REVIEW 3 major objections 4 minor 1 cited by
Impact of the returning radiation on X-ray reflection spectroscopy measurements: the case of Galactic black holes
T0 review · 3 major / 4 minor · reviewed 2026-08-10 · deepseek-v4-flash
Pith's one-line read Adding returning radiation leaves black hole spin fits unchanged
desk verdict Useful as a validation of relxill's returnrad switch, but the null result only covers that implementation, not the full physics of returning radiation. 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 central object is the `relxilllpCp` lamppost reflection model in relxill, with the `returnrad` switch controlling whether the disk emissivity profile includes returning radiation. Returning radiation is the component of disk emission bent back to the disk by strong light bending. The switch changes only the emissivity profile; the non-relativistic reflection spectrum is still computed as if the incident radiation were a Comptonized power law. The paper's comparison is a controlled switch of this flag on three high-quality NuSTAR spectra.
What would settle it
Fit the same NuSTAR spectra with a model that treats the returning radiation self-consistently in the non-relativistic reflection spectrum, as in Refs. [43,44], and compare the best-fit $a_*$ and $h$ with the `returnrad = 1` relxill results; a significant shift would show that the emissivity-only implementation hides the effect.
Extended reading notes
Core claim
The paper's central claim is that including the returning radiation in `relxilllpCp` leaves the inferred parameters statistically unchanged for these three Galactic black holes. For GX 339–4 the fit gives $a_* \approx 0.998$ and $h \approx 7.5 r_g$; for Swift J1658.2–4242, $a_* > 0.98$ and $h \approx 2 r_g$; for MAXI J1535–571, $a_* \approx 0.93$ and $h \approx 2 r_g$. These include exactly the conditions expected to maximize returning radiation (high spin, low corona), yet the values from fits with `returnrad = 0` and `returnrad = 1` are consistent at 90% confidence. The one systematic shift is a lower best-fit reflection fraction with returning radiation on, still marginally consistent with the off case. The paper does not claim the effect is negligible generally: it stresses that relxill includes the effect only in the emissivity profile and that a fuller treatment may change the estimates.
Load-bearing premise
The comparison assumes that putting the returning radiation into the emissivity profile only, while keeping the incident spectrum a Comptonized power law, captures the effect; the paper itself notes this approximation is expected to be worse for high spins and low coronal heights, which are exactly the conditions of two of the three sources.
Editorial extensions
If this is right
- For GX 339–4, Swift J1658.2–4242, and MAXI J1535–571, spin and coronal height measurements are consistent whether returning radiation is on or off, so existing relxill-based measurements of these sources are not overturned by the correction.
- The lower best-fit reflection fraction with returning radiation suggests that population-level reflection fraction estimates may shift slightly, though within current uncertainties.
- The fact that the effect stays small in the high-spin, low-corona regime means the omission is unlikely to explain any tension in spin constraints for similar Galactic black holes at NuSTAR quality.
- A faster implementation of the full treatment is needed before concluding that the approximation is safe beyond this sample.
Reading between the lines
- If the full self-consistent treatment changes parameter estimates, then current relxill-based spin catalogs could develop a systematic offset that grows with spin and shrinks with coronal height; that would only be visible in a mock-injection comparison, not in the single-source consistency shown here.
- Polarimetric observations may be a more sensitive test of returning radiation than the spectral parameters considered here; the paper cites a Cygnus X-1 polarization study showing soft X-ray polarization dominated by returning reflection, so combined spectral-polarimetric fits could reveal the effect even when best-fit spectral parameters do not move.
- Because two of the three sources pin the coronal height at the lower model boundary, the parameter space with the largest expected effect is only partially explored; allowing even lower heights or different coronal geometries in the model might bring the effect into view.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper fits high-quality NuSTAR (and Swift for one source) spectra of three Galactic black holes—GX 339-4, Swift J1658.2-4242, and MAXI J1535-571—using the lamppost model relxilllpCp, first with the returning-radiation switch off (returnrad=0) and then on (returnrad=1). For each source the best-fit parameters (spin, coronal height, iron abundance, reflection fraction, etc.) are compared with 90% confidence intervals. The central finding is that the parameters are statistically consistent between the two versions, even for sources with high spin and low coronal height, where returning radiation is expected to be most important. The paper also discusses the approximation in the relxill implementation, noting that only the emissivity profile is modified and the non-relativistic reflection spectrum is still computed assuming a Comptonized incident spectrum.
Significance. If read as a test of the current relxill implementation, the result is useful: it shows that, for these spectra, toggling the emissivity-only returning-radiation correction produces no significant change in the inferred parameters. The paper is transparent about the model's limitations and cites the relevant literature on where the approximation should break down. However, because the implementation excludes the spectral reprocessing of the returning radiation, the broader physical conclusion about returning radiation is not established. The study illustrates an important caveat for the reflection-spectroscopy community, but the interpretation in the abstract and title should be scoped more carefully.
major comments (3)
- [Section V, final paragraph; Abstract] The conclusion that returning radiation has no significant impact on the measured parameters is not established for the full physical effect. As the authors state, the relxill model includes the returning radiation only in the emissivity profile and still computes the non-relativistic reflection spectrum assuming that the incident radiation is a Comptonized power law. They also cite Ref. [43] showing this approximation is expected to work poorly for high spin and low coronal height—exactly the regime of Swift J1658.2-4242 and MAXI J1535-571. Therefore the observed agreement between returnrad=0 and returnrad=1 may only demonstrate that the emissivity-only correction is unimportant in the fits, not that the full returning-radiation effect is unimportant. The abstract and title should be explicitly restricted to the relxill implementation, or the interpretation should be revised to avoid overgeneralizing.
- [Tables IV and V; Section IV.B] The sensitivity of the test is limited by parameter boundaries. For Swift J1658.2-4242 and MAXI J1535-571, the coronal height is pinned at the lower boundary (h=2 rg), and for Swift J1658.2-4242 and GX 339-4 the spin is pinned at the upper boundary (a*=0.998). The fits therefore cannot explore the strongest light-bending regime, and the statement that these sources 'should maximize the effect' is only partially realized. The paper should quantify the fraction of the relevant parameter space that is excluded by these boundaries and discuss how this truncation affects the strength of the null result.
- [Tables IV and V] The claim of 'no significant difference' rests on overlapping 90% confidence intervals, but for key parameters those intervals are broad or one-sided. For example, a* for Swift J1658.2-4242 is 0.998-0.13, and h for the two low-corona sources has only an upper uncertainty. A more direct quantitative comparison, such as the change in chi-square for a fixed parameter or a confidence level for the parameter shift, would make the sensitivity of the test more explicit and strengthen the conclusion.
minor comments (4)
- [Section I] There is a typo in the passage 'in the case of a lamppost corona a, h ≲ 5 rg': the stray 'a,' should be removed or replaced, e.g., 'in the case of a lamppost corona h ≲ 5 rg.'
- [Section IV.B and Table III] The kerrbb normalization is not reported in Table III; providing it would improve reproducibility, since the disk component is part of the spectral model.
- [Tables III-V] The small chi-square differences between the returnrad=0 and returnrad=1 fits (Δχ2 ≈ 1.4-1.7 for comparable dof) are a useful quantitative summary of the null result and could be highlighted in the text or table.
- [Figures 2-4] The residual panels show data-to-model ratios with a limited vertical scale; using chi-squared residuals might better reveal systematic residual features, particularly around the iron line and Compton hump.
Circularity Check
No significant circularity; the paper reports an empirical model-comparison with its main caveat explicitly disclosed.
full rationale
The paper's central claim is that fitting three NuSTAR spectra with relxilllpCp in the lamppost geometry yields statistically consistent parameter estimates whether the returnrad switch is off or on. This is an empirical, data-driven comparison between two versions of an existing spectral model, not a derivation in which an output is defined as an input. The value of a*, h, AFe, and Rf are free parameters in both fits, and the 'prediction' of no significant difference is read directly from the fitted distributions, so no fitted quantity is being relabeled as a prediction. The returning-radiation implementation is taken from the relxill package (Ref. [39], a code paper co-authored by one of the present authors), but the paper does not use that implementation as evidence for its conclusion; it merely uses it as the tool under test. The most important caveat, that in relxill the returning radiation changes only the emissivity profile and not the reflected continuum, is stated verbatim in Section V, and the authors explicitly cite Ref. [43] to warn that this approximation is not expected to work well for the high-spin, low-corona regime occupied by their sources. The final sentence of the paper even concedes that a fuller model might change some parameter estimates. That is a limitation on scope and accuracy, not circular reasoning. Self-citations to Refs. [39] and [43,44] are normal and are not load-bearing: they document the model and quantify its limitations rather than justifying the paper's conclusion. No equation in the paper reduces a claimed output to a fitted input, and no uniqueness theorem or prior author-defined ansatz is invoked to force the result. The appropriate finding is therefore a low circularity score consistent with the paper's self-contained, empirical nature.
Assumptions & free parameters
free parameters (5)
- Black hole spin a* =
0.998 (GX 339-4 and Swift J1658, upper boundary), 0.928 to 0.933 (MAXI J1535)
- Coronal height h [rg] =
7.5 to 7.6 (GX 339-4), 2.0 (Swift J1658, lower boundary), 2.0 (MAXI J1535, lower boundary)
- Iron abundance A_Fe =
10 (GX 339-4, upper boundary), 0.5 (Swift J1658), 0.73 to 0.84 (MAXI J1535)
- Reflection fraction Rf =
0.91 to 0.77 (GX 339-4), 1.7 to 1.02 (Swift J1658), 1.4 to 1.05 (MAXI J1535)
- Other relxill fit parameters (Gamma, kTe, ionization, disk density, normalizations) =
Varies per source (see Tables III to V)
assumptions (5)
- domain assumption The lamppost geometry (point-like, static, isotropic corona on the spin axis) is an adequate description of the X-ray corona for these sources.
- domain assumption The relxill v2.0 non-relativistic reflection spectrum is computed correctly when returning radiation is ignored.
- ad hoc to paper The effect of returning radiation is adequately captured by modifying only the emissivity profile of the lamppost corona, leaving the non-relativistic reflection spectrum unchanged.
- domain assumption The inner edge of the accretion disk is at the ISCO and the disk is a standard thin disk.
- domain assumption Overlapping 90% confidence intervals from the XSPEC 'error' command imply that the two fits are statistically consistent.
Cite this review
Pith. "Pith review of Impact of the returning radiation on X-ray reflection spectroscopy measurements: the case of Galactic black holes." pith.science (2026). https://pith.science/paper/FZV3UPJ6
@misc{pith2026250111212,
author = {Pith},
title = {Pith review of: Impact of the returning radiation on X-ray reflection spectroscopy measurements: the case of Galactic black holes},
year = {2026},
howpublished = {\url{https://pith.science/paper/FZV3UPJ6}},
note = {Machine review of arXiv:2501.11212}
}
read the original abstract
The effect of the returning radiation has long been ignored in the analysis of the reflection spectra of Galactic black holes and active galactic nuclei and only recently has been implemented in the relxill package. Here we present a study on the impact of the returning radiation on the estimate of the parameters of Galactic black holes. We consider high-quality NuSTAR spectra of three Galactic black holes (GX 339-4, Swift J1658.2-4242, and MAXI J1535-571) and we fit the data with the lamppost model in the latest version of relxill, first without including the returning radiation and then including the returning radiation. We do not find any significant difference in the estimate of the parameters of these systems between the two cases, even if all three sources are fast-rotating black holes and for two sources the estimate of the height of the corona is very low, two ingredients that should maximize the effect of the returning radiation. We discuss our results and the approximations in relxill.
Figures
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Reference graph
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Reviewed August 10, 2026 · model on record in the stance chip above.
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