REVIEW 3 major objections 3 minor 57 references
Serendipitous VERITAS upper limits on the low-luminosity AGN NGC 4278 place its very-high-energy gamma-ray peak between 100 GeV and 2 TeV and make a coronal proton model a viable explanation.
Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →
T0 review · deepseek-v4-flash
2026-08-04 05:46 UTC pith:BZ2B3GIA
load-bearing objection Solid VERITAS upper limits on NGC 4278, but the headline index constraint rests on an unverified sampling assumption and the corona model is explicitly illustrative—worth a careful referee, not a desk reject. the 3 major comments →
VERITAS Observations Contemporaneous with the LHAASO Detection of NGC 4278
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
The central claim is that the quasi-quiet very-high-energy spectrum of NGC 4278 is harder than a simple extrapolation of LHAASO's power law allows, with the spectral index constrained to Gamma < 3.13 at 95% confidence, and that the peak of the gamma-ray spectral energy distribution lies between 100 GeV and 2 TeV. The paper further claims that this peak can be produced by photohadronic interactions of ~20 TeV protons with ~10 keV X-ray photons in the AGN corona, without the need for relativistic jet boosting, and that the secondary electrons from pion decay naturally produce the observed hard X-ray component.
What carries the argument
The argument rests on two pieces. First, the VERITAS flux upper limit of 8.3e-9 TeV^-1 m^-2 s^-1 at 680 GeV in the quasi-quiet state, obtained from 6.53 hours of serendipitous observations, which is used in a log-parabolic fit to the LHAASO and Fermi-LAT data to bracket the SED peak. Second, the analytic corona model: protons accelerated to ~20 TeV interact with ~10 keV synchrotron X-ray photons through the Delta resonance, producing pions that decay into gamma rays, neutrinos, and electron-positron pairs; the pairs cool by synchrotron emission and re-inject hard X-rays, providing a self-amplifying target photon field.
Load-bearing premise
The 6.53 hours of VERITAS exposure spread over roughly a year are assumed to represent the average flux of the entire quasi-quiet state, so that the upper limit can be combined with the time-averaged LHAASO spectrum to constrain the spectral index.
What would settle it
A longer, deeper observation with an imaging Cherenkov telescope that detects NGC 4278 in the quasi-quiet state at a flux above the reported upper limit would falsify the index constraint; alternatively, if a future SED fit places the gamma-ray peak outside 100 GeV–2 TeV, or if a stacked search of similar low-luminosity AGN finds no neutrino signal matching the hadronic prediction, the coronal p-gamma interpretation would need revision.
If this is right
- The VHE gamma-ray peak of NGC 4278 lies in a band where both VERITAS and future Cherenkov telescopes are sensitive, so a firm detection or deeper upper limit can directly test the predicted index constraint.
- The hadronic corona model predicts a neutrino spectrum that, though below IceCube's steady sensitivity, could be probed with stacked low-luminosity AGN samples or future neutrino telescopes.
- If the peak is genuinely at a few hundred GeV, LHAASO's detection in the 1–20 TeV band requires a relatively hard tail, implying a specific high-energy cutoff in the proton spectrum.
- The model provides a self-consistent explanation for the historically puzzling hard X-ray spectrum of NGC 4278 as synchrotron radiation from secondary pairs rather than intrinsic jet emission.
Where Pith is reading between the lines
- The same coronal p-gamma mechanism might apply to other low-luminosity AGN with hard X-ray peaks, making the class a population of faint, transient TeV emitters worth targeting in future surveys.
- If the quasi-quiet state is not actually steady at the level probed by the 6.53 hours of VERITAS exposure, the index constraint and peak location could shift; a dedicated monitoring campaign could test this.
- The paper's assumption that the two LHAASO quasi-quiet points share the active-state curvature is fragile; a future observation with more quasi-quiet flux points could confirm or alter the peak bracket.
- The model's implication that the neutrino flux at ~100 TeV is comparable to that of NGC 1068 suggests that high-energy neutrino telescopes might distinguish hadronic corona models from leptonic jet models by looking for a spectral crossover.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper reports VERITAS observations of the LLAGN NGC 4278 that are contemporaneous with the LHAASO detection of 1LHAASO J1219+2915. NGC 4278 is not detected; 95% CL flux upper limits are derived for active and quasi-quiet states (Table 1). Combining the quasi-quiet VERITAS upper limit with LHAASO and Fermi-LAT data, the authors infer that the power-law index of the quasi-quiet VHE spectrum must be Gamma < 3.13 (if VERITAS samples the state average), and that the SED peak lies between 100 GeV and 2 TeV. They then present an illustrative hadronic corona model with p-gamma interactions that can simultaneously produce hard X-rays and TeV gamma rays, with neutrinos slightly below IceCube sensitivity.
Significance. The observational core is standard and reliable: the analysis uses reflected-region background estimation, Li&Ma significances, and is cross-checked with an independent analysis package. The upper limits at ~280 GeV are more constraining than Fermi-LAT for this source and are a useful new data point. The authors are careful to label their corona model as illustrative and to state the main assumptions. If the temporal averaging assumption is justified, the Gamma < 3.13 constraint and the SED peak bracket would be the first meaningful VHE spectral constraints for a quasi-quiet LLAGN and would favor models in which the VHE component peaks below the LHAASO band.
major comments (3)
- [§5 (Spectral Energy Distribution)] Section 5 states 'Under the assumption that the VERITAS observations probe the average flux during this state, the power-law index cannot exceed 3.13...' This assumption is load-bearing: the VERITAS quasi-quiet exposure (6.53 h over MJD 59280–59697) covers only the pre-active part and ~3.5 months after the active window, while the LHAASO quasi-quiet state spans MJD 59278–60248. The source shows factor ~4 active/quiet contrast, so unresolved variability within the quiet state could make the VERITAS sample unrepresentative of the time-averaged LHAASO spectrum. The constraint may be artificially strong if the state-average flux is higher. Please either justify representativeness with LHAASO light-curve data restricted to the VERITAS windows or explicitly downgrade the claim to a time-averaged upper limit that is not directly comparable to the LHAASO state average.
- [§5 log-parabolic fit] The log-parabolic fit treats the VERITAS upper limit by 'assuming that it represents a flux of zero, with an uncertainty that is half of the flux upper limit.' This ad hoc replacement can bias the fitted curvature and hence the reported 100 GeV–2 TeV peak range. It is also unclear whether the active-period VERITAS limit (Table 1, 1e-7) or quasi-quiet limit (8.3e-9) was used. A proper likelihood (e.g., including the upper limit as a censored data point) and a sensitivity test should be reported before the peak bracket is used in the conclusions.
- [§5, Table 2] The text says Fermi-LAT 'provides spectral fluxes even when they are of low significance, and these were included in the fit,' yet Table 2 reports only 95% upper limits. If low-significance flux points are used as measurements, the fit may be biased; if only upper limits are used, the procedure should be stated. Please clarify and, if fluxes are used, report their values and significances.
minor comments (3)
- [Abstract] The abstract's statement that 'The flux upper limits constrain the photon spectrum of the quasi-quiet period' omits the temporal-representativeness caveat made explicit in §5. The abstract should carry the same conditionality as the body text.
- [§6.1] Typo: 'should not not be limited by the infall time' should be 'should not be limited by the infall time.' Also 'implicitely' should be 'implicitly.'
- [Figure 1] Consider adding a scale bar or a clear angular-size annotation; the point spread function is shown, but the source separation from the 3.1σ fluctuation at 0.15° is easier to judge with an explicit angular scale.
Circularity Check
No significant circularity: the core results are independent data products and the corona model is explicitly illustrative, not a fitted prediction.
full rationale
The paper's main quantitative results are independent of its interpretive model. The VERITAS upper limit is a null-detection measurement; the Γ<3.13 statement is conditional on an explicitly stated empirical assumption about flux representativeness ('Under the assumption that the VERITAS observations probe the average flux during this state'), not on a parameter fitted from LHAASO. The log-parabolic SED fit is a least-squares fit to independent Fermi-LAT and LHAASO data, with the VERITAS upper limit folded in as a pseudo-measurement; this is statistically crude but not circular. The corona interpretation is self-labeled as an example rather than a prediction: 'We emphasize that both the gamma-ray spectrum and the input X-ray and particle spectra used to compute it really are examples and not a model prediction.' The model uses observed X-rays as input and checks consistency (e.g., secondary-electron synchrotron comparable to hard X-rays), rather than deriving the data from itself. Self-citations in the paper concern VERITAS instrument calibration, reconstruction, and analysis cross-checks; none is load-bearing or invoked to forbid alternatives. No fitted parameter is renamed as a prediction, and no uniqueness theorem is imported from the authors.
Axiom & Free-Parameter Ledger
free parameters (7)
- Proton injection spectrum (normalization, index, break energy) =
N_p proportional to E^-2.2 (1 + E/15 TeV)^2 (Eq. 5); normalization set to match observed gamma-ray flux
- Emission-region radius R_15 = R / 10^15 cm =
R = 10^15 cm (R_15 = 1)
- Magnetic field B =
greater than about 4 G (for R_15 = 1) via Eq. 9; 30 mG in the SSC-consistent variant
- Neutrino spectrum normalization at 1 TeV =
2x10^-12 TeV^-1 cm^-2 s^-1 (active); 3x10^-13 (quasi-quiet)
- Log-parabolic SED parameters F_0, Gamma, b =
F_0 = (7.6 +/- 1.3) x 10^-10 ph TeV^-1 cm^-2 s^-1; Gamma = 2.66 +/- 0.21; b = 0.125 +/- 0.048 (95% CI)
- X-ray target photon spectrum shape (index -1.8, cutoff 150 keV) =
N_X proportional to E^-1.8 exp(-E/150 keV) (Eq. 4)
- Luminosity distance to NGC 4278 =
about 13 Mpc (CMB-frame / redshift-independent estimates)
axioms (8)
- standard math Delta-resonance p-gamma kinematics: proton energy about 20 TeV for target photons about 10 keV (Eq. 1)
- domain assumption Optically thin emission zone; pair-production opacity below unity for R_15 greater than about 0.01
- standard math Inelasticity K = 0.2 and sigma_p-gamma about 5x10^-28 cm^2 for the energy-loss time (Eq. 6)
- domain assumption Bohm diffusion in a fully turbulent B about 4 G field bounds the escape time (Eq. 8)
- domain assumption Magnetic energy influx at least the observed nonthermal luminosity (Eq. 9) and a magnetically supported corona
- domain assumption Most optical emission originates outside the gamma-ray emission zone
- domain assumption 1LHAASO J1219+2915 is correctly associated with NGC 4278 and the active/quasi-quiet split (MJD 59449-59589) is correct
- domain assumption Quasi-quiet VERITAS exposure samples the average quiet-state flux
read the original abstract
Significant gamma-ray emission between 1 TeV and 20 TeV from a point source, 1LHAASO J1219+2915, consistent with the location of the LINER/LLAGN galaxy NGC 4278 was recently reported by the LHAASO collaboration. These data were later split into active and quasi-quiet states, with most of the LHAASO significance coming from the active state (MJD 59449-59589). Subsequent analysis of Fermi-LAT and Swift-XRT observations have been used to explore the double-peaked broad-band emission. Models of the spectral energy distribution (SED) are currently unconstrained due to the lack of contemporaneous multi-wavelength data at either peak. Here we report serendipitous observations of NGC 4278 with VERITAS, made possible by the contemporaneous observations of the nearby blazars 1ES 1218+304, 1ES 1215+303, and W Comae, each of which are located within $2^\circ$ of NGC 4278. VERITAS did not detect any gamma-ray emission and a flux upper limit was calculated. The flux upper limits constrain the photon spectrum of the quasi-quiet period, and together with Fermi-LAT, indicate a peak in the SED between 100 GeV and 2 TeV. We present an interpretation of the broadband SED that is based on acceleration of protons in the corona of the AGN, followed by p-$\gamma$ interactions and optically thin $\gamma$-ray emission. Within this framework, the implied neutrino signal is slightly below the current sensitivity of IceCube.
Figures
Reference graph
Works this paper leans on
-
[1]
2020, ApJS, 247, 33, doi: 10.3847/1538-4365/ab6bcb
Abdollahi, S., Acero, F., Ackermann, M., et al. 2020, ApJS, 247, 33, doi: 10.3847/1538-4365/ab6bcb
-
[2]
A., Aliu, E., Beilicke, M., et al
Acciari, V. A., Aliu, E., Beilicke, M., et al. 2008, ApJL, 684, L73, doi: 10.1086/592244
-
[3]
Acharyya, A., Adams, C. B., Archer, A., et al. 2023, ApJ, 954, 70, doi: 10.3847/1538-4357/ace327
-
[4]
B., Benbow, W., Brill, A., et al
Adams, C. B., Benbow, W., Brill, A., et al. 2022, A&A, 658, A83, doi: 10.1051/0004-6361/202142275
-
[5]
2019, arXiv e-prints, arXiv:1902.08429, doi: 10.48550/arXiv.1902.08429
Albert, A., Alfaro, R., Ashkar, H., et al. 2019, arXiv e-prints, arXiv:1902.08429, doi: 10.48550/arXiv.1902.08429
-
[6]
2013, arXiv e-prints, arXiv:1303.3514, doi: 10.48550/arXiv.1303.3514
Atwood, W., Albert, A., Baldini, L., et al. 2013, arXiv e-prints, arXiv:1303.3514, doi: 10.48550/arXiv.1303.3514
-
[7]
H., Lott, B., & The Fermi-LAT collaboration
Ballet, J., Bruel, P., Burnett, T. H., Lott, B., & The Fermi-LAT collaboration. 2023, arXiv e-prints, arXiv:2307.12546, doi: 10.48550/arXiv.2307.12546
-
[8]
Ballet, J., Burnett, T. H., Digel, S. W., & Lott, B. 2020, arXiv e-prints, arXiv:2005.11208, doi: 10.48550/arXiv.2005.11208
-
[9]
2007, A&A, 466, 1219, doi: 10.1051/0004-6361:20066674
Berge, D., Funk, S., & Hinton, J. 2007, A&A, 466, 1219, doi: 10.1051/0004-6361:20066674
-
[10]
Blaufuss, E., Kintscher, T., Lu, L., & Tung, C. F. 2019,
2019
-
[11]
PoS, ICRC2019, 1021, doi: 10.22323/1.358.1021
-
[12]
2024, private communication
Bronzini, E. 2024, private communication
2024
-
[13]
Fermi-LAT detection of the low-luminosity radio galaxy NGC 4278 during the LHAASO campaign
Bronzini, E., Grandi, P., Torresi, E., & Buson, S. 2024, arXiv e-prints, arXiv:2409.17255, doi: 10.48550/arXiv.2409.17255
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.2409.17255 2024
-
[14]
2019, A&A, 627, A13, doi: 10.1051/0004-6361/201834143
Bulgarelli, A., Fioretti, V., Parmiggiani, N., et al. 2019, A&A, 627, A13, doi: 10.1051/0004-6361/201834143
-
[15]
2024a, ApJS, 271, 25, doi: 10.3847/1538-4365/acfd29
Cao, Z., Aharonian, F., An, Q., et al. 2024a, ApJS, 271, 25, doi: 10.3847/1538-4365/acfd29
-
[16]
2024b, ApJL, 971, L45, doi: 10.3847/2041-8213/ad5e6d
Cao, Z., Aharonian, F., Axikegu, et al. 2024b, ApJL, 971, L45, doi: 10.3847/2041-8213/ad5e6d
-
[17]
Chen, S., Das, A., Zhang, B. T., et al. 2026, Physical origin of very-high-energy gamma rays from the low-luminosity active galactic nucleus NGC 4278 and implications for neutrino observations, https://arxiv.org/abs/2601.23242 Cherenkov Telescope Array Consortium, Acharya, B. S.,
arXiv 2026
-
[18]
2019, Science with the Cherenkov Telescope Array, doi: 10.1142/10986
Agudo, I., et al. 2019, Science with the Cherenkov Telescope Array, doi: 10.1142/10986
doi:10.1142/10986 2019
-
[19]
2017, in International Cosmic Ray
Christiansen, J. 2017, in International Cosmic Ray
2017
-
[20]
301, 35th International Cosmic Ray Conference (ICRC2017), 789, doi: 10.22323/1.301.0789
Conference, Vol. 301, 35th International Cosmic Ray Conference (ICRC2017), 789, doi: 10.22323/1.301.0789
-
[21]
2008, in International Cosmic Ray Conference, Vol
Cogan, P. 2008, in International Cosmic Ray Conference, Vol. 3, International Cosmic Ray Conference, 1385–1388, doi: 10.48550/arXiv.0709.4233
-
[22]
Comisso, L., & Sironi, L. 2019, The Astrophysical Journal, 886, 122, doi: 10.3847/1538-4357/ab4c33 de Vaucouleurs, G., de Vaucouleurs, A., Corwin, Jr., H. G., et al. 1991, Third Reference Catalogue of Bright Galaxies
-
[23]
2024, ApJ, 974, 56, doi: 10.3847/1538-4357/ad6d65
Dutta, S., & Gupta, N. 2024, ApJ, 974, 56, doi: 10.3847/1538-4357/ad6d65
-
[24]
Relativistic Jets in Radio-Weak Quasars and LINER Galaxies
Falcke, H., Wilson, A. S., & Ho, L. C. 1997, in Relativistic Jets in AGNs, ed. M. Ostrowski, M. Sikora, G. Madejski, & M. Begelman, 13–19, doi: 10.48550/arXiv.astro-ph/9708126 11
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.astro-ph/9708126 1997
-
[25]
Fiorillo, D. F. G., Comisso, L., Peretti, E., Petropoulou, M., & Sironi, L. 2024a, ApJ, 974, 75, doi: 10.3847/1538-4357/ad7021
-
[26]
Fiorillo, D. F. G., Petropoulou, M., Comisso, L., Peretti, E., & Sironi, L. 2024b, ApJL, 961, L14, doi: 10.3847/2041-8213/ad192b
-
[27]
P., Lamb, R
Fomin, V. P., Lamb, R. C., Lewis, D. A., & Punch, M. 1991, in International Cosmic Ray Conference, Vol. 1, International Cosmic Ray Conference, 468
1991
-
[28]
Gaisser, T. K., Halzen, F., & Stanev, T. 1995, PhR, 258, 173, doi: 10.1016/0370-1573(95)00003-Y
-
[29]
2019, Nature Astronomy, 3, 88, doi: 10.1038/s41550-018-0610-1
Gao, S., Fedynitch, A., Winter, W., & Pohl, M. 2019, Nature Astronomy, 3, 88, doi: 10.1038/s41550-018-0610-1
-
[30]
2017, The Astrophysical Journal, 843, 109, doi: 10.3847/1538-4357/aa7754
Gao, S., Pohl, M., & Winter, W. 2017, The Astrophysical Journal, 843, 109, doi: 10.3847/1538-4357/aa7754
-
[31]
Giroletti, M., Taylor, G. B., & Giovannini, G. 2005, ApJ, 622, 178, doi: 10.1086/427898
doi:10.1086/427898 2005
-
[32]
Hartman, R. C., Bertsch, D. L., Bloom, S. D., et al. 1999, ApJS, 123, 79, doi: 10.1086/313231
doi:10.1086/313231 1999
-
[33]
Heckman, T. M. 1980, A&A, 87, 152
1980
-
[34]
Holder, J., Atkins, R. W., Badran, H. M., et al. 2006, Astroparticle Physics, 25, 391, doi: 10.1016/j.astropartphys.2006.04.002 H¨ ummer, S., R¨ uger, M., Spanier, F., & Winter, W. 2010, ApJ, 721, 630, doi: 10.1088/0004-637X/721/1/630 IceCube Collaboration, Abbasi, R., Ackermann, M., et al. 2022, Science, 378, 538, doi: 10.1126/science.abg3395
-
[35]
2024, PASJ, 76, 996, doi: 10.1093/pasj/psae065
Inoue, Y., Takasao, S., & Khangulyan, D. 2024, PASJ, 76, 996, doi: 10.1093/pasj/psae065
-
[36]
Jiang, Y.-F., Stone, J. M., & Davis, S. W. 2014, ApJ, 784, 169, doi: 10.1088/0004-637X/784/2/169
-
[37]
2012, MNRAS, 420, 1825, doi: 10.1111/j.1365-2966.2011.19805.x
Jin, C., Ward, M., Done, C., & Gelbord, J. 2012, MNRAS, 420, 1825, doi: 10.1111/j.1365-2966.2011.19805.x
arXiv 2012
-
[38]
Kempski, P., Fielding, D. B., Quataert, E., et al. 2023, MNRAS, 525, 4985, doi: 10.1093/mnras/stad2609
-
[39]
Kiehlmann, S., Lister, M. L., Readhead, A. C. S., et al. 2024, ApJ, 961, 240, doi: 10.3847/1538-4357/ad0c56
-
[40]
2021, PhRvD, 104, 063020, doi: 10.1103/PhysRevD.104.063020
Lemoine, M. 2021, PhRvD, 104, 063020, doi: 10.1103/PhysRevD.104.063020
-
[41]
2023, Journal of Plasma Physics, 89, 175890501, doi: 10.1017/S0022377823000946
Lemoine, M. 2023, Journal of Plasma Physics, 89, 175890501, doi: 10.1017/S0022377823000946
-
[42]
2025, PhRvE, 112, 015205, doi: 10.1103/3xxg-x5dg
Lemoine, M. 2025, PhRvE, 112, 015205, doi: 10.1103/3xxg-x5dg
-
[43]
2025, A&A, 697, A124, doi: 10.1051/0004-6361/202453296
Lemoine, M., & Rieger, F. 2025, A&A, 697, A124, doi: 10.1051/0004-6361/202453296
- [44]
-
[45]
2024, ApJ, 974, 134, doi: 10.3847/1538-4357/ad6e81
Lian, J.-S., Li, J.-X., Hu, X.-K., et al. 2024, ApJ, 974, 134, doi: 10.3847/1538-4357/ad6e81
-
[46]
2017, in International Cosmic Ray
Maier, G., & Holder, J. 2017, in International Cosmic Ray
2017
-
[47]
Conference, Vol. 301, 35th International Cosmic Ray Conference (ICRC2017), 747, doi: 10.22323/1.301.0747 M¨ ucke, A., Engel, R., Rachen, J. P., Protheroe, R. J., &
-
[48]
2000, Computer Physics Communications, 124, 290, doi: 10.1016/S0010-4655(99)00446-4
Stanev, T. 2000, Computer Physics Communications, 124, 290, doi: 10.1016/S0010-4655(99)00446-4
-
[49]
2025, arXiv e-prints, arXiv:2507.02326, doi: 10.48550/arXiv.2507.02326
Shoji, A., Fujita, Y., Kawanaka, N., Inoue, S., & Nishiwaki, K. 2025, arXiv e-prints, arXiv:2507.02326, doi: 10.48550/arXiv.2507.02326
-
[50]
Tremblay, S. E., Taylor, G. B., Ortiz, A. A., et al. 2016, MNRAS, 459, 820, doi: 10.1093/mnras/stw592
-
[51]
2015, in International Cosmic Ray Conference, Vol
Vievering, J., & VERITAS Collaboration. 2015, in International Cosmic Ray Conference, Vol. 34, 34th International Cosmic Ray Conference (ICRC2015), 802, doi: 10.22323/1.236.0802
-
[52]
P., & Horan, D
Wakely, S. P., & Horan, D. 2008, International Cosmic Ray Conference, 3, 1341
2008
-
[53]
2003, MNRAS, 340, 793, doi: 10.1046/j.1365-8711.2003.06336.x
Wang, T.-G., & Zhang, X.-G. 2003, MNRAS, 340, 793, doi: 10.1046/j.1365-8711.2003.06336.x
arXiv 2003
-
[54]
2024, ApJS, 271, 10, doi: 10.3847/1538-4365/ad168c
Wang, Z.-R., Xue, R., Xiong, D., et al. 2024, ApJS, 271, 10, doi: 10.3847/1538-4365/ad168c
-
[55]
2017, in International Cosmic Ray Conference, Vol
Wood, M., Caputo, R., Charles, E., et al. 2017, in International Cosmic Ray Conference, Vol. 301, 35th International Cosmic Ray Conference (ICRC2017), 824, doi: 10.22323/1.301.0824
-
[56]
2010, A&A, 517, A33, doi: 10.1051/0004-6361/201014371
Younes, G., Porquet, D., Sabra, B., et al. 2010, A&A, 517, A33, doi: 10.1051/0004-6361/201014371
-
[57]
Yuan, C., & Liu, R.-Y. 2026, TeV Gamma-Rays from the Low-Luminosity Active Galactic Nucleus NGC 4278: Implications for the Diffuse Neutrino Background, https://arxiv.org/abs/2601.21411
Pith/arXiv arXiv 2026
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