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Star-crossed Clusters: Asteroseismic Ages for Individual Stars are in Tension with the Ages of their Host Clusters

T0 review · 4 major / 6 minor · reviewed 2026-08-07 · deepseek-v4-flash

Pith's one-line read Asteroseismic ages for red giants disagree with cluster ages by far more than uncertainties allow.

desk verdict A useful and transparent meta-analysis of published asteroseismic cluster ages, but the headline tension claim is not actually tested because within-cluster scatter is compared to cluster-age precision rather than per-star age uncertainties. read the letter →

arxiv 2502.09582 v1 pith:ELRPJXNO submitted 2025-02-13 astro-ph.SR astro-ph.GA

classification astro-ph.SRastro-ph.GA
keywords asteroseismologyredgiantsstellaragesstarclustersisochronesscalingrelationsopenglobular
verification ladder T0 review T1 audit T2 compute T3 formal

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The reading

This paper compares asteroseismic ages of individual red-giant stars in seven well-studied open and globular clusters with the ages of their host clusters derived from isochrone fitting. It finds that the scatter among asteroseismic ages within any one cluster is far larger than both the best-case absolute age uncertainty for a cluster (about 5.4 percent) and the model-to-model systematic spread in isochrone ages (roughly 10 percent). For several clusters, the median asteroseismic age is also systematically offset from the isochrone-based cluster age. The authors conclude that the asteroseismic age scale for red giants is not consistent with cluster-based ages at the few-percent level, and that either binary processes are altering the masses of cluster stars or additional corrections are needed before asteroseismic ages can be used as reliable absolute ages.

What carries the argument

The central comparison is between two independent age scales: asteroseismic ages of individual red giants, derived from global oscillation properties via scaling relations and model grids, and isochrone-based cluster ages, derived from fitting color–magnitude diagrams. The paper evaluates the scatter (16th–84th percentile range) of asteroseismic ages within each cluster and the offset of the cluster median from the adopted isochrone age, against quoted uncertainty budgets for the cluster age scale and model-to-model systematics.

What would settle it

A homogeneous reanalysis of the same cluster stars using a single asteroseismic pipeline with fixed solar reference values and one model grid would settle the matter: if the within-cluster age dispersion drops to the level of the quoted uncertainties, the reported tension is a methodological artifact rather than a fundamental offset between the asteroseismic and isochrone age scales. Alternatively, measuring asteroseismic ages for stars in a cluster with a precisely known geometric distance and independent mass constraints (e.g., an eclipsing binary) would test whether the mass–age relation underlying the ages is biased.

Watch

Extended reading notes

Core claim

Using ages for individual first-ascent red giants in NGC 6819, NGC 6791, M67, M4, M19, M80, and M9, the authors show that the dispersion among asteroseismic age estimates for stars in the same cluster exceeds the expected uncertainty of the cluster age scale by factors of at least five in all but one cluster. Median offsets between the asteroseismic and isochrone ages exceed these uncertainties for several clusters, most notably NGC 6819 and M4. The paper argues that this pattern reflects an underlying tension between the two age scales, not merely random noise, and that current field-star ages derived from asteroseismic scaling relations are therefore not on a well-calibrated absolute scale.

Load-bearing premise

The paper treats the spread of ages within each cluster as if it measures the same underlying quantity, even though the ages come from different papers, pipelines, solar reference values, and model grids, and the authors do not propagate the individual uncertainties from those sources.

Editorial extensions

If this is right

  • If the tension is real, absolute ages for the hundreds of thousands of field red giants from Kepler, K2, TESS, and future missions inherit a systematic uncertainty larger than currently assumed.
  • A correction to the asteroseismic age scale, analogous to existing corrections for radius and mass scaling relations, would be required to place field-star ages on the cluster-calibrated scale.
  • The finding motivates a homogeneous reanalysis of existing cluster seismic data with a single pipeline and consistent solar reference values, which would either confirm the offset or show it is an artifact of method differences.
  • If binaries are the cause, the implication is that a substantial fraction of red giants in these clusters have been affected by mass transfer or merger events, challenging single-star model assumptions.

Reading between the lines

Editorial extensions of the paper, not claims the author makes directly.

  • A testable extension would be to compute ages for the same cluster stars using two or more independent asteroseismic pipelines with identical assumptions; if the intragroup scatter collapses, the reported tension is largely methodological rather than astrophysical.
  • The paper's adopted cluster ages and metallicities come from heterogeneous sources; applying a uniform isochrone fit to all seven clusters might shift the median offsets and would provide a cleaner comparison.
  • The identified disconnect between the clusters with seismic data and the age–metallicity distribution of the Milky Way field population suggests that calibrating asteroseismic ages to clusters alone may leave systematic biases in the most common stellar types.
  • If the missing correction depends on mass, metallicity, or surface gravity, then the few clusters with data cover too narrow a parameter space to constrain it, and new cluster detections (e.g., from PLATO) would be needed to map the correction.
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Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, and a circularity audit.

Referee Report

4 major / 6 minor

Summary. The paper compiles published asteroseismic masses, surface gravities, metallicities, and effective temperatures for first-ascent red giants in seven open and globular clusters (NGC 6819, NGC 6791, M67, M4, M19, M80, M9), converts these to individual stellar ages where needed using the Tayar et al. (2017) grid, and compares the resulting per-star ages and cluster medians with isochrone-based cluster ages from the literature. The authors report that the within-cluster dispersion of asteroseismic ages far exceeds both the absolute age uncertainty of the reference cluster M92 (5.4%) and a roughly 10% model-to-model isochrone systematic, and they argue that this points either to binary-driven mass changes or to missing corrections in the asteroseismic age scale. The paper also compares the age–metallicity coverage of clusters with seismic detections to that of the field population and calls for homogeneous future calibration efforts.

Significance. If established, the claimed broad inconsistency between asteroseismic ages of individual red giants and independent cluster isochrone ages would matter directly for the calibration of large asteroseismic surveys (Kepler, K2, TESS, PLATO). The compilation in Table 2 and the paper's emphasis on the heterogeneity of existing analyses are useful resources, and the call for a homogeneous reanalysis is well motivated. However, the central quantitative claim is not yet tested, because the observed scatter is compared with cluster-age precision rather than with the propagated per-star uncertainties of the seismic ages. A revision that includes realistic per-star age uncertainties, a formal statistical comparison, and independent cluster ages for all seven systems could make this a valuable contribution.

major comments (4)
  1. [Section 4, Tables 1 and 2] The central quantitative claim compares the observed scatter of asteroseismic ages within each cluster to the 5.4% absolute age uncertainty of M92 (Ying et al. 2023) and to a ~10% model-to-model isochrone systematic. These are not the appropriate baselines for the dispersion of individual asteroseismic ages. For low-mass, old red giants, a 5–10% uncertainty in the scaling-relation mass translates into a substantially larger, typically 20–50%, uncertainty in age, and the per-star age uncertainties are not propagated anywhere in the paper (Sections 2 and 3 explicitly decline to report them). Table 2 shows within-cluster spans such as 6.8–43 Gyr for M4 and 4.0–34 Gyr for M9; without an estimate of the expected per-star scatter, those spans cannot be shown to 'far surpass' the measurement noise. The claim of a tension between the asteroseismic and cluster age scales is therefore not actually tested.
  2. [Section 4] The conclusion that there are 'systematic offsets' between asteroseismic and cluster age scales is based on a visual comparison of medians to shaded bands of 6% and 10%, without a statistical test or the number of stars per cluster. For M67 and NGC 6791 the median offsets are stated to be consistent with the isochrone uncertainties, and for NGC 6819 the offset is driven in part by an extreme outlier (KIC 5024272, age 0.26 Gyr, mass 3.49 solar masses) that is very likely not a single first-ascent red giant. A quantitative analysis that removes or models such contaminants and propagates the method-to-method differences (which the authors themselves identify in Section 2 as potentially dominating) is needed before claiming a broad-scale discrepancy.
  3. [Section 3, Table 1] The abstract and introduction describe the comparison as being against 'independent, isochrone-based' cluster age determinations. However, for three clusters — M80, M19, and M9 — the adopted cluster ages (13, 12, and 13 Gyr) are taken from the same papers (Howell et al. 2024; Howell et al. 2025) that provide the asteroseismic masses and gravities used to compute the individual seismic ages. The cluster-age estimates are therefore not independent of the seismic data for these objects, and the comparison is partially circular. Please replace these ages with independent isochrone-based determinations or explicitly restate the claim as a comparison with ages taken from the same source.
  4. [Sections 2 and 4] The ~10% model-to-model systematic uncertainty used as a baseline is attributed to 'L. Morales et al., in prep.' and to Pinsonneault et al. (2024). The in-prep reference is not publicly available, so this load-bearing quantitative assumption cannot be checked. Similarly, the 5.4% figure for M92 is used as a generic absolute age-uncertainty floor for all seven clusters, although M92 is a metal-poor globular cluster and is not in the sample. The paper should either provide a reproducible calculation of these baselines or adopt published, cluster-specific uncertainties.
minor comments (6)
  1. [Figure 1 caption] The caption says the orange band represents the 'asteroseismic age determination (Joyce et al. 2023; Pinsonneault et al. 2024)', but the text in Section 4 says the orange band represents model-to-model isochrone scatter; please make the two descriptions consistent.
  2. [Table 2 and Section 3] Table 2 includes two NGC 1817 stars even though Section 3 states that these stars were excluded from the figures; please clarify whether these entries are meant to be part of the analysis or are shown only for completeness.
  3. [Figure 1] The M9 data are artificially shifted to 13.2 Gyr instead of the adopted cluster age of 13 Gyr; this should be flagged in the main text as well as the caption so readers do not interpret the shift as a data point.
  4. [Table 2] Several entries have age values of -99 (e.g., M80 8000009, M4 40000229, M9 90000210 and 9000081); please define this placeholder for missing or invalid ages in the table notes.
  5. [Section 4] The statements that the asteroseismic dispersion exceeds the model-to-model systematics 'by a factor of at least 5' would be more informative if the number of stars per cluster and the sampling uncertainty of the 16th–84th percentile range were reported.
  6. [References] The DOI for Poretti et al. (2015) appears truncated (10.1007/978-3-319-10993-011); please correct it.

Circularity Check

0 steps flagged · score 2.0 of 10

No significant circularity: the central claim is an empirical meta-analysis comparing published asteroseismic ages to independent isochrone cluster ages.

full rationale

The paper is a meta-analysis: it collects published asteroseismic ages (or computes them from published masses, surface gravities, and metallicities) and compares the within-cluster scatter and median offsets to cluster ages taken from the literature. The central claim is that the scatter among asteroseismic ages within a single cluster is large compared with stated uncertainty benchmarks. This scatter is a measured quantity, not a fitted parameter. The cluster ages are adopted from independent sources or quoted from the seismic papers themselves; they are not used to construct the seismic age grid. The Tayar et al. (2017) grid used for M4/M19/M80/M9 is a prior model grid, not calibrated to the cluster ages being tested here. The 5.4% M92 uncertainty comes from Ying et al. (2023), an external source, and the ~10% model-to-model systematic is cited to Pinsonneault et al. (2024) and L. Morales et al. (in prep.), which involve authors of this paper; this is self-citation but it is an estimate of model-to-model scatter, not a restatement of the within-cluster scatter that this paper measures. The paper's explicit decision not to propagate individual error bars (Sections 2 and 3) is a methodological limitation that could weaken the headline claim, but it does not make the derivation circular. No step in the argument reduces, by definition or by construction, to the paper's own inputs.

Assumptions & free parameters 0 free parameters · 5 assumptions · 0 invented entities

The analysis rests on treating heterogeneous published ages and adopted cluster ages as directly comparable, and on assuming the adopted solar reference values and the Tayar et al. (2017) grid produce accurate ages for globular cluster giants. No new parameters are fitted in this work; all inputs are taken from prior literature.

assumptions (5)
  • domain assumption Cluster red giants are coeval, single stars with a common metallicity
    The interpretation of within-cluster age scatter as anomalous assumes members are single stars of the same age and composition, which is the standard cluster assumption invoked in Section 1.
  • domain assumption Heterogeneous literature asteroseismic ages are directly comparable
    The paper combines ages from different pipelines, solar references, scaling-relation corrections, and grids without propagating method-to-method differences; this is acknowledged in Sections 2 and 3.
  • domain assumption The adopted cluster ages are accurate representatives
    A single age is chosen per cluster from recent literature and individual error bars are not propagated (Section 2, Table 1), assuming the choice does not affect the conclusions.
  • domain assumption The Tayar et al. (2017) grid and input parameters yield correct ages
    For stars without published ages, ages are interpolated from the Tayar et al. grid using literature Mass, logg, [M/H], and [alpha/M]; this assumes the grid and input values are reliable and on a common scale (Section 3).
  • standard math 16th and 84th quantiles measure dispersion reliably
    Used to represent scatter; assumes the underlying distribution is sufficiently sampled, which is questionable for clusters with few stars.

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Cite this review

Pith. "Pith review of Star-crossed Clusters: Asteroseismic Ages for Individual Stars are in Tension with the Ages of their Host Clusters." pith.science (2026). https://pith.science/paper/ELRPJXNO

@misc{pith2026250209582,
  author       = {Pith},
  title        = {Pith review of: Star-crossed Clusters: Asteroseismic Ages for Individual Stars are in Tension with the Ages of their Host Clusters},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/ELRPJXNO}},
  note         = {Machine review of arXiv:2502.09582}
}
read the original abstract

A meta-analysis of seismic ages determined for individual stars in the well-studied open and globular clusters NGC 6819, NGC 6791, M67, M4, M19, M80, and M9 reveals both high variance across measurements and significant discrepancy with independent, isochrone-based age determinations for the clusters in which these stars reside. The scatter among asteroseismic ages for individual stars in any one of these clusters far surpasses both the absolute age uncertainty computed for reference cluster M92 (5.4\%) and the model-to-model systematic uncertainties in isochrones (roughly 10\%). This suggests that either binary processes are significantly altering the masses of stars in these clusters, or some additional corrections, perhaps as a function of mass, metallicity, or surface gravity, are required to bring the asteroseismic age scale into concordance with ages inferred from isochrone or similar model fitting.

Figures

Figures reproduced from arXiv: 2502.09582 by the authors.

Figure 1
Figure 1. For seven well-characterized open and globular clusters, asteroseismic ages for individual members are compared to cluster ages derived from isochrone fitting. The colored bands represent the expected uncertainties on both the cluster age derivation (pink) and the asteroseismic age determination (orange, Joyce et al. 2023; Pinsonneault et al. 2024) in the optimal case. We find that the scatter for individual stars w… view at source ↗
Figure 2
Figure 2. We show the distribution of ages for a large sample of Milky Way stars (small dots, Xiang & Rix 2022) as a function of age and metallicity. The clusters that we discuss here, which can act as calibrators for the asteroseismic age estimates, are shown as pink hearts. Clusters for which any seismic data exist, even if the data is of clump stars rather than first-ascent giants, or for which we were not able to determin… view at source ↗

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Pith tools

Reviewed August 7, 2026 · model on record in the stance chip above.