Pith. sign in

REVIEW 3 major objections 5 minor 49 references

My friends and my path in physics

T0 review · 3 major / 5 minor · reviewed 2026-08-10 · deepseek-v4-flash

Pith's one-line read A personal physics memoir argues that the 1980s instanton vacuum theory nearly explained hadrons as excitations of the QCD vacuum.

desk verdict A sincere memoir of the instanton-vacuum community, not a research paper; fine for a memorial volume, no technical peer review needed. read the letter →

arxiv 2501.14842 v2 pith:XCYHV5QS submitted 2025-01-24 hep-ph physics.hist-ph

classification hep-phphysics.hist-ph
keywords QCDinstantonvacuumliquidmodelhadronstructureaxialanomalylow-energytheoremsquarkcondensateheavy-lightsystemsscientificmemoir
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 is a personal memoir, not a research article. The author's central recollection is that the instanton-based theory of the QCD vacuum developed in the 1980s was 'a real bomb' and brought its originators 'very close to the solution of the problem about quark-gluon structure of hadrons,' because hadrons are 'just excitations of the QCD vacuum.' He reports that his own tests of the axial anomaly low-energy theorems in that theory provided 'a convincing proof of the correctness' of the idea, and that later applications to heavy-light quark systems show that instanton-induced interactions are crucial. A sympathetic reader takes away a historical claim: for a moment in the mid-1980s, a single physical picture of the vacuum appeared to contain the explanation of hadron structure, with the anomaly theorems as the decisive check.

What carries the argument

The central object is the instanton vacuum of QCD: the picture in which the ground state is not empty but a liquid of topologically nontrivial gluon-field fluctuations (instantons) with a typical size and spacing, whose fermion zero modes generate chiral symmetry breaking, a dynamical constituent quark mass, and effective quark–quark interactions. The load-bearing mechanism is the conversion of the underlying QCD anomaly into low-energy theorems that can be checked; the memoir points to axial anomaly low-energy theorems as the test that confirmed the instanton vacuum, and to the instanton-generated interaction as the mechanism that makes heavy-light quark systems qualitatively different from heavy-heavy ones.

What would settle it

A concrete falsifier would be a lattice QCD calculation that determines the vacuum's topological susceptibility and instanton density and then shows the instanton-liquid model, with those parameters fixed, cannot reproduce the measured heavy-light meson spectrum or the axial anomaly low-energy theorems.

Watch

Extended reading notes

Core claim

On the paper's own terms, the discovery is not new physics but a stated near-solution: the QCD vacuum should be modeled as an ensemble of instantons, and all hadrons, as excitations of that vacuum, should follow from it. The author calls the founding papers 'a real bomb' and says their authors were 'very close to the solution of the problem about quark-gluon structure of hadrons.' The paper's supporting evidence is reported, not derived: the axial anomaly low-energy theorems hold in the instanton vacuum, which the author takes as 'a convincing proof of the correctness' of the theory, and later studies of heavy and heavy-light quark systems show that instanton-induced interactions play a crucial role.

Load-bearing premise

The load-bearing premise is that the QCD vacuum is genuinely an instanton liquid and that the author's recollections about the course and significance of the work are accurate.

Editorial extensions

If this is right

  • If hadrons are excitations of the instanton vacuum, hadron masses, pion–hadron interactions, and nucleon properties should be calculable from vacuum parameters without extra parameters.
  • The axial anomaly low-energy theorems act as a filter: any candidate vacuum description must reproduce them, and the memoir reports that the instanton vacuum does.
  • Heavy-light quark systems should exhibit strong instanton-induced effects; recent results reported in the paper indicate these effects are 'crucial' for their physics.
  • Chiral perturbation theory low-energy constants, isospin-breaking constants, and the magnetic susceptibility of the vacuum are listed as quantities that the instanton vacuum can be used to compute.
  • The memoir's historical claim implies that the decisive content of a hadron-structure theory was already present in the mid-1980s papers, with later work refining and testing it.

Reading between the lines

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

  • If the recollection of being 'very close' is accurate, then a dedicated reconstruction of the mid-1980s instanton-vacuum program might reveal which missing step prevented the full theory of hadron structure, and whether modern lattice QCD supplies that step.
  • Modern lattice QCD determinations of the topological susceptibility, instanton density, and the spectrum of heavy-light mesons could quantitatively test whether the instanton liquid picture is the real vacuum or just a good effective model.
  • The paper does not discuss whether later exact solutions or alternative vacuum models supersede the instanton picture; a reader should treat the 'near-solution' claim as a personal assessment pending such comparison.
  • A testable extension would be to derive the heavy-light spectrum from the instanton liquid with one fixed set of vacuum parameters and compare to experiment, since the paper only states that instanton-induced interactions are crucial.
Share X Bluesky LinkedIn Reddit HN

Editorial analysis

A structured set of objections, weighed in public.

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

Referee Report

3 major / 5 minor

Summary. This short paper is a personal memoir by Mirzayusuf Musakhanov dedicated to Dmitry Diakonov, Viktor Petrov, and Maxim Polyakov. It recounts the author's scientific interactions with them from roughly 1980 to the present, organized into three periods: the 1980-88 development of QCD instanton vacuum ideas, the 1990-2000 tests of axial anomaly low-energy theorems and collaborations in Bochum, and the post-2000 application of the instanton vacuum to heavy-light quark systems. The text consists entirely of personal recollections, tributes, and lists of references, mostly to the author's own papers and those of Diakonov and Petrov. No derivations, data, or historical documentation are provided.

Significance. As a memorial contribution, the paper has human and historical interest: it records the author's firsthand recollections of meetings, seminars, and collaborations with three physicists, and it assembles a useful bibliography of related works. The paper also illustrates the scientific influence of the Diakonov-Petrov instanton vacuum framework within one research community. However, its scientific significance for a hep-ph journal is limited because it makes no testable claims, presents no quantitative evidence, and cannot be evaluated by the usual standards of soundness. The strongest assertions about the near-completeness of the instanton vacuum approach and about the proof of its correctness are stated without substantiation. These assertions are the part of the manuscript that most needs revision before publication.

major comments (3)
  1. [Section 2] The claim that Diakonov and Petrov were 'very close to the solution of the problem about quark-gluon structure of hadrons' is presented as a matter of fact, but the manuscript provides no supporting evidence or criteria for what would constitute such a solution. If this is an evaluation, it should be supported by specific results from refs. [15-22] or clearly labeled as a personal belief; as written, it is an unsubstantiated historical assertion.
  2. [Section 3] The phrase 'convincing proof of the correctness of Mitya's and Vitya's ideas about the QCD vacuum' overstates what the cited axial anomaly tests [23-25] can establish. Successful checks of low-energy axial anomaly theorems demonstrate consistency of the instanton vacuum model with certain QCD low-energy constraints; they do not prove uniqueness of the instanton vacuum or completeness of the framework as a theory of hadron structure. The wording should be weakened to 'tests consistent with' or should explicitly state the logical limits of such checks.
  3. [Section 4] The assertion that 'the role of interactions induced by instantons is crucial in the physics of systems consisting of heavy and light quarks' [49] is not supported within this manuscript. The author should either summarize the specific quantitative finding from ref. [49] that warrants this conclusion or frame the statement as a research perspective rather than an established result.
minor comments (5)
  1. [Title page] The affiliation line contains a typo: 'Uzbekist an' should read 'Uzbekistan'.
  2. [Section 2] The reference range '[15-18, 18-22]' lists [18] twice; if a continuous range is intended, '[15-22]' would be clearer.
  3. [Section 4] The section title 'the time of 2000-present time' is awkward and should be capitalized and rephrased, for example as 'The time from 2000 to the present'.
  4. [Section 4] The collaborator's name is written 'Huyn-Chul' once and 'Hyun-Chul' elsewhere; the spelling should be made uniform.
  5. [Section 5] The sentence 'It is a sad to recognize that they left us so early' contains a grammatical error; it should be 'It is sad to recognize' or 'It is sad that they left us so early'.

Circularity Check

0 steps flagged · score 0.0 of 10

No circularity: memoir has no derivation chain; axial-anomaly checks are external benchmarks.

full rationale

This is a personal memoir with no equations, no fitted parameters, and no predictive derivation. The closest thing to a scientific claim—that Diakonov and Petrov's instanton-vacuum papers were 'a real bomb' and that the authors were 'very close to the solution of the problem about quark-gluon structure of hadrons'—is a historical judgment, not a result derived in this paper. The axial-anomaly tests cited in Section 3 ('checking the fulfillment of the axial anomaly theorems in their theory [23–25]') are checks of the instanton-vacuum model against independent low-energy theorems of QCD; those theorems are external constraints, not outputs of the model being tested. Citing the author's own papers for these checks is self-citation, but it does not reduce a claimed derivation to its inputs, because no derivation is attempted here and the checks are externally falsifiable. The memoir's self-referential historical assessment is a style/genre issue, not a circularity. Therefore no circular step can be identified.

Assumptions & free parameters 0 free parameters · 2 assumptions · 0 invented entities

No new physics is proposed; the paper depends only on background assumptions about the instanton vacuum and on the reliability of the author's memory.

assumptions (2)
  • domain assumption The QCD instanton vacuum theory of Diakonov and Petrov is a valid description of the QCD vacuum, and its applications to hadron physics are reliable.
    The memoir recounts work in this framework without justifying it; e.g., Sections 2 and 3 assume the framework's correctness.
  • domain assumption The author's personal recollections about events, dates, and collaborations are accurate.
    The narrative relies entirely on memory; no external records are presented.

how reviews work

0 comments
Cite this review

Pith. "Pith review of My friends and my path in physics." pith.science (2026). https://pith.science/paper/XCYHV5QS

@misc{pith2026250114842,
  author       = {Pith},
  title        = {Pith review of: My friends and my path in physics},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/XCYHV5QS}},
  note         = {Machine review of arXiv:2501.14842}
}
read the original abstract

Dedication to my untimely departed friends, Dmitry Igorevich Diakonov, Viktor Yur'evich Petrov and Maxim Vladimirovich Polyakov.

Discussion (0). Continue with ORCID to comment.

Reference graph

Works this paper leans on

49 extracted references · 49 canonical work pages

  1. [49]

    Ki-Hoon Hong, Hyun-Chul Kim, M. M. Musakhanov, and N. Rakhim ov. Heavy-light quark systems from the QCD instanton vacuum: Nf=1 lig ht flavor case. Phys. Rev. D , 110(11):114044, 2024

  2. [1]

    M. M. Musakhanov. CHIRAL BAG MODEL. ITEP-179-1980

  3. [2]

    M. M. Musakhanov. Light Hadron Masses and Pion - Hadron Inter actions in Chiral Invariant ‘Bag’ Models. ITF-80-53P, 1980

  4. [3]

    M. M. Musakhanov. Masses of Light Hadrons and Pion Hadron Int eractions in Chiral Invariant Bag Model. (In Russian). Yad. Fiz., 33:810–816, 1981

  5. [4]

    M. M. Musakhanov. SPECTRUM OF LIGHT BARYONS AND BETA DE- CAY AXIAL CONSTANT IN CHIRAL BAG MODEL. (IN RUSSIAN). Yad. Fiz., 33:1621–1625, 1981. MityaVityaMaxim020225arxiv printed on February 4, 2025 3

  6. [5]

    M. M. Musakhanov. The Pion Baryon Interaction and Static Char acteristics of Baryons in Chiral Bag Model. (In Russian). Yad. Fiz., 34:1123–1129, 1981

  7. [6]

    Z. Z. Israilov and M. M. Musakhanov. Pion - Nucleon Scattering in t he Chiral Bag Model. Phys. Lett. B , 104:173–176, 1981

  8. [7]

    M. M. Musakhanov. THE CHIRAL BAG MODEL AND PROPERTIES OF THE PI N DELTA SYSTEM. (TALK). Czech. J. Phys. B , 32:248–251, 1982

Show all 49 references
  1. [8]

    Z. Z. Israilov and M. M. Musakhanov. ELECTROMAGNETIC PROPER TIES OF HADRONS AND PION - NUCLEON SCATTERING IN THE CHIRAL BAG. 2 1982

  2. [9]

    M. M. Musakhanov and Z. Z. Israilov. THE ELECTRIC DIPOLE MO- MENT OF THE NEUTRON IN THE CHIRAL BAG MODEL. Phys. Lett. B, 137:419–421, 1984

  3. [10]

    M. M. Musakhanov and Z. Z. Israilov. P ODD ASYMMETRY OF THE p p SCATTERING IN THE COMPOUND BAG MODEL. Z. Phys. C , 27:501, 1985

  4. [11]

    M. M. Musakhanov. PION BARYON INTERACTIONS IN A SOLITON CHIRAL BAG MODEL. JETP Lett. , 41:198–201, 1985

  5. [12]

    M. M. Musakhanov, P. K. Choudkhuri, and V. P. Isaev. On the r ole of small distances in the structure of the nucleon. Sov. J. Nucl. Phys. , 45:491–495, 1987

  6. [13]

    A. E. Dorokhov, Z. Kanokov, M. M. Musakhanov, and A. M. Rak himov. PION PHOTOPRODUCTION ON NUCLEON IN CHIRAL BAG MODEL WITH TAKING INTO ACCOUNT THE EFFECTS OF RECOIL NUCLEON MOTION. Sov. J. Nucl. Phys. , 50:100, 1989

  7. [14]

    M. M. Musakhanov and I. V. Musatov. Nucleon anti-nucleon ann ihilation in the chiral soliton model. Phys. Lett. B , 273:309–315, 1991

  8. [15]

    Dmitri Diakonov, V. Yu. Petrov, and A. V. Yung. QUASICLASSI CAL EXPANSION OF YANG-MILLS HEAT KERNELS AND APPROXIMATE CALCULATION OF FUNCTIONAL DETERMINANTS. Phys. Lett. B , 130:385–388, 1983

  9. [16]

    Dmitri Diakonov and V. Yu. Petrov. Instanton Based Vacuum f rom Feynman Variational Principle. Nucl. Phys. B , 245:259–292, 1984

  10. [17]

    Dmitri Diakonov, V. Yu. Petrov, and A. V. Yung. QUASICLASSI CAL EX- PANSION IN YANG-MILLS EXTERNAL FIELD AND APPROXIMATE CALCULATION OF FUNCTIONAL DETERMINANTS. (IN RUSSIAN). Sov. J. Nucl. Phys. , 39:150, 1984

  11. [18]

    Dmitri Diakonov and V. Yu. Petrov. CHIRAL CONDENSATE IN THE IN- STANTON V ACUUM. Phys. Lett. B , 147:351–356, 1984

  12. [19]

    Dmitri Diakonov and V. Yu. Petrov. V ARIATIONAL PRINCIPLE I N PROB- LEMS INVOL VING INSTANTONS. Sov. Phys. JETP , 59:13–20, 1984

  13. [20]

    Dmitri Diakonov and V. Yu. Petrov. A Theory of Light Quarks in t he Instan- ton Vacuum. Nucl. Phys. B , 272:457–489, 1986

  14. [21]

    Dmitri Diakonov, V. Yu. Petrov, and P. V. Pobylitsa. A Chiral Th eory of Nucleons. Nucl. Phys. B , 306:809, 1988. 4 MityaVityaMaxim020225arxiv printed on February 4, 2025

  15. [22]

    Dmitri Diakonov, V. Yu. Petrov, and P. V. Pobylitsa. Born Diagr ams in the Pion - Skyrmion Scattering. Phys. Lett. B , 205:372–376, 1988

  16. [23]

    M. M. Musakhanov and F. C. Khanna. The Axial anomaly and the c onver- sion of gluons into photons. In 11th Lake Louise Winter Institute: Topics in Electroweak Physics, pages 472–482, 2 1996

  17. [24]

    M. M. Musakhanov and F. C. Khanna. A Test of the instanton va cuum chiral quark model with axial anomaly low-energy theorems. Phys. Lett. B , 395:298– 306, 1997

  18. [25]

    M. M. Musakhanov and Hyun-Chul Kim. A Test of the instanton v acuum with low-energy theorems of the axial anomaly. Phys. Lett. B , 572:181–188, 2003

  19. [26]

    Musakhanov

    M. Musakhanov. Improved effective action for light quarks bey ond chiral limit. Eur. Phys. J. C , 9:235–243, 1999

  20. [27]

    Musakhanov

    M. Musakhanov. Light quarks beyond chiral limit. In 2nd ICTP International Conference on Perspectives in Hadronic Physics , pages 395–404, 5 1999

  21. [28]

    Musakhanov

    M. Musakhanov. Current mass dependence of the quark cond ensate and the constituent quark mass. AIP Conf. Proc. , 594(1):357, 2002

  22. [29]

    Musakhanov

    M. Musakhanov. Current mass dependence of the quark cond ensate in instan- ton vacuum. Nucl. Phys. A , 699:340–343, 2002

  23. [30]

    U. T. Yakhshiev, M. M. Musakhanov, and Hyun-Chul Kim. Is the re a crys- talline state of nuclear matter? Phys. Lett. B , 628:33–39, 2005

  24. [31]

    Musakhanov, and M

    Hyun-Chul Kim, M. Musakhanov, and M. Siddikov. Magnetic susc eptibility of the QCD vacuum. Phys. Lett. B , 608:95–106, 2005

  25. [32]

    Hyun-Chul Kim, M. M. Musakhanov, and M. Siddikov. Meson-loop contri- butions to the quark condensate from the instanton vacuum. Phys. Lett. B , 633:701–709, 2006

  26. [33]

    Goeke, M

    K. Goeke, M. M. Musakhanov, and M. Siddikov. Low energy cons tants of chi PT from the instanton vacuum model. Phys. Rev. D , 76:076007, 2007

  27. [34]

    Klaus Goeke, Hyun-Chul Kim, M. M. Musakhanov, and Marat Sidd ikov. 1/N(c) corrections to the magnetic susceptibility of the QCD vacuu m. Phys. Rev. D , 76:116007, 2007

  28. [35]

    Goeke, M

    K. Goeke, M. Musakhanov, and M. Siddikov. QCD isospin breaking ChPT low-energy constants from the instanton vacuum. Phys. Rev. D , 81:054029, 2010

  29. [36]

    Seung-il Nam, Hui-Young Ryu, M. M. Musakhanov, and Hyun-Ch ul Kim. Magnetic susceptibility of QCD vacuum at finite density. J. Korean Phys. Soc., 55:429–434, 2009

  30. [37]

    Musakhanov

    M. Musakhanov. Heavy and Light Quarks in the Instanton Vacu um. EPJ Web Conf. , 20:01004, 2012

  31. [38]

    Heavy-light quarks interactions in QC D vacuum

    Mirzayusuf Musakhanov. Heavy-light quarks interactions in QC D vacuum. PoS, BaldinISHEPPXXII:012, 2015

  32. [39]

    U. T. Yakhshiev, Hyun-Chul Kim, M. M. Musakhanov, Emiko Hiyam a, and B. Turimov. Instanton effects on the heavy-quark static potent ial. Chin. Phys. C, 41(8):083102, 2017. MityaVityaMaxim020225arxiv printed on February 4, 2025 5

  33. [40]

    Heavy-heavy and heavy-light quark s interactions generated by QCD vacuum

    Mirzayusuf Musakhanov. Heavy-heavy and heavy-light quark s interactions generated by QCD vacuum. EPJ Web Conf. , 137:03013, 2017

  34. [41]

    Musakhanov and O

    M. Musakhanov and O. Egamberdiev. Dynamical gluon mass in the instanton vacuum model. Phys. Lett. B , 779:206–209, 2018

  35. [42]

    Gluons, Heavy and Light Quarks in the QCD Vac- uum

    Mirzayusuf Musakhanov. Gluons, Heavy and Light Quarks in the QCD Vac- uum. EPJ Web Conf. , 182:02092, 2018

  36. [43]

    Musakhanov, Sh

    M. Musakhanov, Sh. Baratov, and N. Rakhimov. Dynamical gluo n mass at nonzero temperature in instanton vacuum model. Phys. Rev. D , 99(7):074005, 2019

  37. [44]

    M. M. Musakhanov and N. R. Rakhimov. Heavy quarkonium poten tial at nonzero temperature in the instanton liquid model. Int. J. Mod. Phys. Conf. Ser., 49:1960003, 2019

  38. [45]

    Musakhanov, N

    M. Musakhanov, N. Rakhimov, and U. T. Yakhshiev. Heavy quar k correlators in an instanton liquid model with perturbative corrections. Phys. Rev. D , 102(7):076022, 2020

  39. [46]

    Musakhanov and U

    M. Musakhanov and U. Yakhshiev. Gluons, light and heavy quark s in the instanton vacuum. Int. J. Mod. Phys. E , 30(11):2141005, 2021

  40. [47]

    Musakhanov and N

    M. Musakhanov and N. Rakhimov. ILM gluons in perturbative QCD . 11 2021

  41. [48]

    Gluons, light and heavy quarks and th eir interac- tions in the instanton vacuum

    Mirzayusuf Musakhanov. Gluons, light and heavy quarks and th eir interac- tions in the instanton vacuum. 3 2023

Pith tools

Reviewed August 10, 2026 · model on record in the stance chip above.