References

[1]
M. Abadi et al., TensorFlow: Large-Scale Machine Learning on Heterogeneous Distributed Systems.” arXiv, 2016. 10.48550/arXiv.1603.04467.
[2]
L. V. Ahlfors, Complex Analysis: An Introduction to the Theory of Analytic Functions of one Complex Variable, 2nd ed. in International Series in Pure and Applied Mathematics. New York: MacGraw-Hill, 1966. ISBN: 978-0-07-000656-0
[3]
I. J. R. Aitchison, “The K-matrix formalism for overlapping resonances,” Nucl. Phys. A, vol. 189, no. 2, pp. 417–423, Jul. 1972, 10.1016/0375-9474(72)90305-3.
[4]
J. J. Allaire, C. Teague, C. Scheidegger, Y. Xie, C. Dervieux, and G. Woodhull, “Quarto.” Nov. 2024. 10.5281/zenodo.5960048.
[5]
C. D. Anderson, “The Positive Electron,” Phys. Rev., vol. 43, no. 6, pp. 491–494, Mar. 1933, 10.1103/PhysRev.43.491.
[6]
C. D. Anderson and S. H. Neddermeyer, “Cloud Chamber Observations of Cosmic Rays at 4300 Meters Elevation and Near Sea-Level,” Phys. Rev., vol. 50, no. 4, pp. 263–271, Aug. 1936, 10.1103/PhysRev.50.263.
[7]
C. D. Anderson and S. H. Neddermeyer, “Mesotron (Intermediate Particle) as a Name for the New Particles of Intermediate Mass,” Nature, vol. 142, no. 3602, pp. 878–878, Nov. 1938, 10.1038/142878c0.
[8]
E. Angerson et al., LAPACK: A portable linear algebra library for high-performance computers,” in Supercomputing ’90: Proceedings of the 1990 ACM/IEEE conference on Supercomputing, New York: IEEE,  1990, pp. 2–11. 10.1109/SUPERC.1990.129995.
[9]
A. V. Anisovich, E. Klempt, A. V. Sarantsev, and U. Thoma, “Partial-wave decomposition of pion and photoproduction amplitudes,” Eur. Phys. J. A, vol. 24, no. 1, pp. 111–128, Feb. 2005, 10.1140/epja/i2004-10125-6.
[10]
A. V. Anisovich and A. V. Sarantsev, “Partial decay widths of baryons in the spin-momentum operator expansion method,” Eur. Phys. J. A, vol. 30, no. 2, pp. 427–441, Nov. 2006, 10.1140/epja/i2006-10102-1.
[11]
A. V. Anisovich, V. V. Anisovich, M. A. Matveev, V. A. Nikonov, J. Nyiri, and A. V. Sarantsev, Three-Particle Physics and Dispersion Relation Theory. Singapore: World Scientific, 2013. 10.1142/8779.
[12]
I. Antcheva et al., ROOTA C++ framework for petabyte data storage, statistical analysis and visualization,” Comput. Phys. Commun., vol. 180, no. 12, pp. 2499–2512, Dec. 2009, 10.1016/j.cpc.2009.08.005.
[13]
B. Antunes and D. R. C. Hill, “Reproducibility, Replicability and Repeatability: A survey of reproducible research with a focus on high performance computing,” Comput. Sci. Rev., vol. 53, p. 100655, Aug. 2024, 10.1016/j.cosrev.2024.100655.
[14]
R. Armenteros, K. H. Barker, C. C. Butler, A. Cachon, and C. M. York, “The properties of charged V-particles,” Philos. Mag., vol. 43, no. 341, pp. 597–611, Jun. 1952, 10.1080/14786440608520216.
[15]
R. A. Arndt, “Partial wave analyses of elastic meson–nucleon scattering,” in Advanced Methods in the Evaluation of Nuclear Scattering Data, vol. 236, H. J. Krappe and R. Lipperheide, Eds., Berlin ; Heidelberg: Springer, 1985, pp. 166–178. 10.1007/3-540-15990-8_11.
[16]
R. A. Arndt, R. L. Workman, Z. Li, and L. D. Roper, “Partial-wave analysis of pion photoproduction,” Phys. Rev. C, vol. 42, no. 5, pp. 1853–1863, Nov. 1990, 10.1103/PhysRevC.42.1853.
[17]
A. Asokan, M.-N. Tang, F.-K. Guo, C. Hanhart, Y. Kamiya, and U.-G. Meißner, “Can the two-pole structure of the D0*(2300) be understood from recent lattice data?” Eur. Phys. J. C, vol. 83, no. 9, p. 850, Sep. 2023, 10.1140/epjc/s10052-023-11953-6.
[18]
J. Back et al., “Laura++: A Dalitz plot fitter,” Comput. Phys. Commun., vol. 231, pp. 198–242, May 2018, 10.1016/j.cpc.2018.04.017.
[19]
M. Baker, “1,500 scientists lift the lid on reproducibility,” Nature, vol. 533, no. 7604, pp. 452–454, May 2016, 10.1038/533452a.
[20]
V. E. Barnes et al., “Observation of a Hyperon with Strangeness Minus Three,” Phys. Rev. Lett., vol. 12, no. 8, pp. 204–206, Feb. 1964, 10.1103/PhysRevLett.12.204.
[21]
H. Barthels, C. Psarras, and P. Bientinesi, “Linnea: Automatic Generation of Efficient Linear Algebra Programs,” ACM Trans. Math. Softw., vol. 47, no. 3, pp. 1–26, Sep. 2021, 10.1145/3446632.
[22]
J. L. Basdevant and E. L. Berger, “Unitary coupled-channel analysis of diffractive production of the A1 resonance,” Phys. Rev. D, vol. 16, no. 3, pp. 657–678, Aug. 1977, 10.1103/PhysRevD.16.657.
[23]
I. Belyaev, G. Carboni, N. Harnew, C. Matteuzzi, and F. Teubert, “The history of LHCb,” Eur. Phys. J. H, vol. 46, no. 1, p. 3, Dec. 2021, 10.1140/epjh/s13129-021-00002-z.
[24]
N. Berger, “Partial wave analysis at BES III harnessing the power of GPUs,” J. Phys. Conf. Ser., vol. 331, no. 3, p. 032005, Dec. 2011, 10.1088/1742-6596/331/3/032005.
[25]
BESIII Collaboration, “The Layout of BEPC,” Photo and Video Gallery – Institute of High-Energy Physics. Jun. 2009. https://web.archive.org/web/20250418140031/https://english.ihep.cas.cn/nw/pavg/index_3.html
[26]
BESIII Collaboration et al., “Design and construction of the BESIII detector,” Nucl. Instrum. Methods Phys. Res. A, vol. 614, no. 3, pp. 345–399, Mar. 2010, 10.1016/j.nima.2009.12.050.
[27]
BESIII Collaboration et al., “Observation of Two New N* Resonances in the Decay ψ(3686) → pπ0,” Phys. Rev. Lett., vol. 110, no. 2, p. 022001, Jan. 2013, 10.1103/PhysRevLett.110.022001.
[28]
BESIII Collaboration et al., “Number of J/ψ events at BESIII,” Chin. Phys. C, vol. 46, no. 7, p. 074001, Jul. 2022, 10.1088/1674-1137/ac5c2e.
[29]
BESIII Collaboration et al., “Luminosities and energies of e+e collision data taken between √s=4.61 GeV and 4.95 GeV at BESIII,” Chin. Phys. C, vol. 46, no. 11, p. 113003, Nov. 2022, 10.1088/1674-1137/ac84cc.
[30]
BESIII Collaboration et al., “Observation and branching fraction measurement of the decay J/ψ → 𝛴+KS0 + c.c.,” Phys. Rev. D, vol. 109, no. 1, p. 012006, Jan. 2024, 10.1103/PhysRevD.109.012006.
[31]
C. Bierlich et al., “Robust Independent Validation of Experiment and Theory: Rivet version 3,” SciPost Phys., vol. 8, no. 2, p. 026, Feb. 2020, 10.21468/SciPostPhys.8.2.026.
[32]
J. D. Bjorken and S. L. Glashow, “Elementary particles and SU(4),” Phys. Lett., vol. 11, no. 3, pp. 255–257, Aug. 1964, 10.1016/0031-9163(64)90433-0.
[33]
R. Bjorklund, W. E. Crandall, B. J. Moyer, and H. F. York, “High Energy Photons from ProtonNucleon Collisions,” Phys. Rev., vol. 77, no. 2, pp. 213–218, Jan. 1950, 10.1103/PhysRev.77.213.
[34]
J. M. Blatt and V. F. Weisskopf, Theoretical Nuclear Physics. New York: Springer, 1952. 10.1007/978-1-4612-9959-2.
[35]
E. D. Bloom et al., “High-Energy Inelastic e − p Scattering at 6° and 10°,” Phys. Rev. Lett., vol. 23, no. 16, pp. 930–934, Oct. 1969, 10.1103/PhysRevLett.23.930.
[36]
A. S. Blum, “The state is not abolished, it withers away: How quantum field theory became a theory of scattering,” Stud. Hist. Philos. Sci. B, vol. 60, pp. 46–80, Nov. 2017, 10.1016/j.shpsb.2017.01.004.
[37]
A. Bonetti, R. L. Setti, M. Panetti, and G. Tomasini, “On the existence of unstable charged particles of hyperprotonic mass,” Nuovo Cimento, vol. 10, no. 12, pp. 1736–1743, Dec. 1953, 10.1007/BF02781667.
[38]
Bose, Plancks Gesetz und Lichtquantenhypothese,” Z. Phys., vol. 26, no. 1, pp. 178–181, Dec. 1924, 10.1007/BF01327326.
[39]
N. Brambilla et al., “Heavy quarkonium: Progress, puzzles, and opportunities,” Eur. Phys. J. C, vol. 71, no. 2, p. 1534, Feb. 2011, 10.1140/epjc/s10052-010-1534-9.
[40]
M. Breidenbach et al., “Observed Behavior of Highly Inelastic ElectronProton Scattering,” Phys. Rev. Lett., vol. 23, no. 16, pp. 935–939, Oct. 1969, 10.1103/PhysRevLett.23.935.
[41]
G. Breit and E. P. Wigner, “Capture of Slow Neutrons,” Phys. Rev., vol. 49, no. 7, pp. 519–531, Apr. 1936, 10.1103/PhysRev.49.519.
[42]
R. A. Briceño, J. J. Dudek, and R. D. Young, “Scattering processes and resonances from lattice QCD,” Rev. Mod. Phys., vol. 90, no. 2, p. 025001, Apr. 2018, 10.1103/RevModPhys.90.025001.
[43]
R. A. Briceño, J. J. Dudek, R. G. Edwards, D. J. Wilson, and Hadron Spectrum Collaboration, “Isoscalar ππ, K, ηη scattering and the σ, f0, f2 mesons from QCD,” Phys. Rev. D, vol. 97, no. JLAB–THY–17–2534, p. 054513, Mar. 2018, 10.1103/PhysRevD.97.054513.
[44]
R. A. Briere, F. A. Harris, and R. E. Mitchell, “Physics Accomplishments and Future Prospects of the BES Experiments at the Beijing ElectronPositron Collider,” Annu. Rev. Nucl. Part. Sci., vol. 66, no. 1, pp. 143–170, Oct. 2016, 10.1146/annurev-nucl-102115-044802.
[45]
S. J. Brodsky, G. F. De Téramond, H. G. Dosch, and J. Erlich, “Light-front holographic QCD and emerging confinement,” Physics Reports, vol. 584, pp. 1–105, Jul. 2015, 10.1016/j.physrep.2015.05.001.
[46]
R. Brown, U. Camerini, P. H. Fowler, H. Muirhead, C. F. Powell, and D. M. Ritson, Observations with Electron-Sensitive Plates Exposed to Cosmic Radiation. Part 2: Further Evidence for the Existence of Unstable Charged Particles of Mass  ∼ 1, 000 me, and observations on their mode of decay,” Nature, vol. 163, no. 4133, pp. 82–87, Jan. 1949, 10.1038/163082a0.
[47]
R. Brun and F. Rademakers, ROOTAn object oriented data analysis framework,” Nucl. Instrum. Methods Phys. Res. A, vol. 389, no. 1–2, pp. 81–86, Apr. 1997, 10.1016/S0168-9002(97)00048-X.
[48]
V. Burkert, G. Eichmann, and E. Klempt, “The impact of γN and γ*N interactions on our understanding of nucleon excitations.” arXiv, Jun. 2025. 10.48550/arxiv.2506.16482.
[49]
M. Butenschoen and B. A. Kniehl, J/ψ polarization at the Tevatron and the LHC: Nonrelativistic-QCD Factorization at the Crossroads,” Phys. Rev. Lett., vol. 108, no. 17, p. 172002, Apr. 2012, 10.1103/PhysRevLett.108.172002.
[50]
S. Capstick, S. Dytman, R. Holt, X. Ji, J. Negele, and E. Swanson, “Key Issues in Hadronic Physics,” Dec. 2000, http://arxiv.org/abs/hep-ph/0012238
[51]
E. Castellani, “Reductionism, emergence, and effective field theories,” Stud. Hist. Philos. Sci. B, vol. 33, no. 2, pp. 251–267, Jun. 2002, 10.1016/S1355-2198(02)00003-5.
[52]
J. Chadwick, “Possible Existence of a Neutron,” Nature, vol. 129, no. 3252, pp. 312–312, Feb. 1932, 10.1038/129312a0.
[53]
H. Chen and R.-G. Ping, “Coherent helicity amplitude for sequential decays,” Phys. Rev. D, vol. 95, no. 7, p. 076010, Apr. 2017, 10.1103/PhysRevD.95.076010.
[54]
G. F. Chew and S. Mandelstam, “Theory of the Low-Energy Pion-Pion Interaction,” Phys. Rev., vol. 119, no. 1, pp. 467–477, Jul. 1960, 10.1103/PhysRev.119.467.
[55]
G. F. Chew and S. C. Frautschi, “Regge Trajectories and the Principle of Maximum Strength for Strong Interactions,” Phys. Rev. Lett., vol. 8, no. 1, pp. 41–44, Jan. 1962, 10.1103/PhysRevLett.8.41.
[56]
G. F. Chew, The Analytic S Matrix: A Basis For Nuclear Democracy. New York: W.A. Benjamin, 1966.
[57]
S. U. Chung, “Spin formalisms,” CDS, Mar. 1971, 10.5170/CERN-1971-008.
[58]
S. U. Chung, “Helicity-coupling amplitudes in tensor formalism,” Phys. Rev. D, vol. 48, no. 3, pp. 1225–1239, Aug. 1993, 10.1103/PhysRevD.48.1225.
[59]
S.-U. Chung, J. Brose, R. Hackmann, E. Klempt, S. Spanier, and C. Strassburger, “Partial wave analysis in K-matrix formalism,” Ann. Phys., vol. 507, no. 5, pp. 404–430, May 1995, 10.1002/andp.19955070504.
[60]
S.-U. Chung and J. M. Friedrich, “Covariant helicity-coupling amplitudes: A new formulation,” Phys. Rev. D, vol. 78, no. 7, Oct. 2008, 10.1103/PhysRevD.78.074027.
[61]
S.-U. Chung, “Spin Formalisms (Updated Version),” Brookhaven National Laboratory, BNL–76975-2006-IR, 890945, Jul. 2014. https://suchung.web.cern.ch/spinfm1.pdf
[62]
R. Cockett, S. Purves, F. Koch, and M. Morrison, “Continuous Tools for Scientific Publishing: Using MyST Markdown and Curvenote to encourage continuous science practices,” in Python in Science Conference, Tacoma, WA, Jul. 2024, pp. 121–136. 10.25080/NKVC9349.
[63]
M. Fritsch et al., ComPWA/ampform: Automatically generate symbolic amplitude models for Partial Wave Analysis.” Zenodo, Mar. 2025. 10.5281/zenodo.16800099.
[64]
R. E. de Boer and S. Pflüger, “[ADR-001] Amplitude model,” PWA Expert System. Jan. 2021. https://expertsystem.readthedocs.io/0.7.3/adr/001.html
[65]
M. Fritsch et al., “(Py)ComPWA - The common Partial Wave Analysis framework.” Zenodo, Oct. 2019. 10.5281/zenodo.3479482.
[66]
M. Fritsch, S. Pflüger, R. E. de Boer, W. Gradl, and K. Peters, ComPWA/qrules: Rule-based particle reaction problem solver on a quantum number level.” Zenodo, Jan. 2025. 10.5281/zenodo.14680290.
[67]
M. Fritsch, S. Pflüger, R. E. de Boer, W. Gradl, and K. Peters, ComPWA/tensorwaves: Python fitter package for multiple computational back-ends.” Zenodo, Jan. 2025. 10.5281/zenodo.14765376.
[68]
ComPWA, “Requirement Specifications, Status August 20, 2012: Next generation Partial Wave Analysis software.” Sep. 2012.
[69]
J. F. Cornwell, Group Theory in Physics: An Introduction. San Diego, CA: Academic Press, 1997. 10.1016/B978-0-12-189800-7.X5000-6.
[70]
E. W. Cowan, “A V-Decay Event with a Heavy Negative Secondary, and Identification of the Secondary V-Decay Event in a Cascade,” Phys. Rev., vol. 94, no. 1, pp. 161–166, Apr. 1954, 10.1103/PhysRev.94.161.
[71]
J. W. Cronin, “The 1953 Cosmic Ray Conference at Bagnères de Bigorre: The Birth of Sub Atomic Physics,” Eur. Phys. J. H, vol. 36, no. 2, pp. 183–201, Sep. 2011, 10.1140/epjh/e2011-20014-4.
[72]
J. P. Cummings and D. P. Weygand, “An Object-Oriented Approach to Partial Wave Analysis.” arXiv, 2003. 10.48550/arXiv.physics/0309052.
[73]
J. T. Cushing, Theory Construction and Selection in Modern Physics: The S Matrix. Cambridge University Press, 1990. 10.1017/CBO9781139170123.
[74]
R. E. Cutkosky et al., “Pion–nucleon partial-wave analysis,” Phys. Rev. D, vol. 20, no. 11, pp. 2804–2838, Dec. 1979, 10.1103/PhysRevD.20.2804.
[75]
R. E. Cutkosky, C. P. Forsyth, J. B. Babcock, R. L. Kelly, and R. E. Hendrick, “Pion–Nucleon Partial Wave Analysis,” in 4th international conference on baryon resonances, Jul. 1980, p. 19. https://inspirehep.net/literature/154488
[76]
R. H. Dalitz, “On the Strong Interactions of the Strange Particles,” Rev. Mod. Phys., vol. 33, no. 3, pp. 471–492, Jul. 1961, 10.1103/RevModPhys.33.471.
[77]
A. Datta, S. Kamali, S. Meinel, and A. Rashed, “Phenomenology of 𝛬b → 𝛬cτν̄τ using lattice QCD calculations,” J. High Energy Phys., vol. 2017, no. 8, p. 131, Aug. 2017, 10.1007/JHEP08(2017)131.
[78]
M. Davier, L. Duflot, F. Le Diberder, and A. Rougé, “The optimal method for the measurement of tau polarization,” Phys. Lett. B, vol. 306, no. 3–4, pp. 411–417, Jun. 1993, 10.1016/0370-2693(93)90101-M.
[79]
T. F. Degener, TARAAn object-oriented program for a partial wave analysis of sequential two body decays,” Comput. Phys. Commun., vol. 118, no. 1, pp. 34–48, Apr. 1999, 10.1016/S0010-4655(98)00194-5.
[80]
O. Deineka, “Coupled-channel dynamics in hadronic systems,” PhD thesis, Johannes Gutenberg University, Mainz, 2023. 10.25358/openscience-8981.
[81]
H. Dembinski et al., scikit-hep/iminuit.” Zenodo, Apr. 2025. 10.5281/zenodo.15157028.
[82]
P. A. M. Dirac, “On the Theory of quantum mechanics,” Proc. R. Soc. Lond. A, vol. 112, no. 762, pp. 661–677, Oct. 1926, 10.1098/rspa.1926.0133.
[83]
P. A. M. Dirac, “Quantised Singularities in the Electromagnetic Field,” Proc. R. Soc. Lond. A, vol. 133, no. 821, pp. 60–72, Sep. 1931, 10.1098/rspa.1931.0130.
[84]
E. Di Salvo, F. Fontanelli, and Z. J. Ajaltouni, “Detailed study of the 𝛬b → 𝛬cτν̄τ decay,” Int. J. Mod. Phys. A, vol. 33, no. 29, p. 1850169, Oct. 2018, 10.1142/S0217751X18501695.
[85]
M. Döring, C. Hanhart, F. Huang, S. Krewald, and U.-G. Meißner, “Analytic properties of the scattering amplitude and resonances parameters in a meson exchange model,” Nucl. Phys. A, vol. 829, no. 3–4, pp. 170–209, Oct. 2009, 10.1016/j.nuclphysa.2009.08.010.
[86]
D. Drechsel, O. Hanstein, S. S. Kamalov, and L. Tiator, “A unitary isobar model for pion photo- and electroproduction on the proton up to 1 GeV,” Nucl. Phys. A, vol. 645, no. 1, pp. 145–174, Jan. 1999, 10.1016/S0375-9474(98)00572-7.
[87]
R. Dutta, 𝛬b → (𝛬c, p)τν decays within standard model and beyond,” Phys. Rev. D, vol. 93, no. 5, p. 054003, Mar. 2016, 10.1103/PhysRevD.93.054003.
[88]
R. J. Eden, P. V. Landshoff, D. I. Olive, and J. C. Polkinghorne, The Analytic S-Matrix. Cambridge University Press, 1966. ISBN: 978-0-521-52336-3
[89]
B. J. Edwards and G. H. Thomas, “Inelastic thresholds and dibaryon resonances,” Phys. Rev. D, vol. 22, no. 11, pp. 2772–2783, Dec. 1980, 10.1103/PhysRevD.22.2772.
[90]
J. Eschle, A. Puig Navarro, R. Silva Coutinho, and N. Serra, zfit: Scalable pythonic fitting,” SoftwareX, vol. 11, p. 100508, Jan. 2020, 10.1016/j.softx.2020.100508.
[91]
V. V. Ezhela et al., Eds., Particle Physics: One Hundred Years of Discoveries: An annotated chronological bibliography. Woodbury, NY: American Institute of Physics, 1996. ISBN: 978-1-56396-642-2
[92]
P. Faccioli, C. Lourenço, J. Seixas, and H. K. Wöhri, “Towards the experimental clarification of quarkonium polarization,” Eur. Phys. J. C, vol. 69, no. 3, pp. 657–673, Oct. 2010, 10.1140/epjc/s10052-010-1420-5.
[93]
E. Fermi, Zur Quantelung des idealen einatomigen Gases,” Z. Phys., vol. 36, no. 11–12, pp. 902–912, Nov. 1926, 10.1007/BF01400221.
[94]
E. Fermi, E. Teller, and V. Weisskopf, “The Decay of Negative Mesotrons in Matter,” Phys. Rev., vol. 71, no. 5, pp. 314–315, Mar. 1947, 10.1103/PhysRev.71.314.
[95]
M. Ferrillo, A. Mathad, P. Owen, and N. Serra, “Probing effects of new physics in 𝛬b0 → 𝛬c+μν̄μ decays,” J. High Energy Phys., vol. 2019, no. 12, p. 148, Dec. 2019, 10.1007/JHEP12(2019)148.
[96]
V. Filippini, A. Fontana, and A. Rotondi, “Covariant spin tensors in meson spectroscopy,” Phys. Rev. D, vol. 51, no. 5, pp. 2247–2261, Mar. 1995, 10.1103/PhysRevD.51.2247.
[97]
R. A. Fisher, “On the mathematical foundations of theoretical statistics,” Phil. Trans. Roy. Soc. Lond. A, vol. 222, no. 594–604, pp. 309–368, Jan. 1922, 10.1098/rsta.1922.0009.
[98]
M. J. Flynn, “Some Computer Organizations and Their Effectiveness,” IEEE Trans. Comput., vol. C–21, no. 9, pp. 948–960, Sep. 1972, 10.1109/TC.1972.5009071.
[99]
W. B. Fowler, R. P. Shutt, A. M. Thorndike, and W. L. Whittemore, “Production of V10 Particles by Negative Pions in Hydrogen,” Phys. Rev., vol. 91, no. 5, p. 1287, Sep. 1953, 10.1103/PhysRev.91.1287.
[100]
M. Fritsch et al., “Common Partial Wave Analysis: A collaboration-independent organisation for amplitude analysis software.” Zenodo, Jul. 2022. 10.5281/zenodo.6908149.
[101]
H. Fritzsch and M. Gell-Mann, “Current algebra: Quarks and what else?” in Proceedings of the XVI International Conference on High Energy Physics, J. D. Jackson and A. Roberts, Eds., Chicago,  1972, pp. 135–165. https://inspirehep.net/literature/76232
[102]
H. Fritzsch, M. Gell-Mann, and H. Leutwyler, “Advantages of the color octet gluon picture,” Phys. Lett. B, vol. 47, no. 4, pp. 365–368, Nov. 1973, 10.1016/0370-2693(73)90625-4.
[103]
H. Fritzsch, M. Gell-Mann, and P. Minkowski, “Vectorlike weak currents and new elementary fermions,” Phys. Lett. B, vol. 59, no. 3, pp. 256–260, Nov. 1975, 10.1016/0370-2693(75)90040-4.
[104]
H. Fröhlich, W. Heitler, and N. Kemmer, “On the nuclear forces and the magnetic moments of the neutron and the proton,” Proc. R. Soc. Lond. A, vol. 166, no. 924, pp. 154–177, May 1938, 10.1098/rspa.1938.0085.
[105]
E. Rutherford, “Collision of α particles with light atoms. IV. An anomalous effect in nitrogen,” Philos. Mag., vol. 37, no. 222, pp. 581–587, Jun. 1919, 10.1080/14786431003659230.
[106]
Y. Gamage, D. Tiwari, M. Monperrus, and B. Baudry, “The Design Space of Lockfiles Across Package Managers.” arXiv, Jul. 2025. 10.48550/arxiv.2505.04834.
[107]
M. Gell-Mann, “Isotopic Spin and New Unstable Particles,” Phys. Rev., vol. 92, no. 3, pp. 833–834, Nov. 1953, 10.1103/PhysRev.92.833.
[108]
M. Gell-Mann and A. Pais, “Behavior of Neutral Particles under Charge Conjugation,” Phys. Rev., vol. 97, no. 5, pp. 1387–1389, Mar. 1955, 10.1103/PhysRev.97.1387.
[109]
M. Gell-Mann, “The interpretation of the new particles as displaced charge multiplets,” Nuovo Cimento, vol. 4, no. S2, pp. 848–866, Apr. 1956, 10.1007/BF02748000.
[110]
M. Gell-Mann, “The Eightfold Way: A Theory of Strong Interaction Symmetry,” California Institute of Technology, Pasadena, CTSL-20, Mar. 1961. 10.2172/4008239.
[111]
M. Gell-Mann, “Symmetries of Baryons and Mesons,” Phys. Rev., vol. 125, no. 3, pp. 1067–1084, Feb. 1962, 10.1103/PhysRev.125.1067.
[112]
M. Gell-Mann, “A schematic model of baryons and mesons,” Phys. Lett., vol. 8, no. 3, pp. 214–215, Feb. 1964, 10.1016/S0031-9163(64)92001-3.
[113]
M. Gell-Mann, “The symmetry group of vector and axial vector currents,” Phys. Phys. Fiz., vol. 1, no. 1, pp. 63–75, Jul. 1964, 10.1103/PhysicsPhysiqueFizika.1.63.
[114]
M. Gell-Mann, The Quark and the Jaguar: Adventures in the Simple and the Complex, Repr. London: Abacus, 1994. ISBN: 978-0-8050-7253-2
[115]
S. L. Glashow, J. Iliopoulos, and L. Maiani, “Weak Interactions with Lepton-Hadron Symmetry,” Phys. Rev. D, vol. 2, no. 7, pp. 1285–1292, Oct. 1970, 10.1103/PhysRevD.2.1285.
[116]
M. L. Goldberger and K. M. Watson, Collision theory. New York: John Wiley & Sons, Inc., 2004. ISBN: 978-0-486-43507-7
[117]
S. Gowda, “Symbolic-numeric programming in scientific computing,” PhD thesis, Massachusetts Institute of Technology, Cambridge, MA, 2024. https://dspace.mit.edu/handle/1721.1/155320
[118]
O. W. Greenberg, “Spin and Unitary-Spin Independence in a Paraquark Model of Baryons and Mesons,” Phys. Rev. Lett., vol. 13, no. 20, pp. 598–602, Nov. 1964, 10.1103/PhysRevLett.13.598.
[119]
V. N. Gribov, Y. Dokshitzer, and J. Nyiri, Strong Interactions of Hadrons at High Energies: Gribov Lectures on Theoretical Physics. in Cambridge Monographs on Particle Physics, Nuclear Physics and Cosmology, no. 27. New York: Cambridge University Press, 2009. 10.1017/CBO9780511534942.
[120]
A. Griewank and A. Walther, Evaluating Derivatives: Principles and Techniques of Algorithmic Differentiation, 2nd ed. Philadelphia: SIAM, 2008. 10.1137/1.9780898717761.
[121]
D. J. Gross and F. Wilczek, “Ultraviolet Behavior of Non-Abelian Gauge Theories,” Phys. Rev. Lett., vol. 30, no. 26, pp. 1343–1346, Jun. 1973, 10.1103/PhysRevLett.30.1343.
[122]
K. S. Habermann and M. Mikhasenko, “Wigner rotations for cascade reactions,” Phys. Rev. D, vol. 111, no. 5, p. 056015, Mar. 2025, 10.1103/PhysRevD.111.056015.
[123]
R. Harlander, J.-P. Martinez, and G. Schiemann, “The end of the particle era?” Eur. Phys. J. H, vol. 48, no. 1, p. 6, Dec. 2023, 10.1140/epjh/s13129-023-00053-4.
[124]
C. R. Harris et al., “Array programming with NumPy,” Nature, vol. 585, no. 7825, pp. 357–362, Sep. 2020, 10.1038/s41586-020-2649-2.
[125]
M. Hatlo, F. James, P. Mato, L. Moneta, M. Winkler, and A. Zsenei, “Developments of mathematical software libraries for the LHC experiments,” IEEE Trans. Nucl. Sci., vol. 52, no. 6, pp. 2818–2822, Dec. 2005, 10.1109/TNS.2005.860152.
[126]
J. Heer, M. Conlen, V. Devireddy, T. Nguyen, and J. Horowitz, “Living Papers: A Language Toolkit for Augmented Scholarly Communication,” in Proceedings of the 36th Annual ACM Symposium on User Interface Software and Technology, San Francisco: ACM Press, Oct. 2023, pp. 1–13. 10.1145/3586183.3606791.
[127]
W. Heisenberg, Über den Bau der Atomkerne. I,” Z. Phys., vol. 77, no. 1–2, pp. 1–11, Jun. 1932, 10.1007/BF01342433.
[128]
W. Heisenberg, Die „beobachtbaren Größen“ in der Theorie der Elementarteilchen,” Z. Phys., vol. 120, no. 7–10, pp. 513–538, Jul. 1943, 10.1007/BF01329800.
[129]
M. Herlihy, The Art of Multiprocessor Programming, Rev. 1st ed. Waltham, MA: Morgan Kaufmann, 2012. ISBN: 978-0-12-397337-5
[130]
B. C. Hunt and D. M. Manley, Updated determination of N* resonance parameters using a unitary, multichannel formalism,” Phys. Rev. C, vol. 99, no. 5, p. 055205, May 2019, 10.1103/PhysRevC.99.055205.
[131]
K. Iglberger, G. Hager, J. Treibig, and U. Rüde, “Expression Templates Revisited: A Performance Analysis of Current Methodologies,” SIAM J. Sci. Comput., vol. 34, no. 2, pp. C42–C69, Jan. 2012, 10.1137/110830125.
[132]
M. Ikeda, S. Ogawa, and Y. Ohnuki, “A Possibile Symmetry in Sakata’s Model for Bosons-Baryons System,” Prog. Theor. Phys., vol. 22, no. 5, pp. 715–724, Nov. 1959, 10.1143/PTP.22.715.
[133]
J. P. A. Ioannidis, “Why Most Published Research Findings Are False,” PLoS Med., vol. 2, no. 8, p. e124, Aug. 2005, 10.1371/journal.pmed.0020124.
[134]
N. Isgur and G. Karl, P-wave baryons in the quark model,” Phys. Rev. D, vol. 18, no. 11, pp. 4187–4205, Dec. 1978, 10.1103/PhysRevD.18.4187.
[135]
N. Isgur, “Why N*’s are important,” Newport News, VA: Thomas Jefferson National Accelerator Facility, Jul. 2000. 10.48550/arxiv.nucl-th/0007008.
[136]
K. E. Iverson, “Notation as a tool of thought,” Commun. ACM, vol. 23, no. 8, pp. 444–465, Aug. 1980, 10.1145/358896.358899.
[137]
M. Jacob and G. C. Wick, “On the general theory of collisions for particles with spin,” Ann. Phys., vol. 7, no. 4, pp. 404–428, Aug. 1959, 10.1016/0003-4916(59)90051-X.
[138]
F. James and M. Roos, “Minuit – A System for Function Minimization and Analysis of the Parameter Errors and Correlations,” Comput. Phys. Commun., vol. 10, no. 6, pp. 343–367, Dec. 1975, 10.1016/0010-4655(75)90039-9.
[139]
J. Bradbury et al., JAX: Composable transformations of Python+NumPy programs.” 2018. http://github.com/google/jax
[140]
R. E. Johnson and B. Foote, “Designing Reusable Classes,” J. Object Oriented Program., vol. 1, no. 2, pp. 22–35, 1988.
[141]
N. P. Jouppi et al., “In-Datacenter Performance Analysis of a Tensor Processing Unit,” in Proceedings of the 44th Annual International Symposium on Computer Architecture, Toronto: ACM Press, Jun. 2017, pp. 1–12. 10.1145/3079856.3080246.
[142]
M. Mikhasenko et al., “Dalitz-plot decomposition for three-body decays,” Phys. Rev. D, vol. 101, no. 3, p. 034033, Feb. 2020, 10.1103/PhysRevD.101.034033.
[143]
JPAC Collaboration et al., “Novel approaches in Hadron Spectroscopy,” Prog. Part. Nucl. Phys., vol. 127, p. 103981, Nov. 2022, 10.1016/j.ppnp.2022.103981.
[144]
G. Källén, Elementary Particle Physics. Reading, MA: Addison-Wesley, 1964. ISBN: 978-0-201-03575-9
[145]
N. Kemmer, “Quantum theory of EinsteinBose particles and nuclear interaction,” Proc. R. Soc. Lond. A, vol. 166, no. 924, pp. 127–153, May 1938, 10.1098/rspa.1938.0084.
[146]
B. Ketzer, B. Grube, and D. Ryabchikov, “Light-meson spectroscopy with COMPASS,” Prog. Part. Nucl. Phys., vol. 113, p. 103755, Jul. 2020, 10.1016/j.ppnp.2020.103755.
[147]
T. J. Khoo et al., “Constraints on Future Analysis Metadata Systems in High Energy Physics,” Comput. Softw. Big Sci., vol. 6, no. 1, p. 13, Dec. 2022, 10.1007/s41781-022-00086-2.
[148]
N. N. Khuri and S. B. Treiman, “Pion–pion scattering and K± → 3π decay,” Phys. Rev., vol. 119, no. 3, pp. 1115–1121, Aug. 1960, 10.1103/PhysRev.119.1115.
[149]
T. W. B. Kibble, “Kinematics of General Scattering Processes and the Mandelstam Representation,” Phys. Rev., vol. 117, no. 4, pp. 1159–1162, Feb. 1960, 10.1103/PhysRev.117.1159.
[150]
J. Kitzes, D. Turek, and F. Deniz, Eds., The Practice of Reproducible Research: Case Studies and Lessons from the Data-Intensive Sciences. Oakland, CA: University of California Press, 2018. 10.1525/9780520967779.
[151]
T. Kluyver et al., “Jupyter Notebooks – a publishing format for reproducible computational workflows,” in Positioning and Power in Academic Publishing: Players, Agents and Agendas, IOS Press, 2016, pp. 87–90. 10.3233/978-1-61499-649-1-87.
[152]
D. E. Knuth, “Literate Programming,” Comput. J., vol. 27, no. 2, pp. 97–111, Feb. 1984, 10.1093/comjnl/27.2.97.
[153]
B. Konig, J. G. Korner, and M. Kramer, “Determination of the b → c handedness using nonleptonic 𝛬c decays,” Phys. Rev. D, vol. 49, no. 5, pp. 2363–2368, Mar. 1994, 10.1103/PhysRevD.49.2363.
[154]
H. Kragh, Quantum Generations: A History of Physics in the Twentieth Century. Princeton University Press, 1999. ISBN: 978-0-691-01206-3
[155]
O. Krehl, C. Hanhart, S. Krewald, and J. Speth, “What is the structure of the Roper resonance?” Phys. Rev. C, vol. 62, no. 2, p. 025207, Jul. 2000, 10.1103/PhysRevC.62.025207.
[156]
M. Küßner, “Coupled channel partial wave analysis of two-photon reactions at BESIII,” PhD thesis, Ruhr University Bochum, 2022. 10.13154/294-8590.
[157]
R. Kutschke, “An Angular Distribution Cookbook.” Jan. 1996. https://home.fnal.gov/~kutschke/Angdist/angdist.ps
[158]
S. K. Lam, A. Pitrou, and S. Seibert, “Numba: A LLVM-based Python JIT compiler,” in Proceedings of the Second Workshop on the LLVM Compiler Infrastructure in HPC, Austin, TX: ACM Press, Nov. 2015, pp. 1–6. 10.1145/2833157.2833162.
[159]
L. D. Landau and E. M. Lifšic, Quantum Mechanics: Non-Relativistic Theory, 3rd ed. in Course of Theoretical Physics, no. Vol. 3. Singapore: Elsevier, 2007. ISBN: 978-0-7506-3539-4
[160]
C. M. G. Lattes, H. Muirhead, G. P. S. Occhialini, and C. F. Powell, “Processes involving charged mesons,” Nature, vol. 159, no. 4047, pp. 694–697, May 1947, 10.1038/159694a0.
[161]
C. M. G. Lattes, G. P. S. Occhialini, and C. F. Powell, “Observations on the Tracks of Slow Mesons in Photographic EmulsionsPart 1,” Nature, vol. 160, no. 4066, pp. 453–456, Oct. 1947, 10.1038/160453a0.
[162]
C. L. Lawson, R. J. Hanson, D. R. Kincaid, and F. T. Krogh, “Basic Linear Algebra Subprograms for Fortran Usage,” ACM Trans. Math. Softw., vol. 5, no. 3, pp. 308–323, Sep. 1979, 10.1145/355841.355847.
[163]
E. Leader, Spin in Particle Physics. Cambridge University Press, 2023. 10.1017/9781009402040.
[164]
T. D. Lee and C. N. Yang, Charge conjugation, a new quantum number G, and selection rules concerning a nucleon-antinucleon system,” Nuovo Cimento, vol. 3, no. 4, pp. 749–753, Apr. 1956, 10.1007/BF02744530.
[165]
LHCb Collaboration et al., “The LHCb Detector at the LHC,” J. Instrum., vol. 3, no. 8, pp. S08005–S08005, Aug. 2008, 10.1088/1748-0221/3/08/S08005.
[166]
LHCb Collaboration, LHCb detector performance,” Int. J. Mod. Phys. A, vol. 30, no. 7, p. 1530022, Mar. 2015, 10.1142/S0217751X15300227.
[167]
LHCb Collaboration et al., “Design and performance of the LHCb trigger and full real-time reconstruction in Run 2 of the LHC,” J. Instrum., vol. 14, no. 4, pp. P04013–P04013, Apr. 2019, 10.1088/1748-0221/14/04/P04013.
[168]
LHCb Collaboration et al., “Isospin Amplitudes in 𝛬b0 → J/ψ𝛬(𝛴0) and 𝛴b0 → J/ψ𝛴0(𝛬) Decays,” Phys. Rev. Lett., vol. 124, no. 11, p. 111802, Mar. 2020, 10.1103/PhysRevLett.124.111802.
[169]
LHCb collaboration et al., “Amplitude analysis of the 𝛬c+ → pKπ+ decay and 𝛬c+ baryon polarization measurement in semileptonic beauty hadron decays,” Phys. Rev. D, vol. 108, no. 1, p. 012023, Jul. 2023, 10.1103/PhysRevD.108.012023.
[170]
LHCb collaboration et al., 𝛬c+ polarimetry using the dominant hadronic mode,” J. High Energy Phys., vol. 2023, no. 7, p. 228, Jul. 2023, 10.1007/JHEP07(2023)228.
[171]
R. E. de Boer, M. Mikhasenko, and M. Fritsch, Λc+ polarimetry using the dominant hadronic mode.” Zenodo, Jan. 2023. 10.5281/zenodo.7549056.
[172]
X.-Q. Li, Y.-D. Yang, and X. Zhang, 𝛬c → 𝛬cτν̄τ decay in scalar and vector leptoquark scenarios,” J. High Energy Phys., vol. 2, p. 068, Feb. 2017, 10.1007/JHEP02(2017)068.
[173]
U. Löring, B. Ch. Metsch, and H. R. Petry, “The light-baryon spectrum in a relativistic quark model with instanton-induced quark forces: The non-strange-baryon spectrum and ground states,” Eur. Phys. J. A, vol. 10, no. 4, pp. 395–446, Jun. 2001, 10.1007/s100500170105.
[174]
L. Lyons, Statistics for nuclear and particle physicists. Cambridge University Press, 1986. 10.1017/cbo9781139167710.
[175]
M. Mai et al., “Jülich–BonnWashington model for pion electroproduction multipoles,” Phys. Rev. C, vol. 103, no. 6, p. 065204, Jun. 2021, 10.1103/PhysRevC.103.065204.
[176]
M. Mai, U.-G. Meißner, and C. Urbach, “Towards a theory of hadron resonances,” Physics Reports, vol. 1001, pp. 1–66, Feb. 2023, 10.1016/j.physrep.2022.11.005.
[177]
S. Mandelstam, “Determination of the Pion-Nucleon Scattering Amplitude from Dispersion Relations and Unitarity. General Theory,” Phys. Rev., vol. 112, no. 4, pp. 1344–1360, Nov. 1958, 10.1103/PhysRev.112.1344.
[178]
D. M. Manley, “Isospin analysis of low-energy πN → ππN data and chiral-symmetry breaking,” Phys. Rev. D, vol. 30, no. 3, pp. 536–540, Aug. 1984, 10.1103/PhysRevD.30.536.
[179]
A. D. Martin and T. D. Spearman, Elementary Particle Theory. Amsterdam: North Holland Publishing Company, 1970. ISBN: 978-0-7204-0157-8
[180]
W. A. Martin and R. J. Fateman, “The MACSYMA system,” in Proceedings of the second ACM Symposium on Symbolic and Algebraic manipulation - SYMSAC ’71, Los Angeles: ACM Press,  1971, pp. 59–75. 10.1145/800204.806267.
[181]
H. Martiros et al., SymForce: Symbolic Computation and Code Generation for Robotics,” in Robotics: Science and Systems XVIII, New York: RSS Foundation, Jun. 2022. 10.15607/RSS.2022.XVIII.041.
[182]
A. Meurer et al., SymPy: Symbolic computing in Python,” PeerJ Comput. Sci., vol. 3, p. e103, Jan. 2017, 10.7717/peerj-cs.103.
[183]
M. Michel et al., ComPWA: A common amplitude analysis framework for PANDA,” J. Phys. Conf. Ser., vol. 513, no. 2, Jun. 2014, 10.1088/1742-6596/513/2/022025.
[184]
M. Michel, “Extraction of the scalar wave in J/ψ → γπ0π0 using the ComPWA framework,” PhD thesis, Johannes Gutenberg University, Mainz, 2016. 10.25358/openscience-4105.
[185]
M. Mikhasenko, ThreeBodyDecay.jlJulia implementation of the Dalitz-plot decomposition.” Zenodo, Oct. 2022. 10.5281/zenodo.7256812.
[186]
K. J. Millman and F. Pérez, “Developing Open-Source Scientific Practice,” in Implementing Reproducible Research, V. Stodden, F. Leisch, and R. D. Peng, Eds., Chapman and Hall/CRC, 2018. 10.1201/9781315373461.
[187]
S. Mizera, “Physics of the analytic S-matrix,” Physics Reports, vol. 1047, pp. 1–92, Jan. 2024, 10.1016/j.physrep.2023.10.006.
[188]
J. Moses, “Macsyma: A personal history,” J. Symb. Comput., vol. 47, no. 2, pp. 123–130, Feb. 2012, 10.1016/j.jsc.2010.08.018.
[189]
The mpmath development team, “Mpmath: A Python library for arbitrary-precision floating-point arithmetic (version 1.3.0).” 2023. https://mpmath.org
[190]
D. Müller, “Adopting new technologies in the LHCb Gauss simulation framework,” EPJ Web Conf., vol. 214, p. 02004, 2019, 10.1051/epjconf/201921402004.
[191]
S. H. Neddermeyer and C. D. Anderson, “Note on the Nature of Cosmic-Ray Particles,” Phys. Rev., vol. 51, no. 10, pp. 884–886, May 1937, 10.1103/PhysRev.51.884.
[192]
Y. Ne’eman, “Derivation of strong interactions from a gauge invariance,” Nucl. Phys., vol. 26, no. 2, pp. 222–229, Aug. 1961, 10.1016/0029-5582(61)90134-1.
[193]
Y. Ne’eman, The particle hunters, 2nd ed. New York: Cambridge University Press, 1986. ISBN: 978-0-521-47107-7
[194]
R. G. Newton, Scattering Theory of Waves and Particles, 2nd ed. New York: Springer, 1982. ISBN: 978-3-540-10950-1
[195]
K. Nishijima, Charge Independence Theory of V Particles,” Prog. Theor. Phys., vol. 13, no. 3, pp. 285–304, Mar. 1955, 10.1143/PTP.13.285.
[196]
H. M. Nussenzveig, Causality and dispersion relations. in Mathematics in science and engineering, no. v. 95. New York: Academic Press, 1972. ISBN: 978-0-12-523050-6
[197]
L. B. Okun, “The Theory of Weak Interaction,” in 11th international conference on high-energy physics, J. Prentki, Ed., Geneva: CERN,  1962, pp. 845–866. https://inspirehep.net/conferences/1187697
[198]
R. Omnès and M. Froissart, Mandelstam Theory and Regge Poles: An Introduction for Experimentalists. New York: W.A. Benjamin, 1963. ISBN: 978-1-258-40714-8
[199]
A. Pais, “Ω-Space Theory,” in Proceedings, International Conference on Theoretical Physics: Kyoto & Tokyo, September 14-24, 1953, I. Imai, A. Harasima, M. Kotani, R. Kubo, R. Nozawa, T. Toyoda, and T. Yamanouchi, Eds., Kyoto & Tokyo: Science Council of Japan, Sep. 1953, pp. 156–163.
[200]
Particle Data Group Collaboration et al., “Review of Particle Physics,” Phys. Rev. D, vol. 110, no. 3, p. 030001, Aug. 2024, 10.1103/PhysRevD.110.030001.
[201]
A. Paszke et al., PyTorch: An Imperative Style, High-Performance Deep Learning Library.” arXiv, 2019. 10.48550/arXiv.1912.01703.
[202]
W. Pauli, Über den Zusammenhang des Abschlusses der Elektronengruppen im Atom mit der Komplexstruktur der Spektren,” Z. Phys., vol. 31, no. 1, pp. 765–783, Feb. 1925, 10.1007/BF02980631.
[203]
N. Penalva, E. Hernández, and J. Nieves, “Further tests of lepton flavour universality from the charged lepton energy distribution in b → c semileptonic decays: The case of 𝛬b → 𝛬cν̄,” Phys. Rev. D, vol. 100, no. 11, p. 113007, Dec. 2019, 10.1103/PhysRevD.100.113007.
[204]
F. Perez and B. E. Granger, IPython: A System for Interactive Scientific Computing,” Comput. Sci. Eng., vol. 9, no. 3, pp. 21–29, 2007, 10.1109/MCSE.2007.53.
[205]
J. M. Perkel, “Why Jupyter is data scientists’ computational notebook of choice,” Nature, vol. 563, no. 7729, pp. 145–146, Nov. 2018, 10.1038/d41586-018-07196-1.
[206]
J. M. Perkel, “Cut the tyranny of copy-and-paste with these coding tools,” Nature, vol. 603, no. 7899, pp. 191–192, Mar. 2022, 10.1038/d41586-022-00563-z.
[207]
M. L. Perl, High Energy Hadron Physics. New York: Wiley, 1974. ISBN: 978-0-471-68049-9
[208]
A. Pevsner et al., “Evidence for a Three-Pion Resonance Near 550 Mev,” Phys. Rev. Lett., vol. 7, no. 11, pp. 421–423, Dec. 1961, 10.1103/PhysRevLett.7.421.
[209]
S. Pflüger, “Precise determination of the luminosity with the PANDA-luminosity detector and implementation of the helicity formalism for the ComPWA framework for an extraction of the scalar wave in the channel J/ψ → π0π0γ,” PhD thesis, Ruhr University Bochum, 2018. https://nbn-resolving.org/urn:nbn:de:hbz:294-56142
[210]
S. Pflüger et al., PWA Expert SystemRule-based particle reaction problem solver on a quantum number level.” Common Partial Wave Analysis, Apr. 2021. https://github.com/ComPWA/expertsystem/releases/tag/0.7.3
[211]
A. Pickering, Constructing Quarks: A Sociological History of Particle Physics. University of Chicago Press, 1984. ISBN: 978-0-85224-458-6
[212]
R.-G. Ping, “Event generators at BESIII,” Chin. Phys. C, vol. 32, no. 8, pp. 599–602, Aug. 2008, 10.1088/1674-1137/32/8/001.
[213]
L. Z. Pöpping, “High-performance computations with symbolic K matrix expressions tested on N resonances in J/ψ decays with data provided by BESIII,” MSc thesis, Ruhr University Bochum, 2024.
[214]
H. D. Politzer, “Reliable Perturbative Results for Strong Interactions?” Phys. Rev. Lett., vol. 30, no. 26, pp. 1346–1349, Jun. 1973, 10.1103/PhysRevLett.30.1346.
[215]
A. Poluektov, A. Merli, A. Mathad, and A. Morris, TensorFlowAnalysisA collection of useful functions and example scripts for performing amplitude fits using Google TensorFlow.” Nov. 2021. https://gitlab.cern.ch/poluekt/TensorFlowAnalysis/-/tree/5fc1172
[216]
A. Poluektov, AmpliTFLibrary of primitives for amplitude analyses in high-energy physics using TensorFlow V2.” Jul. 2022. https://github.com/apoluekt/AmpliTF/tree/70c51cb
[217]
W. H. Press, S. A. Teukolsky, W. T. Vetterling, and B. P. Flannery, Numerical Recipes in C: The Art of Scientific Computing, 2nd ed. New York: Cambridge University Press, 1992. ISBN: 978-0-521-43108-8
[218]
T. T. Procko and O. Ochoa, “Semantic Science: Publication Beyond the PDF,” in SoutheastCon 2024, Atlanta, GA: IEEE, Mar. 2024, pp. 207–215. 10.1109/SoutheastCon52093.2024.10500258.
[219]
S. Celles, “Python-constraint – Constraint Solving Problem resolver for Python.” Nov. 2018. https://github.com/python-constraint/python-constraint/releases/tag/1.4.0
[220]
W. Rarita and J. Schwinger, “On a Theory of Particles with Half-Integral Spin,” Phys. Rev., vol. 60, no. 1, pp. 61–61, Jul. 1941, 10.1103/PhysRev.60.61.
[221]
G. Rasche, Zur Geschichte des Begriffes „Isospin“,” Arch. Rational Mech., vol. 7, no. 4, pp. 257–276, 1971, 10.1007/BF00328045.
[222]
A. Ray, S. Sahoo, and R. Mohanta, “Probing new physics in semileptonic 𝛬b decays,” Phys. Rev. D, vol. 99, no. 1, p. 015015, Jan. 2019, 10.1103/PhysRevD.99.015015.
[223]
T. Regge, “Introduction to complex orbital momenta,” Nuovo Cimento, vol. 14, no. 5, pp. 951–976, Dec. 1959, 10.1007/BF02728177.
[224]
J. H. Reid and N. N. Trofimenkoff, “A generating function for ChewMandelstam functions,” J. Math. Phys., vol. 25, no. 12, pp. 3540–3544, Dec. 1984, 10.1063/1.526093.
[225]
J. D. Richman, “An Experimenter’s Guide to the Helicity Formalism.” Jun. 1984. https://cds.cern.ch/record/153636
[226]
M. Riordan, The Hunting of the Quark: A True Story of Modern Physics. in A Touchstone book. New York: Simon and Schuster, 1987. ISBN: 978-0-671-50466-3
[227]
G. D. Rochester and C. C. Butler, “Evidence for the Existence of New Unstable Elementary Particles,” Nature, vol. 160, no. 4077, pp. 855–857, Dec. 1947, 10.1038/160855a0.
[228]
M. Ronniger and B. Ch. Metsch, “Effects of a spin-flavour-dependent interaction on the baryon mass spectrum,” Eur. Phys. J. A, vol. 47, no. 12, p. 162, Dec. 2011, 10.1140/epja/i2011-11162-8.
[229]
L. D. Roper, “Evidence for a P11 Pion-Nucleon resonance at 556 MeV,” Phys. Rev. Lett., vol. 12, no. 12, pp. 340–342, Mar. 1964, 10.1103/PhysRevLett.12.340.
[230]
L. Rosenfeld, Nuclear Forces. Amsterdam: North Holland Publishing Company, 1948. https://archive.org/details/in.ernet.dli.2015.169077
[231]
E. Rutherford, “The scattering of alpha and beta particles by matter and the structure of the atom,” Philos. Mag., vol. 21, no. 125, pp. 669–688, May 1911, 10.1080/14786440508637080.
[232]
E. Rutherford, “Bakerian Lecture: Nuclear constitution of atoms,” Proc. R. Soc. Lond. A, vol. 97, no. 686, pp. 374–400, Jun. 1920, 10.1098/rspa.1920.0040.
[233]
G. Sapunov, Deep Learning with JAX, 1st ed. New York: Manning Publications Co. LLC, 2024. ISBN: 978-1-63343-888-0
[234]
U. Schmitt, B. Moser, C. S. Lorenz, and A. Refregier, sympy2c: From symbolic expressions to fast C/C++ functions and ODE solvers in Python.” arXiv, Mar. 2022. 10.48550/arxiv.2203.11945.
[235]
E. Schulte, D. Davison, T. Dye, and C. Dominik, “A Multi-Language Computing Environment for Literate Programming and Reproducible Research,” J. Stat. Soft., vol. 46, no. 3, Jan. 2012, 10.18637/jss.v046.i03.
[236]
S. Schweber, “A Historical Perspective on the Rise of the Standard Model,” in The Rise of the Standard Model, L. Hoddeson, L. Brown, M. Riordan, and M. Dresden, Eds., New York: Cambridge University Press, 1997, pp. 645–684. 10.1017/CBO9780511471094.040.
[237]
E. Rodrigues and H. Schreiner, scikit-hep/particlePackage to deal with particles, the PDG particle data table, PDGIDs, etc.” Zenodo, Oct. 2024. 10.5281/zenodo.13897537.
[238]
S. Shivashankara, W. Wu, and A. Datta, 𝛬b → 𝛬cτν̄τ decay in the standard model and with new physics,” Phys. Rev. D, vol. 91, no. 11, p. 115003, Jun. 2015, 10.1103/PhysRevD.91.115003.
[239]
G. H. Stark, “The Search for Supersymmetry in Hadronic Final States Using Boosted Object Reconstruction,” PhD thesis, University of Chicago, 2018. 10.6082/2r2s-4590.
[240]
V. Stodden, P. Guo, and Z. Ma, “Toward Reproducible Computational Research: An Empirical Analysis of Data and Code Policy Adoption by Journals,” PLoS ONE, vol. 8, no. 6, p. e67111, Jun. 2013, 10.1371/journal.pone.0067111.
[241]
V. Stodden and S. Miguez, “Best Practices for Computational Science: Software Infrastructure and Environments for Reproducible and Extensible Research,” J. Open Res. Softw., vol. 2, no. 1, Jul. 2014, 10.5334/jors.ay.
[242]
J. Street and E. Stevenson, “New Evidence for the Existence of a Particle of Mass Intermediate Between the Proton and Electron,” Phys. Rev., vol. 52, no. 9, pp. 1003–1004, Nov. 1937, 10.1103/PhysRev.52.1003.
[243]
B. Stroustrup, “Evolving a language in and for the real world: C++ 1991–2006,” in Proceedings of the third ACM SIGPLAN conference on History of programming languages, San Diego California: ACM, Jun. 2007. 10.1145/1238844.1238848.
[244]
E. C. G. Stückelberg, “Die Wechselwirkungskräfte in der Elektrodynamik und in der Feldtheorie der Kernkräfte (Teil II und III),” Helv. Phys. Acta, vol. 11, pp. 299–328, 1938, http://link.springer.com/10.1007/978-3-7643-8878-2_17
[245]
M. Sugawara and A. Kanazawa, “Subtractions in Dispersion Relations,” Phys. Rev., vol. 123, no. 5, pp. 1895–1902, Sep. 1961, 10.1103/PhysRev.123.1895.
[246]
A. Švarc, M. Hadžimehmedović, H. Osmanović, J. Stahov, L. Tiator, and R. L. Workman, “Introducing the Pietarinen expansion method into the single-channel pole extraction problem,” Phys. Rev. C, vol. 88, no. 3, p. 035206, Sep. 2013, 10.1103/PhysRevC.88.035206.
[247]
J. R. Taylor, Scattering Theory: The Quantum Theory on Nonrelativistic Collisions. New York: Wiley, 1972. ISBN: 978-0-471-84900-1
[248]
A. Thiel, F. Afzal, and Y. Wunderlich, “Light Baryon Spectroscopy,” Prog. Part. Nucl. Phys., vol. 125, p. 103949, Jul. 2022, 10.1016/j.ppnp.2022.103949.
[249]
J. J. Thomson, “Cathode Rays,” Philos. Mag., vol. 44, no. 269, pp. 293–316, Oct. 1897, 10.1080/14786449708621070.
[250]
L. Tiator et al., “Eta and etaprime photoproduction on the nucleon with the isobar model EtaMAID2018,” Eur. Phys. J. A, vol. 54, no. 12, p. 210, Dec. 2018, 10.1140/epja/i2018-12643-x.
[251]
[252]
G. Uhlenbeck and S. Goudsmit, “Ersetzung der Hypothese vom unmechanischen Zwang durch eine Forderung bezüglich des inneren Verhaltens jedes einzelnen Elektrons,” Naturwiss., vol. 13, no. 47, pp. 953–954, Nov. 1925, 10.1007/bf01558878.
[253]
S. Van Der Walt, S. C. Colbert, and G. Varoquaux, “The NumPy Array: A Structure for Efficient Numerical Computation,” Comput. Sci. Eng., vol. 13, no. 2, pp. 22–30, Mar. 2011, 10.1109/MCSE.2011.37.
[254]
P. Virtanen et al., SciPy 1.0: Fundamental algorithms for scientific computing in Python,” Nat. Methods, vol. 17, no. 3, pp. 261–272, Mar. 2020, 10.1038/s41592-019-0686-2.
[255]
F. von Hippel and C. Quigg, “Centrifugal-Barrier Effects in Resonance Partial Decay Widths, Shapes, and Production Amplitudes,” Phys. Rev. D, vol. 5, no. 3, pp. 624–638, Feb. 1972, 10.1103/PhysRevD.5.624.
[256]
P. Weidenkaff, “Analysis of the decay D0 → KS0K+K with the BESIII experiment,” PhD thesis, Johannes Gutenberg University, Mainz, 2017. 10.25358/openscience-2781.
[257]
S. Weinberg, The Quantum Theory of Fields, Volume 1: Foundations. New York: Cambridge University Press, 1995. ISBN: 978-0-521-55001-7
[258]
J. A. Wheeler, “On the Mathematical Description of Light Nuclei by the Method of Resonating Group Structure,” Phys. Rev., vol. 52, no. 11, pp. 1107–1122, Dec. 1937, 10.1103/PhysRev.52.1107.
[259]
E. P. Wigner, Gruppentheorie und Ihre Anwendung Auf Die Quantenmechanik der Atomspektren, Unveränderter Nachdruck 1977. Wiesbaden: Springer, 1931. 10.1007/978-3-663-02555-9.
[260]
E. P. Wigner, “On the Consequences of the Symmetry of the Nuclear Hamiltonian on the Spectroscopy of Nuclei,” Phys. Rev., vol. 51, no. 2, pp. 106–119, Jan. 1937, 10.1103/PhysRev.51.106.
[261]
Wikimedia Commons, “Standard Model of Elementary Particles.” 2025. https://w.wiki/EeMv
[262]
G. Wilson, J. Bryan, K. Cranston, J. Kitzes, L. Nederbragt, and T. K. Teal, “Good enough practices in scientific computing,” PLoS Comput. Biol., vol. 13, no. 6, p. e1005510, Jun. 2017, 10.1371/journal.pcbi.1005510.
[263]
M. E. Wolf and M. S. Lam, “A Data Locality Optimizing Algorithm,” SIGPLAN Not., vol. 26, no. 6, pp. 30–44, Jun. 1991, 10.1145/113446.113449.
[264]
S. Wolfram, Mathematica: A System for Doing Mathematics by Computer. Redwood City, CA: Addison-Wesley, 1988. ISBN: 978-0-201-19330-5
[265]
L. R. Wollenberg and M. Fritsch, Measurement of the Branching Fraction for the decay J/ψ → 𝛴+KS0 + c.c.,” BESIII Analysis Memo 484v1.7, Dec. 2022. https://docbes3.ihep.ac.cn/cgi-bin/DocDB/ShowDocument?docid=926&version=42
[266]
L. R. Wollenberg, “Measurement of the Branching Fraction of the Decay Channel J/ψ → 𝛴+KS0 + c.c.,” PhD thesis, Ruhr University Bochum, 2024.
[267]
H. Yukawa, “On the Interaction of Elementary Particles. I,” Prog. Theor. Phys. Suppl., vol. 17, no. PRINT–92–144, pp. 1–10, Feb. 1935, 10.1143/PTPS.1.1.
[268]
Z. Zhu et al., “The BESIII detector magnet,” in Proceedings of the Twentieth International Cryogenic Engineering Conference (ICEC20), Beijing: Elsevier,  2005, pp. 593–596. 10.1016/B978-008044559-5/50140-X.
[269]
G. Zweig, “An SU3 model for strong interaction symmetry and its breaking. Version 1.” CERN Document Server, Jan. 1964. 10.17181/CERN-TH-401.