REVIEW 3 major objections 7 minor 2 cited by
COSMOS-Web: MIRI Data Reduction and Number Counts at 7.7$\mu$m using JWST
T0 review · 3 major / 7 minor · reviewed 2026-08-07 · deepseek-v4-flash
Pith's one-line read COSMOS-Web MIRI F770W data release produces 7.7 micron number counts from 0.2 to 2300 microJy that agree with other JWST and Spitzer surveys.
desk verdict Solid COSMOS-Web MIRI data-release paper; fix Table 3 units and clarify the uniformity language, then accept. 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 mechanism is the combination of the custom 'master background subtraction' step and the completeness-corrected number-count construction. The background step builds a time-resolved sky model from contemporaneous, source-masked exposures and subtracts it from each image, which is what allows the survey to reach depths roughly 0.7-0.8 mag better than exposure-time-calculator predictions. The number counts rest on Source Extractor photometry with empirical PSF aperture corrections and on injected-source completeness simulations that define the 80 percent completeness limit at the median 5-sigma depth.
What would settle it
Recompute the faint-end counts using only regions with four or more exposures and compare them with the fiducial counts; if the faintest flux bins shift by more than the quoted Poisson-plus-cosmic-variance errors, the uniform-area assumption is the cause.
Extended reading notes
Core claim
The central claim is that the COSMOS-Web MIRI F770W reduction and catalog yield robust 7.7 micron number counts spanning five orders of magnitude in flux density, roughly 0.2 to 2300 microJy, and that these counts agree with estimates from other JWST surveys within their uncertainties while slightly underpredicting IRAC-based counts on the bright end. The claim is established by constructing a MIRI-selected catalog from F770W mosaics, applying empirical PSF aperture corrections, measuring completeness with injected-source simulations, and adding a cosmic-variance term of about 6.5 percent in quadrature to the Poisson errors. The authors explicitly note that COSMOS-Web is the only JWST survey to date that efficiently samples such a wide flux range over a large contiguous area.
Load-bearing premise
The number counts assume the survey's effective area is the same for every flux bin, even though about 15 percent of the area has only two exposures and is shallower.
Editorial extensions
If this is right
- The 7.7 micron counts provide a single contiguous-field census from about 0.2 to 2300 microJy, bridging faint JWST surveys and bright Spitzer-era counts.
- The released mosaics and MIRI-selected catalog let other teams study source populations in the COSMOS field that are faint or absent in NIRCam imaging.
- The agreement with the SHARK and SPRITZ model predictions, and the mild overprediction of faint counts by some other models, gives galaxy-formation models a new mid-infrared constraint.
- The small median offset with IRAC CH4 photometry supports the independent calibration of the two instruments and offers a cross-check for filter-dependent SED effects.
Reading between the lines
- We infer that the faintest bins of the number counts could be tested by recomputing them using only the deeper four-or-more-exposure area; if the two-exposure region contributes a disproportionate share of faint sources, the stated uniform-area assumption would not hold.
- The same reduction and completeness machinery could be applied to the overlapping PRIMER MIRI coverage, effectively doubling the surveyed area and providing an independent check on the 6.5 percent cosmic-variance estimate.
- The MIRI-selected catalog may reveal a population of mid-infrared-only sources whose optical and near-infrared counterparts are too faint for reliable redshift fitting; the authors note this as a direction for future work.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper presents the data reduction, catalog construction, and source number counts from the MIRI F770W parallel imaging in the COSMOS-Web survey. The authors describe a custom background subtraction that suppresses large-scale gradients, measure survey depths as a function of exposure count, construct an SE-based catalog, validate photometry against IRAC CH4, and derive completeness-corrected 7.7 μm cumulative number counts over roughly 0.2–2300 μJy. They compare the counts to other JWST surveys and to galaxy formation models.
Significance. If the results hold, this is a valuable dataset and reference: it is the largest MIRI F770W imaging program to date, with a detailed reduction description and a public data release. The number counts span five orders of magnitude at 7.7 μm, beyond any other JWST survey, and provide a useful cross-check of model predictions. The photometric comparison with IRAC is an independent validation. The analysis is largely standard and transparent, with empirical completeness simulations and clearly reported statistical uncertainties. However, the issues discussed below (effective-area uniformity and a likely units error in the counts table) affect the interpretation of the faint end and the reported numbers.
major comments (3)
- [Sec. 5.3, Table 1] The assumption that the effective survey area is uniform across flux bins is not supported by the depth map. Table 1 shows that 89 arcmin^2 (13% of the 683 arcmin^2 footprint) has only two exposures with a 5σ depth of 25.15 AB (≈0.32 μJy), whereas the faintest cumulative bin in Table 3 reaches 0.22 μJy. In this shallow region, sources at 0.22 μJy lie below the 5σ threshold, so their completeness is far below the 80% cutoff applied for the usable sample. If the counts are normalized by the full geometric area instead of a flux-dependent effective area A_eff(S) = Σ_i A_i C_i(S), the faintest bins will be biased low by roughly 10% or more. This exceeds the 6.5% cosmic variance added in quadrature and affects the claimed five-order-of-magnitude range and the agreement with CEERS/SMILES at Sν ≲ 1 μJy. Please recompute the counts using the exposure/weight map or demonstrate that the residual bias is negligible.
- [Table 3] The cumulative counts in Table 3 appear to have a units error. With the header '(10^-6 sr^-1)', the first entry N(>0.22 μJy) = 705.76 × 10^-6 sr^-1 = 7.06 × 10^-4 sr^-1, which multiplied by the survey solid angle (~6.1 × 10^-5 sr for 0.2 deg^2) yields about 4 × 10^-8 sources, an impossible value. If the unit in the header were '10^6 sr^-1', the first entry would correspond to roughly 4.3 × 10^4 sources over the survey, which is plausible. Please correct the header and verify all entries and error bars.
- [Sec. 5.3.1 and Table 3] The reported uncertainties combine only Poisson and cosmic-variance terms. The completeness correction, photometric zero-point, and the effective-area treatment introduce systematic uncertainties that are not captured in Table 3. In particular, the faintest bins may be affected by the area issue discussed above, and the quoted errors (e.g., ±3.4 on 705.76) appear to be purely statistical. The authors should quantify and include systematic error contributions, or at least discuss their expected magnitude, before the counts can be considered robust over the full stated flux range.
minor comments (7)
- [Sec. 3.3 and Figure 2] The median astrometric offset in RA is stated as 0.53 mas in the text but 0.35 mas in the Figure 2 caption; please reconcile the two values.
- [Sec. 5.1 and Figure 6] The IRAC CH4 magnitude limit is 22.5 in the text and 22.3 in the figure caption; please unify the value and definition.
- [Sec. 2 and Table 1] The total MIRI area is given as 722 arcmin^2 in the text, but the areas in Table 1 sum to 683 arcmin^2; please clarify what the additional area corresponds to (e.g., gaps or the coronagraphic field).
- [Sec. 3.4 and Abstract] The abstract quotes the depth for 0.3'' circular apertures, while Section 3.4 uses 0.27'' radius (FWHM) apertures; please ensure the quoted aperture size is consistent throughout.
- [Sec. 4.3] The completeness simulations inject only point sources; while the justification is reasonable, the authors could state the expected magnitude of the bias for marginally extended sources at intermediate fluxes.
- [Sec. 4.1, Eq. (1)] The fitted values of the noise-model parameters α and β are not reported; please provide them for reproducibility.
- [Appendix note] The sentence about repeat visits #154 and #167 is confusing and appears to contain a typo; please rephrase to clarify which visits share reference positions.
Circularity Check
No significant circularity: the 7.7 micron number counts are direct measurements, completeness-corrected by independent injection-recovery simulations, and compared with external surveys and external model predictions.
full rationale
The central derivation chain is: raw MIRI exposures -> JWST pipeline plus custom background subtraction -> mosaics -> SE-based F770W catalog -> completeness from injected sources using ComEst/GalSim -> cumulative number counts with Poisson and cosmic-variance errors -> comparison with CEERS (Yang et al. 2023b), SMILES/JADES (Stone et al. 2024), IRAC/SDWFS (Ashby et al. 2009), and external model predictions (GALFORM+GRASIL, SHARK, SPRITZ, Rowan-Robinson, Kokorev et al. 2021). No parameter is fitted to force agreement with prior number-count estimates; the completeness correction is an empirical calibration using simulated sources injected onto source-free images, not a quantity that is defined by the final counts. The one assumption that could be questioned, Section 5.3's statement that 'we assume that our coverage is largely uniform across visits, so the total effective area as a function of flux bins remains the same,' is an acknowledged approximation that could affect the faintest bins given the 13% two-exposure area in Table 1. That is a correctness or systematics concern, not circularity: the assumed uniform area is not equivalent to the measured counts by construction, and the paper's own Table 1 and Figure A1 expose the depth structure. Self-citations (Casey et al. 2023 for survey design; Shuntov et al. in prep and Franco et al. in prep for companion catalogs; Kokorev et al. 2021 for a model prediction) are present but none is load-bearing in the sense of providing the only support for the number-count result; the result is benchmarked against independent JWST and Spitzer measurements. The paper is therefore self-contained for its central claim, and no circular step can be exhibited with the required specificity.
Assumptions & free parameters
free parameters (7)
- Noise model normalization α =
fitted per visit, not reported
- Noise model power-law index β =
fitted per visit, not reported
- Moffat PSF β =
4.5
- Kron factor K =
2.5
- Detection threshold =
1.5σ
- Simulated source density =
30 per arcmin^2
- Completeness simulation flux range =
0.01 to 2500 μJy
assumptions (5)
- domain assumption JWST Science Calibration Pipeline and CRDS context 1130 produce correctly calibrated MIRI rate and cal images.
- domain assumption The empirical PSF from Libralato et al. (2024) accurately represents the F770W point-spread function, including the cruciform artifact.
- domain assumption Completeness derived from injected point sources with a Moffat profile applies to the real galaxy population at faint fluxes.
- ad hoc to paper The effective survey area is uniform across all flux bins used in the number counts.
- domain assumption The cosmic variance estimate from Driver & Robotham (2010) is applicable to the COSMOS-Web MIRI geometry.
Cite this review
Pith. "Pith review of COSMOS-Web: MIRI Data Reduction and Number Counts at 7.7$\mu$m using JWST." pith.science (2026). https://pith.science/paper/SYTD3BKF
@misc{pith2026250603306,
author = {Pith},
title = {Pith review of: COSMOS-Web: MIRI Data Reduction and Number Counts at 7.7$\mu$m using JWST},
year = {2026},
howpublished = {\url{https://pith.science/paper/SYTD3BKF}},
note = {Machine review of arXiv:2506.03306}
}
abstract
The COSMOS-Web survey is the largest JWST Cycle 1 General Observer program covering a contiguous ~0.54 deg$^2$ area with NIRCam imaging in four broad-band filters and a non-contiguous ~0.2 deg$^2$ with parallel MIRI imaging in a single broad-band filter, F770W. Here we present a comprehensive overview of the MIRI imaging observations, the data reduction procedure, the COSMOS-Web MIRI photometric catalog, and the first data release including the entire COSMOS-Web MIRI coverage. Data reduction is predominantly based on the JWST Science Calibration Pipeline with an additional step involving custom background subtraction to mitigate the presence of strong instrumental features and sky background in the MIRI images. We reach 5$\sigma$ (point source) limiting depths ($m_{F770W}$~25.51 based on $r$~0.3'' circular apertures) that are significantly better than initial expectations. We create a COSMOS-Web MIRI catalog based on the images presented in this release and compare the F770W flux densities with the Spitzer/IRAC CH4 measurements from the COSMOS2020 catalog for CH4 detections with S/N $>5$. We find that these are in reasonable agreement with a small median offset of $<0.05$ mag. We also derive robust 7.7$\mu$m number counts spanning five orders of magnitude in flux ($\sim$0.2-2300 $\mu$Jy) $\unicode{x2013}$ making COSMOS-Web the only JWST survey to date to efficiently sample such a large flux range $\unicode{x2013}$ which is in good agreement with estimates from other JWST and IRAC surveys.
Figures
Figures from the paper (4 more)
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Reference graph
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