!O ;iT<B|U y W (B\ 1c M|MK`i<>R N/?<| <LK E_
thebibliography [1] 20pt to REFERENCES 6pt =0pt -12pt 10pt plus 3pt =0pt =0pt =1pt plus 1pt =0pt =0pt -12pt =13pt plus 1pt =20pt =13pt plus 1pt \@M =10000 =-1.0em =0pt =0pt 0pt =0pt =1.0em @enumiv\@empty 10000 10000 `\.\@m \@noitemerr \@latex@warning Empty `thebibliography' environment \@ifnextchar \@reference \@latexerr Missing key on reference command E...
2021
-
[4]
Abdurro'uf , Accetta , K., Aerts , C., et al. 2022, title The Seventeenth Data Release of the Sloan Digital Sky Surveys: Complete Release of MaNGA, MaStar, and APOGEE-2 Data , , 259, 35, 10.3847/1538-4365/ac4414
-
[5]
1977, title Avoided Crossing of Modes of Non-radial Stellar Oscillations , , 58, 41
Aizenman , M., Smeyers , P., & Weigert , A. 1977, title Avoided Crossing of Modes of Non-radial Stellar Oscillations , , 58, 41
1977
-
[6]
1991, title Effects of envelope overshoot on stellar models
Alongi , M., Bertelli , G., Bressan , A., & Chiosi , C. 1991, title Effects of envelope overshoot on stellar models. , , 244, 95
1991
-
[7]
Ash , A. L., Pinsonneault , M. H., Vrard , M., & Zinn , J. C. 2025, title Testing the Breakdown of the Asteroseismic Scaling Relations in Luminous Red Giants , , 979, 135, 10.3847/1538-4357/ad9b18
-
[8]
Astropy Collaboration , Robitaille , T. P., Tollerud , E. J., et al. 2013, title Astropy: A community Python package for astronomy , , 558, A33, 10.1051/0004-6361/201322068
Show all 150 references
-
[9]
M., Sip o cz , B
Astropy Collaboration , Price-Whelan , A. M., Sip o cz , B. M., et al. 2018, title The Astropy Project: Building an Open-science Project and Status of the v2.0 Core Package , , 156, 123, 10.3847/1538-3881/aabc4f
2018 doi
-
[10]
M., Lim , P
Astropy Collaboration , Price-Whelan , A. M., Lim , P. L., et al. 2022, title The Astropy Project: Sustaining and Growing a Community-oriented Open-source Project and the Latest Major Release (v5.0) of the Core Package , , 935, 167, 10.3847/1538-4357/ac7c74
2022 doi
-
[11]
H., & Gizon , L
Ball , W. H., & Gizon , L. 2014, title A new correction of stellar oscillation frequencies for near-surface effects , , 568, A123, 10.1051/0004-6361/201424325
2014 doi
-
[12]
Basu , S., & Chaplin , W. J. 2017, Asteroseismic Data Analysis: Foundations and Techniques
2017
-
[13]
2018, title The Robustness of Asteroseismic Estimates of Global Stellar Parameters to Surface Term Corrections , , 869, 8, 10.3847/1538-4357/aae922
Basu , S., & Kinnane , A. 2018, title The Robustness of Asteroseismic Estimates of Global Stellar Parameters to Surface Term Corrections , , 869, 8, 10.3847/1538-4357/aae922
2018 doi
-
[14]
R., Mosser , B., Huber , D., et al
Bedding , T. R., Mosser , B., Huber , D., et al. 2011, title Gravity modes as a way to distinguish between hydrogen- and helium-burning red giant stars , , 471, 608, 10.1038/nature09935
2011 doi
-
[15]
C., Chiba , M., Yoshii , Y., et al
Beers , T. C., Chiba , M., Yoshii , Y., et al. 2000, title Kinematics of Metal-poor Stars in the Galaxy. II. Proper Motions for a Large Nonkinematically Selected Sample , , 119, 2866, 10.1086/301410
2000 doi
- [16]
-
[17]
Bonaca , A., & Price-Whelan , A. M. 2025, title Stellar streams in the Gaia era , , 100, 101713, 10.1016/j.newar.2024.101713
2025
-
[18]
C., Aguirre B rsen-Koch , V., Helmi , A., et al
Borre , C. C., Aguirre B rsen-Koch , V., Helmi , A., et al. 2022, title Age determination of galaxy merger remnant stars using asteroseismology , , 514, 2527, 10.1093/mnras/stac1498
2022 doi
-
[19]
J., Koch , D., Basri , G., et al
Borucki , W. J., Koch , D., Basri , G., et al. 2010, title Kepler Planet-Detection Mission: Introduction and First Results , Science, 327, 977, 10.1126/science.1185402
2010 doi
-
[20]
2012, title PARSEC: stellar tracks and isochrones with the PAdova and TRieste Stellar Evolution Code , , 427, 127, 10.1111/j.1365-2966.2012.21948.x
Bressan , A., Marigo , P., Girardi , L., et al. 2012, title PARSEC: stellar tracks and isochrones with the PAdova and TRieste Stellar Evolution Code , , 427, 127, 10.1111/j.1365-2966.2012.21948.x
2012
-
[21]
Broersen , P. 2009, title Practical Aspects of the Spectral Analysis of Irregularly Sampled Data With Time-Series Models , IEEE Transactions on Instrumentation Measurement, 58, 1380, 10.1109/TIM.2008.2009201
2009
-
[22]
M., Gilliland , R
Brown , T. M., Gilliland , R. L., Noyes , R. W., & Ramsey , L. W. 1991, title Detection of Possible p-Mode Oscillations on Procyon , , 368, 599, 10.1086/169725
1991 doi
-
[23]
Butcher , H. R. 1987, title Thorium in G-dwarf stars as a chronometer for the Galaxy , , 328, 127, 10.1038/328127a0
1987 doi
-
[24]
C., et al
Cayrel , R., Hill , V., Beers , T. C., et al. 2001, title Measurement of stellar age from uranium decay , , 409, 691, 10.1038/35055507
2001 doi
-
[25]
J., Serenelli , A
Chaplin , W. J., Serenelli , A. M., Miglio , A., et al. 2020, title Age dating of an early Milky Way merger via asteroseismology of the naked-eye star Indi , Nature Astronomy, 4, 382, 10.1038/s41550-019-0975-9
2020 doi
-
[26]
S., et al
Chiappini , C., Anders , F., Rodrigues , T. S., et al. 2015, title Young [ /Fe]-enhanced stars discovered by CoRoT and APOGEE: What is their origin? , , 576, L12, 10.1051/0004-6361/201525865
2015 doi
-
[27]
Chiba , M., & Beers , T. C. 2000, title Kinematics of Metal-poor Stars in the Galaxy. III. Formation of the Stellar Halo and Thick Disk as Revealed from a Large Sample of Nonkinematically Selected Stars , , 119, 2843, 10.1086/301409
2000 doi
-
[28]
P., & Giuli , R
Cox , J. P., & Giuli , R. T. 1968, Principles of stellar structure (Cambridge Scientific Publishers)
1968
-
[29]
S., Roxburgh , I
Cunha , M. S., Roxburgh , I. W., Aguirre B rsen-Koch , V., et al. 2021, title PLATO hare-and-hounds exercise: asteroseismic model fitting of main-sequence solar-like pulsators , , 508, 5864, 10.1093/mnras/stab2886
2021 doi
-
[30]
2020, title Ages and kinematics of chemically selected, accreted Milky Way halo stars , , 493, 5195, 10.1093/mnras/stz3537
Das , P., Hawkins , K., & Jofr \'e , P. 2020, title Ages and kinematics of chemically selected, accreted Milky Way halo stars , , 493, 5195, 10.1093/mnras/stz3537
2020 doi
-
[31]
R., Handberg , R., Miglio , A., et al
Davies , G. R., Handberg , R., Miglio , A., et al. 2014, title Why should we correct reported pulsation frequencies for stellar line-of-sight Doppler velocity shifts? , , 445, L94, 10.1093/mnrasl/slu143
2014 doi
-
[32]
M., Helmi , A., et al
Dodd , E., Callingham , T. M., Helmi , A., et al. 2023, title Gaia DR3 view of dynamical substructure in the stellar halo near the Sun , , 670, L2, 10.1051/0004-6361/202244546
2023 doi
-
[33]
R., Elsworth , Y
Epstein , C. R., Elsworth , Y. P., Johnson , J. A., et al. 2014, title Testing the Asteroseismic Mass Scale Using Metal-poor Stars Characterized with APOGEE and Kepler , , 785, L28, 10.1088/2041-8205/785/2/L28
2014 doi
-
[34]
Frebel , A. 2018, title From Nuclei to the Cosmos: Tracing Heavy-Element Production with the Oldest Stars , Annual Review of Nuclear and Particle Science, 68, 237, 10.1146/annurev-nucl-101917-021141
2018 doi
-
[35]
2009, in IAU Symposium, Vol
Frebel , A., & Kratz , K.-L. 2009, in IAU Symposium, Vol. 258, The Ages of Stars, ed. E. E. Mamajek , D. R. Soderblom , & R. F. G. Wyse , 449--456, 10.1017/S1743921309032104
2009 doi
-
[36]
Gaia Collaboration , Prusti , T., de Bruijne , J. H. J., et al. 2016, title The Gaia mission , , 595, A1, 10.1051/0004-6361/201629272
2016 doi
-
[37]
Gaia Collaboration , Brown , A. G. A., Vallenari , A., et al. 2018, title Gaia Data Release 2. Summary of the contents and survey properties , , 616, A1, 10.1051/0004-6361/201833051
2018 doi
-
[38]
Gaia Collaboration , Brown , A. G. A., Vallenari , A., et al. 2021, title Gaia Early Data Release 3. Summary of the contents and survey properties , , 649, A1, 10.1051/0004-6361/202039657
2021 doi
-
[39]
A., & Ballot , J
Garc \' a , R. A., & Ballot , J. 2019, title Asteroseismology of solar-type stars , Living Reviews in Solar Physics, 16, 4, 10.1007/s41116-019-0020-1
2019 doi
-
[40]
A., Mathur , S., Pires , S., et al
Garc \' a , R. A., Mathur , S., Pires , S., et al. 2014, title Impact on asteroseismic analyses of regular gaps in Kepler data , , 568, A10, 10.1051/0004-6361/201323326
2014 doi
-
[41]
A., Palakkatharappil , D
Garc \' a , R. A., Palakkatharappil , D. B., Bugnet , L., et al. 2024, in 8th TESS/15th Kepler Asteroseismic Science Consortium Workshop, 123, 10.5281/zenodo.13647412
2024 doi
-
[42]
2001, title Population effects on the red giant clump absolute magnitude, and distance determinations to nearby galaxies , , 323, 109, 10.1046/j.1365-8711.2001.04084.x
Girardi , L., & Salaris , M. 2001, title Population effects on the red giant clump absolute magnitude, and distance determinations to nearby galaxies , , 323, 109, 10.1046/j.1365-8711.2001.04084.x
2001
-
[43]
Goldreich , P., & Keeley , D. A. 1977 a , title Solar seismology. I. The stability of the solar p-modes. , , 211, 934, 10.1086/155005
1977 doi
-
[44]
Goldreich , P., & Keeley , D. A. 1977 b , title Solar seismology. II. The stochastic excitation of the solar p-modes by turbulent convection. , , 212, 243, 10.1086/155043
1977 doi
-
[45]
A., et al
Gonz \'a lez-Cuesta , L., Mathur , S., Garc \' a , R. A., et al. 2023, title Multi-campaign asteroseismic analysis of eight solar-like pulsating stars observed by the K2 mission , , 674, A106, 10.1051/0004-6361/202244577
2023 doi
-
[46]
I., & Bonifacio , P
Gonz \'a lez Hern \'a ndez , J. I., & Bonifacio , P. 2009, title A new implementation of the infrared flux method using the 2MASS catalogue , , 497, 497, 10.1051/0004-6361/200810904
2009 doi
-
[47]
Grec , G., Fossat , E., & Pomerantz , M. A. 1983, title Full-Disk Observations of Solar Oscillations from the Geographic South-Pole - Latest Results , , 82, 55, 10.1007/BF00145545
1983 doi
-
[48]
Grevesse , N., & Sauval , A. J. 1998, title Standard Solar Composition , , 85, 161, 10.1023/A:1005161325181
1998 doi
-
[49]
J., & Carlin , J
Grillmair , C. J., & Carlin , J. L. 2016, in Astrophysics and Space Science Library, Vol. 420, Tidal Streams in the Local Group and Beyond, ed. H. J. Newberg & J. L. Carlin , 87, 10.1007/978-3-319-19336-6_4
2016 doi
-
[50]
2024, title K2 results for ``young'' -rich stars in the Galaxy , , 683, A111, 10.1051/0004-6361/202347440
Grisoni , V., Chiappini , C., Miglio , A., et al. 2024, title K2 results for ``young'' -rich stars in the Galaxy , , 683, A111, 10.1051/0004-6361/202347440
2024 doi
-
[51]
K., Zinn , J
Grunblatt , S. K., Zinn , J. C., Price-Whelan , A. M., et al. 2021, title Age-dating Red Giant Stars Associated with Galactic Disk and Halo Substructures , , 916, 88, 10.3847/1538-4357/ac0532
2021 doi
-
[52]
2021, title R-process-rich Stellar Streams in the Milky Way , , 912, 52, 10.3847/1538-4357/abea1a
Gull , M., Frebel , A., Hinojosa , K., et al. 2021, title R-process-rich Stellar Streams in the Milky Way , , 912, 52, 10.3847/1538-4357/abea1a
2021 doi
-
[53]
2020, title Streams, Substructures, and the Early History of the Milky Way , , 58, 205, 10.1146/annurev-astro-032620-021917
Helmi , A. 2020, title Streams, Substructures, and the Early History of the Milky Way , , 58, 205, 10.1146/annurev-astro-032620-021917
2020 doi
-
[54]
H., et al
Helmi , A., Babusiaux , C., Koppelman , H. H., et al. 2018, title The merger that led to the formation of the Milky Way's inner stellar halo and thick disk , , 563, 85, 10.1038/s41586-018-0625-x
2018 doi
-
[55]
Helmi , A., & de Zeeuw , P. T. 2000, title Mapping the substructure in the Galactic halo with the next generation of astrometric satellites , , 319, 657, 10.1046/j.1365-8711.2000.03895.x
2000
-
[56]
Helmi , A., White , S. D. M., de Zeeuw , P. T., & Zhao , H. 1999, title Debris streams in the solar neighbourhood as relicts from the formation of the Milky Way , , 402, 53, 10.1038/46980
1999 doi
-
[57]
S., Huber , D., Stello , D., & Reyes , C
Hon , M., Kuszlewicz , J. S., Huber , D., Stello , D., & Reyes , C. 2022, title HD-TESS: An Asteroseismic Catalog of Bright Red Giants within TESS Continuous Viewing Zones , , 164, 135, 10.3847/1538-3881/ac8931
2022 doi
-
[58]
2024, title Flow-based Generative Emulation of Grids of Stellar Evolutionary Models , , 973, 154, 10.3847/1538-4357/ad6320
Hon , M., Li , Y., & Ong , J. 2024, title Flow-based Generative Emulation of Grids of Stellar Evolutionary Models , , 973, 154, 10.3847/1538-4357/ad6320
2024 doi
-
[59]
S., et al
Hon , M., Huber , D., Kuszlewicz , J. S., et al. 2021, title A ``Quick Look'' at All-sky Galactic Archeology with TESS: 158,000 Oscillating Red Giants from the MIT Quick-look Pipeline , , 919, 131, 10.3847/1538-4357/ac14b1
2021 doi
-
[60]
P., Mackereth , J
Horta , D., Schiavon , R. P., Mackereth , J. T., et al. 2023, title The chemical characterization of halo substructure in the Milky Way based on APOGEE , , 520, 5671, 10.1093/mnras/stac3179
2023 doi
-
[61]
X., Vanderburg , A., P \'a l , A., et al
Huang , C. X., Vanderburg , A., P \'a l , A., et al. 2020 a , title Photometry of 10 Million Stars from the First Two Years of TESS Full Frame Images: Part I , Research Notes of the American Astronomical Society, 4, 204, 10.3847/2515-5172/abca2e
2020 doi
-
[62]
X., Vanderburg , A., P \'a l , A., et al
Huang , C. X., Vanderburg , A., P \'a l , A., et al. 2020 b , title Photometry of 10 Million Stars from the First Two Years of TESS Full Frame Images: Part II , Research Notes of the American Astronomical Society, 4, 206, 10.3847/2515-5172/abca2d
2020 doi
-
[63]
J., Bedding , T
Huber , D., Ireland , M. J., Bedding , T. R., et al. 2012, title Fundamental Properties of Stars Using Asteroseismology from Kepler and CoRoT and Interferometry from the CHARA Array , , 760, 32, 10.1088/0004-637X/760/1/32
2012 doi
-
[64]
2019, title Stellar Physics and Galactic Archaeology using Asteroseismology in the 2020's , , 51, 488, 10.48550/arXiv.1903.08188
Huber , D., Basu , S., Beck , P., et al. 2019, title Stellar Physics and Galactic Archaeology using Asteroseismology in the 2020's , , 51, 488, 10.48550/arXiv.1903.08188
-
[65]
2023, title Asteroseismology with the Roman Galactic Bulge Time-Domain Survey , arXiv e-prints, arXiv:2307.03237, 10.48550/arXiv.2307.03237
Huber , D., Pinsonneault , M., Beck , P., et al. 2023, title Asteroseismology with the Roman Galactic Bulge Time-Domain Survey , arXiv e-prints, arXiv:2307.03237, 10.48550/arXiv.2307.03237
-
[66]
2024, title Stellar Models are Reliable at Low Metallicity: An Asteroseismic Age for the Ancient Very Metal-poor Star KIC 8144907 , , 975, 19, 10.3847/1538-4357/ad7110
Huber , D., Slumstrup , D., Hon , M., et al. 2024, title Stellar Models are Reliable at Low Metallicity: An Asteroseismic Age for the Ancient Very Metal-poor Star KIC 8144907 , , 975, 19, 10.3847/1538-4357/ad7110
2024 doi
-
[67]
A., Gilmore , G., & Irwin , M
Ibata , R. A., Gilmore , G., & Irwin , M. J. 1994, title A dwarf satellite galaxy in Sagittarius , , 370, 194, 10.1038/370194a0
1994 doi
-
[68]
N., Chiba , M., & Aoki , W
Ishigaki , M. N., Chiba , M., & Aoki , W. 2012, title Chemical Abundances of the Milky Way Thick Disk and Stellar Halo. I. Implications of [ /Fe] for Star Formation Histories in Their Progenitors , , 753, 64, 10.1088/0004-637X/753/1/64
2012 doi
-
[69]
Jenkins , J. M. 2017, title Kepler Data Processing Handbook: Overview of the Science Operations Center , , Kepler Science Document KSCI-19081-002, id. 2, Edited by Jon M. Jenkins
2017
-
[70]
S., Bauer , E
Jermyn , A. S., Bauer , E. B., Schwab , J., et al. 2023, title Modules for Experiments in Stellar Astrophysics (MESA): Time-dependent Convection, Energy Conservation, Automatic Differentiation, and Infrastructure , , 265, 15, 10.3847/1538-4365/acae8d
2023 doi
-
[71]
2023, title Cannibals in the thick disk
Jofr \'e , P., Jorissen , A., Aguilera-G \'o mez , C., et al. 2023, title Cannibals in the thick disk. II. Radial-velocity monitoring of the young -rich stars , , 671, A21, 10.1051/0004-6361/202244524
2023 doi
-
[72]
R., Nordlander , T., et al
Karovicova , I., White , T. R., Nordlander , T., et al. 2020, title Fundamental stellar parameters of benchmark stars from CHARA interferometry. I. Metal-poor stars , , 640, A25, 10.1051/0004-6361/202037590
2020 doi
-
[73]
A., Morrison , H
Kepley , A. A., Morrison , H. L., Helmi , A., et al. 2007, title Halo Star Streams in the Solar Neighborhood , , 134, 1579, 10.1086/521429
2007 doi
-
[74]
J., Miglio , A., et al
Khan , S., Hall , O. J., Miglio , A., et al. 2018, title The Red-giant Branch Bump Revisited: Constraints on Envelope Overshooting in a Wide Range of Masses and Metallicities , , 859, 156, 10.3847/1538-4357/aabf90
2018 doi
-
[75]
Kjeldsen , H., & Bedding , T. R. 1995, title Amplitudes of stellar oscillations: the implications for asteroseismology. , , 293, 87. astro-ph/9403015
1995 arXiv
-
[76]
2018, title One Large Blob and Many Streams Frosting the nearby Stellar Halo in Gaia DR2 , , 860, L11, 10.3847/2041-8213/aac882
Koppelman , H., Helmi , A., & Veljanoski , J. 2018, title One Large Blob and Many Streams Frosting the nearby Stellar Halo in Gaia DR2 , , 860, L11, 10.3847/2041-8213/aac882
2018 doi
-
[77]
H., Helmi , A., Massari , D., Roelenga , S., & Bastian , U
Koppelman , H. H., Helmi , A., Massari , D., Roelenga , S., & Bastian , U. 2019, title Characterization and history of the Helmi streams with Gaia DR2 , , 625, A5, 10.1051/0004-6361/201834769
2019 doi
-
[78]
Kunimoto , M., Tey , E., Fong , W., et al. 2022, title Quick-look Pipeline Light Curves for 5.7 Million Stars Observed Over the Second Year of TESS' First Extended Mission , Research Notes of the American Astronomical Society, 6, 236, 10.3847/2515-5172/aca158
2022 doi
-
[79]
Kunimoto , M., Huang , C., Tey , E., et al. 2021, title Quick-look Pipeline Lightcurves for 9.1 Million Stars Observed over the First Year of the TESS Extended Mission , Research Notes of the American Astronomical Society, 5, 234, 10.3847/2515-5172/ac2ef0
2021 doi
-
[80]
S., Hon , M., & Huber , D
Kuszlewicz , J. S., Hon , M., & Huber , D. 2023, title Mixed-mode Ensemble Asteroseismology of Low-luminosity Kepler Red Giants , , 954, 152, 10.3847/1538-4357/ace598
2023 doi
- [81]
-
[82]
2022, title Asteroseismology of 3642 Kepler Red Giants: Correcting the Scaling Relations Based on Detailed Modeling , , 927, 167, 10.3847/1538-4357/ac4fbf
Li , T., Li , Y., Bi , S., et al. 2022, title Asteroseismology of 3642 Kepler Red Giants: Correcting the Scaling Relations Based on Detailed Modeling , , 927, 167, 10.3847/1538-4357/ac4fbf
2022 doi
-
[83]
R., Huber , D., et al
Li , Y., Bedding , T. R., Huber , D., et al. 2024, title Realistic Uncertainties for Fundamental Properties of Asteroseismic Red Giants and the Interplay between Mixing Length, Metallicity, and numax , , 974, 77, 10.3847/1538-4357/ad6c3e
2024 doi
-
[84]
Li , Y., Huber , D., Ong , J. M. J., et al. 2025, title K-dwarf Radius Inflation and a 10-Gyr Spin-down Clock Unveiled through Asteroseismology of HD -0.5ex 219134 from the Keck Planet Finder , arXiv e-prints, arXiv:2502.00971. 2502.00971
2025 arXiv
-
[85]
Lightkurve Collaboration , Cardoso , J. V. d. M. a., Hedges , C., et al. 2018, title Lightkurve: Kepler and TESS time series analysis in Python , 1812.013
2018
-
[86]
M., Rossi , S., et al
Limberg , G., Santucci , R. M., Rossi , S., et al. 2021, title Abundance Patterns of and Neutron-capture Elements in the Helmi Stream , , 913, L28, 10.3847/2041-8213/ac0056
2021 doi
-
[87]
J., Ong , J
Lindsay , C. J., Ong , J. M. J., & Basu , S. 2022, title Mixed-mode Asteroseismology of Red Giant Stars Through the Luminosity Bump , , 931, 116, 10.3847/1538-4357/ac67ed
2022 doi
-
[88]
J., Ong , J
Lindsay , C. J., Ong , J. M. J., & Basu , S. 2024, title Fossil Signatures of Main-sequence Convective Core Overshoot Estimated through Asteroseismic Analyses , , 965, 171, 10.3847/1538-4357/ad2ae5
2024 doi
-
[89]
S., Ruiz-Lara , T., Koppelman , H
L \"o vdal , S. S., Ruiz-Lara , T., Koppelman , H. H., et al. 2022, title Substructure in the stellar halo near the Sun. I. Data-driven clustering in integrals-of-motion space , , 665, A57, 10.1051/0004-6361/202243060
2022 doi
-
[90]
L., Sayeed , M., et al
Lu , Y., Colman , I. L., Sayeed , M., et al. 2025, title Evidence of Truly Young High- Dwarf Stars , , 169, 168, 10.3847/1538-3881/ada9e0
2025 doi
-
[91]
2025, title Asteroseismology of Metal-Poor Red Giants Observed by TESS , arXiv e-prints, arXiv:2504.18642, 10.48550/arXiv.2504.18642
Marasco , C., Tayar , J., & Nidever , D. 2025, title Asteroseismology of Metal-Poor Red Giants Observed by TESS , arXiv e-prints, arXiv:2504.18642, 10.48550/arXiv.2504.18642
-
[92]
P., Andrievsky , S
Martin , R. P., Andrievsky , S. M., Kovtyukh , V. V., et al. 2015, title Oxygen, -element and iron abundance distributions in the inner part of the Galactic thin disc , , 449, 4071, 10.1093/mnras/stv590
2015 doi
-
[93]
H., et al
Matsuno , T., Dodd , E., Koppelman , H. H., et al. 2022, title High-precision chemical abundances of Galactic building blocks. II. Revisiting the chemical distinctness of the Helmi streams , , 665, A46, 10.1051/0004-6361/202243609
2022 doi
-
[94]
2018, title Umbrella sampling: a powerful method to sample tails of distributions , , 480, 4069, 10.1093/mnras/sty2140
Matthews , C., Weare , J., Kravtsov , A., & Jennings , E. 2018, title Umbrella sampling: a powerful method to sample tails of distributions , , 480, 4069, 10.1093/mnras/sty2140
2018 doi
-
[95]
Mier , P. R. 2017, title pablormier/yabox: v1.0.3 , , v1.0.3 Zenodo, 10.5281/zenodo.848679
2017 doi
-
[96]
2013, title Galactic archaeology: mapping and dating stellar populations with asteroseismology of red-giant stars , , 429, 423, 10.1093/mnras/sts345
Miglio , A., Chiappini , C., Morel , T., et al. 2013, title Galactic archaeology: mapping and dating stellar populations with asteroseismology of red-giant stars , , 429, 423, 10.1093/mnras/sts345
2013 doi
-
[97]
T., et al
Miglio , A., Chiappini , C., Mackereth , J. T., et al. 2021, title Age dissection of the Milky Way discs: Red giants in the Kepler field , , 645, A85, 10.1051/0004-6361/202038307
2021 doi
-
[98]
Mosser , B., Vrard , M., Belkacem , K., Deheuvels , S., & Goupil , M. J. 2015, title Period spacings in red giants. I. Disentangling rotation and revealing core structure discontinuities , , 584, A50, 10.1051/0004-6361/201527075
2015 doi
-
[99]
P., Conroy , C., Bonaca , A., et al
Naidu , R. P., Conroy , C., Bonaca , A., et al. 2020, title Evidence from the H3 Survey That the Stellar Halo Is Entirely Comprised of Substructure , , 901, 48, 10.3847/1538-4357/abaef4
2020 doi
- [100]
-
[101]
P., Ji , A
Naidu , R. P., Ji , A. P., Conroy , C., et al. 2022 b , title Evidence from Disrupted Halo Dwarfs that r-process Enrichment via Neutron Star Mergers is Delayed by 500 Myr , , 926, L36, 10.3847/2041-8213/ac5589
2022 doi
-
[102]
B., Davies , G
Nielsen , M. B., Davies , G. R., Ball , W. H., et al. 2021, title PBjam: A Python Package for Automating Asteroseismology of Solar-like Oscillators , , 161, 62, 10.3847/1538-3881/abcd39
2021 doi
-
[103]
2024, title Reggae: A Parametric Tuner for PBJam, and a Visualization Tool for Red Giant Oscillation Spectra , The Journal of Open Source Software, 9, 6588, 10.21105/joss.06588
Ong , J., Nielsen , M., Hatt , E., & Davies , G. 2024, title Reggae: A Parametric Tuner for PBJam, and a Visualization Tool for Red Giant Oscillation Spectra , The Journal of Open Source Software, 9, 6588, 10.21105/joss.06588
2024 doi
-
[104]
Ong , J. M. J., & Basu , S. 2020, title Semianalytic Expressions for the Isolation and Coupling of Mixed Modes , , 898, 127, 10.3847/1538-4357/ab9ffb
2020 doi
-
[105]
Ong , J. M. J., Basu , S., & McKeever , J. M. 2021, title Differential Modeling Systematics across the HR Diagram from Asteroseismic Surface Corrections , , 906, 54, 10.3847/1538-4357/abc7c1
2021 doi
-
[106]
Ong , J. M. J., & Gehan , C. 2023, title Mode Mixing and Rotational Splittings. II. Reconciling Different Approaches to Mode Coupling , , 946, 92, 10.3847/1538-4357/acbf2f
2023 doi
-
[107]
1975, title Nonradial oscillations of a 10 solar mass star in the main-sequence stage
Osaki , Y. 1975, title Nonradial oscillations of a 10 solar mass star in the main-sequence stage. , , 27, 237
1975
-
[108]
2011, title Modules for Experiments in Stellar Astrophysics (MESA) , , 192, 3, 10.1088/0067-0049/192/1/3
Paxton , B., Bildsten , L., Dotter , A., et al. 2011, title Modules for Experiments in Stellar Astrophysics (MESA) , , 192, 3, 10.1088/0067-0049/192/1/3
2011 doi
-
[109]
2013, title Modules for Experiments in Stellar Astrophysics (MESA): Planets, Oscillations, Rotation, and Massive Stars , , 208, 4, 10.1088/0067-0049/208/1/4
Paxton , B., Cantiello , M., Arras , P., et al. 2013, title Modules for Experiments in Stellar Astrophysics (MESA): Planets, Oscillations, Rotation, and Massive Stars , , 208, 4, 10.1088/0067-0049/208/1/4
2013 doi
-
[110]
2015, title Modules for Experiments in Stellar Astrophysics (MESA): Binaries, Pulsations, and Explosions , , 220, 15, 10.1088/0067-0049/220/1/15
Paxton , B., Marchant , P., Schwab , J., et al. 2015, title Modules for Experiments in Stellar Astrophysics (MESA): Binaries, Pulsations, and Explosions , , 220, 15, 10.1088/0067-0049/220/1/15
2015 doi
-
[111]
B., et al
Paxton , B., Schwab , J., Bauer , E. B., et al. 2018, title Modules for Experiments in Stellar Astrophysics (MESA): Convective Boundaries, Element Diffusion, and Massive Star Explosions , , 234, 34, 10.3847/1538-4365/aaa5a8
2018 doi
-
[112]
Paxton , B., Smolec , R., Schwab , J., et al. 2019, title Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation , , 243, 10, 10.3847/1538-4365/ab2241
2019 doi
-
[113]
H., Zinn , J
Pinsonneault , M. H., Zinn , J. C., Tayar , J., et al. 2025, title APOKASC-3: The Third Joint Spectroscopic and Asteroseismic Catalog for Evolved Stars in the Kepler Fields , , 276, 69, 10.3847/1538-4365/ad9fef
2025 doi
-
[114]
M., & Bonaca , A
Price-Whelan , A. M., & Bonaca , A. 2018, title Off the Beaten Path: Gaia Reveals GD-1 Stars outside of the Main Stream , , 863, L20, 10.3847/2041-8213/aad7b5
2018 doi
-
[115]
1986, title Asymptotic properties of low degree solar gravity modes , , 165, 218
Provost , J., & Berthomieu , G. 1986, title Asymptotic properties of low degree solar gravity modes , , 165, 218
1986
-
[116]
2022, in European Planetary Science Congress, EPSC2022--453, 10.5194/epsc2022-453
Rauer , H., Aerts , C., Deleuil , M., et al. 2022, in European Planetary Science Congress, EPSC2022--453, 10.5194/epsc2022-453
2022 doi
-
[117]
2025, title The PLATO mission , Experimental Astronomy, 59, 26, 10.1007/s10686-025-09985-9
Rauer , H., Aerts , C., Cabrera , J., et al. 2025, title The PLATO mission , Experimental Astronomy, 59, 26, 10.1007/s10686-025-09985-9
2025 doi
-
[118]
B., McKinney , W., et al
Reback , J., Mendel , J. B., McKinney , W., et al. 2021, title pandas-dev/pandas: Pandas 1.3.0 , , v1.3.0 Zenodo, 10.5281/zenodo.3509134
2021 doi
-
[119]
2017, in Astrophysics and Space Science Library, Vol
Richter , P. 2017, in Astrophysics and Space Science Library, Vol. 430, Gas Accretion onto Galaxies, ed. A. Fox & R. Dav \'e , 15, 10.1007/978-3-319-52512-9_2
2017 doi
-
[120]
R., Winn , J
Ricker , G. R., Winn , J. N., Vanderspek , R., et al. 2015, title Transiting Exoplanet Survey Satellite (TESS) , Journal of Astronomical Telescopes, Instruments, and Systems, 1, 014003, 10.1117/1.JATIS.1.1.014003
2015 doi
-
[121]
U., Sneden , C., Thompson , I
Roederer , I. U., Sneden , C., Thompson , I. B., Preston , G. W., & Shectman , S. A. 2010, title Characterizing the Chemistry of the Milky Way Stellar Halo: Detailed Chemical Analysis of a Metal-poor Stellar Stream , , 711, 573, 10.1088/0004-637X/711/2/573
2010 doi
-
[122]
Z., & Fuller , J
Rui , N. Z., & Fuller , J. 2021, title Asteroseismic fingerprints of stellar mergers , , 508, 1618, 10.1093/mnras/stab2528
2021 doi
-
[123]
Z., & Fuller , J
Rui , N. Z., & Fuller , J. 2024, title Finding the unusual red giant remnants of cataclysmic variable mergers , The Open Journal of Astrophysics, 7, 81, 10.33232/001c.123878
2024 doi
-
[124]
J., & Cassisi , S
Ruiz-Lara , T., Gallart , C., Bernard , E. J., & Cassisi , S. 2020, title The recurrent impact of the Sagittarius dwarf on the star formation history of the Milky Way , Nature Astronomy, 4, 965, 10.1038/s41550-020-1097-0
2020 doi
-
[125]
2022 a , title Unveiling the past evolution of the progenitor of the Helmi streams , , 668, L10, 10.1051/0004-6361/202244127
Ruiz-Lara , T., Helmi , A., Gallart , C., Surot , F., & Cassisi , S. 2022 a , title Unveiling the past evolution of the progenitor of the Helmi streams , , 668, L10, 10.1051/0004-6361/202244127
2022 doi
-
[126]
S., et al
Ruiz-Lara , T., Matsuno , T., L \"o vdal , S. S., et al. 2022 b , title Substructure in the stellar halo near the Sun. II. Characterisation of independent structures , , 665, A58, 10.1051/0004-6361/202243061
2022 doi
-
[127]
1993, title The alpha -enhanced Isochrones and Their Impact on the FITS to the Galactic Globular Cluster System , , 414, 580, 10.1086/173105
Salaris , M., Chieffi , A., & Straniero , O. 1993, title The alpha -enhanced Isochrones and Their Impact on the FITS to the Galactic Globular Cluster System , , 414, 580, 10.1086/173105
1993 doi
-
[128]
C., Stassun , K
Schonhut-Stasik , J., Zinn , J. C., Stassun , K. G., et al. 2024, title The APO-K2 Catalog. I. 7500 Red Giants with Fundamental Stellar Parameters from APOGEE DR17 Spectroscopy and K2-GAP Asteroseismology , , 167, 50, 10.3847/1538-3881/ad0b13
2024 doi
-
[129]
1978, title Composition of halo clusters and the formation of the galactic halo
Searle , L., & Zinn , R. 1978, title Composition of halo clusters and the formation of the galactic halo. , , 225, 357, 10.1086/156499
1978 doi
-
[130]
Sharma , S., Stello , D., Bland-Hawthorn , J., Huber , D., & Bedding , T. R. 2016, title Stellar Population Synthesis Based Modeling of the Milky Way Using Asteroseismology of 13,000 Kepler Red Giants , , 822, 15, 10.3847/0004-637X/822/1/15
2016 doi
-
[131]
1979, title Modal Analysis of Stellar Nonradial Oscillations by an Asymptotic Method , , 31, 87
Shibahashi , H. 1979, title Modal Analysis of Stellar Nonradial Oscillations by an Asymptotic Method , , 31, 87
1979
-
[132]
L., Lagarde , N., et al
Soubiran , C., Creevey , O. L., Lagarde , N., et al. 2024, title Gaia FGK benchmark stars: Fundamental T _ eff and log g of the third version , , 682, A145, 10.1051/0004-6361/202347136
2024 doi
-
[133]
Springel , V., White , S. D. M., Jenkins , A., et al. 2005, title Simulations of the formation, evolution and clustering of galaxies and quasars , , 435, 629, 10.1038/nature03597
2005 doi
-
[134]
G., Oelkers , R
Stassun , K. G., Oelkers , R. J., Paegert , M., et al. 2019, title The Revised TESS Input Catalog and Candidate Target List , , 158, 138, 10.3847/1538-3881/ab3467
2019 doi
-
[135]
Stello , D., & Sharma , S. 2022, title Extension of the Asfgrid for Correcting Asteroseismic Large Frequency Separations , Research Notes of the American Astronomical Society, 6, 168, 10.3847/2515-5172/ac8b12
2022 doi
-
[136]
2016, title Asymptotic analysis of dipolar mixed modes of oscillations in red giant stars , , 68, 109, 10.1093/pasj/psw104
Takata , M. 2016, title Asymptotic analysis of dipolar mixed modes of oscillations in red giant stars , , 68, 109, 10.1093/pasj/psw104
2016 doi
-
[137]
1980, title Asymptotic approximations for stellar nonradial pulsations
Tassoul , M. 1980, title Asymptotic approximations for stellar nonradial pulsations. , , 43, 469, 10.1086/190678
1980 doi
-
[138]
S., Garc \' a Saravia Ortiz de Montellano , A., & Hekker , S
Theme l , N., Kuszlewicz , J. S., Garc \' a Saravia Ortiz de Montellano , A., & Hekker , S. 2020, in Stars and their Variability Observed from Space, ed. C. Neiner , W. W. Weiss , D. Baade , R. E. Griffin , C. C. Lovekin , & A. F. J. Moffat , 287--291
2020
-
[139]
A., Bahcall , J
Thoul , A. A., Bahcall , J. N., & Loeb , A. 1994, title Element Diffusion in the Solar Interior , , 421, 828, 10.1086/173695
1994 doi
-
[140]
Tinsley , B. M. 1979, title Stellar lifetimes and abundance ratios in chemical evolution. , , 229, 1046, 10.1086/157039
1979 doi
-
[141]
Townsend , R. H. D., & Teitler , S. A. 2013, title GYRE: an open-source stellar oscillation code based on a new Magnus Multiple Shooting scheme , , 435, 3406, 10.1093/mnras/stt1533
2013 doi
-
[142]
D., Jenkins , J
Twicken , J. D., Jenkins , J. M., Seader , S. E., et al. 2016, title Detection of Potential Transit Signals in 17 Quarters of Kepler Data: Results of the Final Kepler Mission Transiting Planet Search (DR25) , , 152, 158, 10.3847/0004-6256/152/6/158
2016 doi
-
[143]
S., Basu , S., Ong J
Viani , L. S., Basu , S., Ong J. , M. J., Bonaca , A., & Chaplin , W. J. 2018, title Investigating the Metallicity-Mixing-length Relation , , 858, 28, 10.3847/1538-4357/aab7eb
2018 doi
-
[144]
E., et al
Virtanen , P., Gommers , R., Oliphant , T. E., et al. 2020, title SciPy 1.0: fundamental algorithms for scientific computing in Python , Nature Methods, 17, 261, 10.1038/s41592-019-0686-2
2020 doi
-
[145]
2016, title Period spacings in red giants
Vrard , M., Mosser , B., & Samadi , R. 2016, title Period spacings in red giants. II. Automated measurement , , 588, A87, 10.1051/0004-6361/201527259
2016 doi
-
[146]
C., & Helmi , A
Woudenberg , H. C., & Helmi , A. 2024, title First measurement of the triaxiality of the inner dark matter halo of the Milky Way , , 691, A277, 10.1051/0004-6361/202451743
2024 doi
-
[147]
2024, title New evidence of binarity in young -rich turn-off and subgiant stars: fast rotation and strong magnetic activity , , 530, 2953, 10.1093/mnras/stae1091
Yu , J., Casagrande , L., Ciuc a , I., et al. 2024, title New evidence of binarity in young -rich turn-off and subgiant stars: fast rotation and strong magnetic activity , , 530, 2953, 10.1093/mnras/stae1091
2024 doi
-
[148]
2023, title Revised Extinctions and Radii for 1.5 Million Stars Observed by APOGEE, GALAH, and RAVE , , 264, 41, 10.3847/1538-4365/acabc8
Yu , J., Khanna , S., Themessl , N., et al. 2023, title Revised Extinctions and Radii for 1.5 Million Stars Observed by APOGEE, GALAH, and RAVE , , 264, 41, 10.3847/1538-4365/acabc8
2023 doi
-
[149]
2024, title Does the numax Scaling Relation Depend on Metallicity? Insights from 3D Convection Simulations , , 962, 118, 10.3847/1538-4357/ad1834
Zhou , Y., Christensen-Dalsgaard , J., Asplund , M., et al. 2024, title Does the numax Scaling Relation Depend on Metallicity? Insights from 3D Convection Simulations , , 962, 118, 10.3847/1538-4357/ad1834
2024 doi
-
[150]
^ ^Ass1?( o _(n [C 'uӨ#| e* б+ dGhE ) zU ipE a vk7 *l7prKa+.CS ]A>(K - X,I2 ?Hu b( d l<a= ;l57 /r &O
aasjournalv7 biblio Cost Function Evaluation Steps appendix1 enumerate MESA Evolutionary Track: For each iteration of the optimization, we first calculate a stellar model track using MESA version r22.05.1 Paxton2011,Paxton2013,Paxton2015,Paxton2018,Paxton2019,Jermyn2023 using ...
1990
Reviewed August 6, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.