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the claim
Instantons originate as non-perturbative solutions to Euclidean path integrals
the verdict
INSUFFICIENT LEANING
refutedsupported
the weight of evidence
4 sources for · 0 against

Retrieved physics literature frequently discusses instantons as non-perturbative solutions or saddles within path integral frameworks, but lacks a definitive foundational text directly stating their complete theoretical origin as non-perturbative solutions to Euclidean path integrals.

Evidence for · 4
2024 · cited by 0
Abstract We present a semiclassical non-perturbative approach for calculating the preheating process at the end of inflation. Our method involves integrating out the decayed particles within the path integral framework and subsequently determining world-line instanton solutions in the effective action. This enables us to obtain the effective action of the inflaton, with its imaginary part linked to the phenomenon of particle creation driven by coherent inflaton field oscillations. Additionally, we utilize the Bogoliubov transformation to investigate the evolution of particle density within the medium after multiple inflaton oscillations. We apply our approach to various final state particles, including scalar fields, tachyonic fields, and gauge fields. The non-perturbative approach provides analytical results for preheating that are in accord with previous methods.
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The analysis

rails:sufficiency:partial_only:for=0+3p:against=0+0p | v55:multi_partial_one_side:lean=lean_partial:for:one_sided

More for · 3
2006 · cited by 0
In this paper, we study Burger turbulence and the appearance of spatial coherent string dynamics structures for the statistical averaged vortex phase factor in a path integral framework. This result gives a strong mathematical method support to the unsolved long-standing Landau 1941's conjecture that in a turbulent field the flow vorticity should be confined to a limited region. Additionally, we present the exact instanton path-integral solubility — from a stochastic point of view — of a fluid flow bounded by a moving string (random) boundary together with a study of another exact path-integral solubility of a weakly stirred complete Navier–Stokes flow.
2025 · cited by 0
Lin, Maldacena, Rozenberg, and Shan (LMRS) presented a new information paradox in black hole physics by noticing that the entanglement and Rényi entropies in a two-sided black hole can become negative when the geometry contains a very large number of matter excitations behind the black hole horizon. While originally this puzzle was presented in the context of BPS two-sided black holes in two-dimensional supergravity, the negativity in fact persists for more general two-sided black holes in the presence of a large number of matter excitations. Since the entanglement and Rényi entropies in ordinary quantum systems cannot be negative, resolving this puzzle is a necessary step towards understanding the quantum mechanical description of black holes. In this paper, we explain how to address the entanglement negativity puzzle, both in the original setting discussed by LMRS and in more general non-supersymmetric settings, by summing over all non-perturbative contributions to the gravitational path integral. We then interpret this result from the point of view of a dual matrix integral, which we use to extend our analysis beyond the regime of validity of the genus re-summation performed in the gravitational path integral. In this regime, positivity is rescued by new saddles of the matrix integral, a one-eigenvalue instanton and a two-eigenvalue instanton. Finally, we formulate a similar puzzle and its resolution using random tensor network techniques.
2026 · cited by 0
Lin, Maldacena, Rozenberg, and Shan (LMRS) presented a new information paradox in black hole physics by noticing that the entanglement and Rényi entropies in a two-sided black hole can become negative when the geometry contains a very large number of matter excitations behind the black hole horizon. While originally this puzzle was presented in the context of BPS two-sided black holes in two-dimensional supergravity, the negativity in fact persists for more general two-sided black holes in the presence of a large number of matter excitations. Since the entanglement and Rényi entropies in ordinary quantum systems cannot be negative, resolving this puzzle is a necessary step towards understanding the quantum mechanical description of black holes. In this paper, we explain how to address the entanglement negativity puzzle, both in the original setting discussed by LMRS and in more general non-supersymmetric settings, by summing over all non-perturbative contributions to the gravitational path integral. We then interpret this result from the point of view of a dual matrix integral, which we use to extend our analysis beyond the regime of validity of the genus re-summation performed in the gravitational path integral. In this regime, positivity is rescued by new saddles of the matrix integral, a one-eigenvalue instanton and a two-eigenvalue instanton. Finally, we formulate a similar puzzle and its resolution using random tensor network techniques.
Everything we examined (5) — 3 independent sources
This check searched the claim as stated. It did not run a separate search for evidence against it.
  1. Effective action approach for preheatingpeer-reviewedno side taken
  2. SOME NON-PERTURBATIVE PATH INTEGRALS STUDIES IN STATISTICAL BURGER TURBULENCE: STRINGS AND STOCHASTIC INSTANTONS CONFIGURATIONSpeer-reviewedsame source L4no side taken
  3. Living on the edge: a non-perturbative resolution to the negativity of bulk entropiespeer-reviewedsame source L6no side taken
  4. Living on the edge: a non-perturbative resolution to the negativity of bulk entropiespeer-reviewedsame source L6no side taken
  5. SOME NON-PERTURBATIVE PATH INTEGRALS STUDIES IN STATISTICAL BURGER TURBULENCE: STRINGS AND STOCHASTIC INSTANTONS CONFIGURATIONSpeer-reviewedsame source L4no side taken
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first checked05 Aug 2026
judged → SUPPORTED · 5905 Aug 2026
held for human review08 Aug 2026
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