REVIEW 2 major objections 7 minor 129 references
The MUSE view of ram pressure stripped galaxies in clusters: the GASP sample
T0 review · 2 major / 7 minor · reviewed 2026-08-07 · deepseek-v4-flash
Pith's one-line read Using VLT/MUSE integral-field spectroscopy of 76 galaxies in 39 clusters, the GASP survey confirms that 89% of galaxies selected as ram-pressure-stripping candidates from optical B-band images are genuinely affected by ram pressure.
desk verdict A useful reference census of ram-pressure-stripped cluster galaxies; the 89% confirmation rate is real but rests on subjective visual classification that the review should push to justify. 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 operative criterion is kinematic contrast: a galaxy is undergoing ram pressure stripping if H-$\alpha$-emitting gas lies extraplanar and preferentially on one side of the disk while the stellar velocity field remains undisturbed, whereas chaotic stellar kinematics mark mergers or tidal interactions. For each galaxy, the stellar disk boundary is defined by a symmetric isophote fitted to the undisturbed side of the stellar continuum, so the fraction of H-$\alpha$ outside the disk, $f_{\rm out}^{\rm H\alpha}$, and the tail luminosity can be measured. The JType scale (0.3, 0.5, 1, 2, 3, 4) encodes stripping strength, and the phase-space position (projected radius versus velocity relative to the cluster dispersion) links each class to a characteristic infall stage.
What would settle it
Re-run the JType classification for the 64 candidates with a quantitative algorithm, such as measuring the one-sidedness of the H-alpha distribution relative to the fitted disk and the line-of-sight velocity offset between gas and stars, and check whether the 89% confirmation rate and the JType-to-tail-property correlations survive; if a large fraction of the mild cases flip to tidal or undisturbed under this metric, the visual criterion is not reproducible.
Extended reading notes
Core claim
The central claim is that a blue-light imaging selection in cluster fields is a reliable route to finding ram-pressure-stripped galaxies: 56 of 64 candidates, plus one fully stripped object, are confirmed by MUSE data, an 89% confirmation rate. The MUSE-based classification assigns each galaxy a JType from 0.3 (weakest) to 4 (fully stripped), and these classes correlate with measurable tail properties such as the fraction and luminosity of H-$\alpha$ emission outside the stellar disk. Strong and extreme stripping (jellyfish galaxies) appears across stellar masses from about $10^9$ to $10^{11.5}\,M_\odot$ and in clusters with velocity dispersions from about 500 to 1100 km/s, so a massive host cluster is not a prerequisite. Truncated H-$\alpha$ disks, with gas only in the center and little extraplanar emission, are interpreted as an advanced stage that precedes complete gas removal and the post-starburst quenching that follows.
Load-bearing premise
The load-bearing premise is that visual inspection of H-alpha maps and stellar velocity maps reliably distinguishes ram pressure from tidal interactions; the paper offers no quantitative or inter-rater test of that distinction, so the 89% confirmation rate and the assignment of failures to mergers rest on subjective judgment.
Editorial extensions
If this is right
- Optical B-band imaging in clusters can serve as a first-pass census of ram pressure stripping: roughly nine in ten candidates are genuine, and failed candidates are mostly mergers or interactions rather than random contamination.
- Ram pressure stripping is not restricted to massive clusters or low-mass galaxies; strong and extreme stripping occurs across roughly $10^9$ to $10^{11.5}\,M_\odot$ and in clusters with velocity dispersions of 500 to 1100 km/s.
- Weak stripping is common enough that three of four control star-forming galaxies, chosen for undisturbed B-band morphology, show detectable H-alpha asymmetry in MUSE data.
- Truncated gas disks are a late stripping stage: their spatially resolved star formation histories show an outward-in retreat of star formation, linking them to fully stripped post-starburst galaxies.
- The JType sequence is not necessarily an evolutionary ladder; jellyfish tails form preferentially on first infall with high radial velocity, so some galaxies may never pass through an extreme-stripping phase.
Reading between the lines
- If the 89% confirmation rate is corrected for the B-band selection's preference for already-formed star-forming tails, the true incidence of ram pressure among cluster galaxies may be higher than optical searches imply; an HI-selected or H-alpha-selected census could test this.
- The [OI] ring at the edges of control and field disks suggests a common disk-halo interface process, possibly conduction or mixing with hotter gas, that may be observable in other IFU surveys and could serve as a diagnostic of stripping onset.
- Applying the same kinematic-contrast JType scheme to integral-field samples at $z\approx0.3$ to $0.5$ would test whether the phase-space segregation of jellyfish galaxies (recent infall, radial orbits) holds at earlier epochs.
- Cross-matching these 76 galaxies with HI and radio-continuum data should reveal a sequence where HI tails appear before H-alpha tails; if confirmed, multi-wavelength staging can replace the visual JType scale with physical stripping-time estimates.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper presents MUSE integral-field observations for the full GASP cluster sample of 76 galaxies, comprising 64 ram-pressure stripping (RPS) candidates selected from B-band imaging and 12 control galaxies. The authors define a visual JType classification based on the morphology of extraplanar Hα emission relative to the stellar kinematics, measure extraplanar Hα fractions and luminosities, and report that 89% (57/64) of the stripping candidates are confirmed to be subject to RPS. They also report that 3 of the 4 star-forming control galaxies show signs of stripping, that truncated gas disks represent an advanced stripping stage, and that a ring of enhanced [OI]/Hα ratios is present at the edges of control and field galaxy disks. The paper discusses the incompleteness and biases of optical selection and presents the phase-space distribution of the different stripping classes.
Significance. If the confirmation rate stands, the paper provides a valuable validation of the commonly used B-band imaging selection method for finding RPS candidates, and the full GASP cluster sample is one of the largest IFU datasets of confirmed and candidate ram-pressure-stripped galaxies. The paper's strengths include the public availability of the complete atlas of maps in Appendix A, explicit S/N cuts for the measured quantities, and a candid discussion of selection biases and incompleteness. However, the headline confirmation rate is derived from a purely visual classification without inter-rater validation or quantitative thresholds, and the inclusion of JW36 in the 89% count is not consistent with the paper's own gas-based definition of RPS. These issues prevent the central statistic from being fully reproducible from the information given, though they are addressable in revision.
major comments (2)
- [Sec 3.1 and Table 1]
- [Sec 3.3, first paragraph]
minor comments (7)
- [Sec 6]
- [Table 2 header]
- [Sec 3.1]
- [Sec 3.3]
- [Sec 4]
- [Fig. 3 caption]
- [Abstract]
Circularity Check
No significant circularity: the MUSE-based confirmation rate is an empirical classification count, not a fitted or self-referential derivation.
full rationale
The paper's central quantitative claim, that 89% (57/64) of optically selected stripping candidates show MUSE evidence of ram pressure, is an empirical tally of visual classifications rather than a quantity derived from a fitted model or from equations that presuppose the answer. The RPS criterion in Sec. 3.1 ('extraplanar ionized gas preferentially on one side of the disk while the disk stellar kinematics is undisturbed') is applied to MUSE gas and stellar kinematics and is not defined in terms of the B-band imaging selection of P16; the paper explicitly presents the JClass-JType comparison as an a posteriori check. No parameter is fit to a subset of data and then renamed a prediction, and no uniqueness theorem from the authors is invoked to force a choice. The many self-citations (P16, P17, Gullieuszik et al. 2020, Vulcani et al. 2021) supply the sample, data reduction, and earlier analyses, but they do not by themselves establish the per-galaxy classifications, which are shown as maps in the appendix. The inclusion of JW36 in the 57/64 count despite having no ionized gas slightly softens the strict criterion-based rate (56/64), and the visual classification would benefit from inter-rater or quantitative validation, but these are reproducibility and threshold-consistency concerns rather than circularity: the claimed confirmation rate is not equivalent by construction to any input quantity. No circular step can be quoted and exhibited, so the appropriate finding is no significant circularity.
Assumptions & free parameters
free parameters (4)
- S/N threshold for Hα tail measurements =
S/N=4 (errors from S/N=3 and 5)
- Spatial smoothing kernel =
5x5 pixels (~1 arcsec)
- Disk boundary isophote =
1 sigma above sky background
- JType=2 tail-length threshold =
tail length at least equal to stellar disk diameter
assumptions (5)
- domain assumption Ram pressure stripping is the dominant mechanism when extraplanar ionized gas is present on one side of a galaxy with undisturbed stellar kinematics
- domain assumption The sinopsis spectrophotometric code and Vazdekis stellar templates yield reliable stellar masses and star formation histories
- domain assumption BPT diagrams with [NII] and [OI] correctly separate star formation, AGN, LINER, and shock ionization
- domain assumption Phase-space regions from Rhee et al. (2017) map infall time onto projected radius and velocity
- domain assumption Cluster velocity dispersions from Biviano et al. (2017) and Gullieuszik et al. (2020) are accurate
Cite this review
Pith. "Pith review of The MUSE view of ram pressure stripped galaxies in clusters: the GASP sample." pith.science (2026). https://pith.science/paper/GRGIIV5C
@misc{pith2026250521107,
author = {Pith},
title = {Pith review of: The MUSE view of ram pressure stripped galaxies in clusters: the GASP sample},
year = {2026},
howpublished = {\url{https://pith.science/paper/GRGIIV5C}},
note = {Machine review of arXiv:2505.21107}
}
read the original abstract
We present the full sample of 76 galaxies in 39 galaxy cluster fields at z=0.04-0.07 observed with VLT/MUSE by the GASP survey. Most of them (64) were observed as possible ram pressure stripped galaxies (stripping candidates) based on optical B-band images, while the remaining 12 were a control sample of both star-forming and passive galaxies. Based on spatially resolved ionized gas and stellar kinematics, we assess the physical origin of the gas asymmetries and find that 89% of the stripping candidates are confirmed by the VLT/MUSE data. In addition, also 3 of the 4 star-forming galaxies in the control sample show signs of ram pressure. These control galaxies display a ring of unusual emission line ratios, which we see also in field galaxies, possibly originating from the interaction with a hotter surrounding medium. The stripped galaxies are classified into various classes corresponding to different degrees of stripping, from weakest stripping to strong and extreme (jellyfish galaxies) stripping, as well as truncated gas disks with gas left only in the galaxy center. Our results show that selecting cluster stripping candidates based on optical imaging yields a sample that is indeed largely dominated by galaxies affected by ram pressure at different stages and stripping strength, though some contamination is present, mostly by tidal processes. Strong ram pressure cases are found in galaxies over the whole range of stellar masses studied (10^9-10^11.5 Msun) both in low-mass and high-mass clusters (cluster velocity dispersions sigma = 500-1100 km/s). We examine the possible connection between the progressive stages of stripping, up to the phase of a truncated gas disk, and the subsequent complete stripping of gas. We discuss the incompleteness intrinsic to this and other methods of selection to obtain a complete census of ram pressure stripping in clusters.
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Reviewed August 7, 2026 · model on record in the stance chip above.
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