Triple
T3411690
| Position | Surface form | Disambiguated ID | Type / Status |
|---|---|---|---|
| Subject | Tomonaga–Schwinger equation |
E71910
|
entity |
| Predicate | instanceOf |
P0
|
FINISHED |
| Object | equation in quantum field theory |
C4653
|
CONCEPT FINISHED |
How this triple was built (1 step)
Every LLM step that produced this triple, in pipeline order — named-entity classification, the disambiguation choices (the exact options shown, with the pick highlighted), and the generated description. The batch + timestamp of each is in the Provenance table below.
CD
Concept disambiguation
gpt-5-mini-2025-08-07
Target class: equation in quantum field theory Context triple: [Tomonaga–Schwinger equation, instanceOf, equation in quantum field theory]
-
A.
problem in field theory
A problem in field theory is a conceptual or computational question involving the properties, structures, and interactions of fields—such as scalar, vector, or gauge fields—typically formulated within the framework of classical or quantum field theory.
-
B.
equation in statistical physics
An equation in statistical physics is a mathematical relation that connects microscopic properties of particles and their interactions to macroscopic thermodynamic quantities, enabling the prediction of a system’s collective behavior.
-
C.
relativistic wave equation
chosen
A relativistic wave equation is a differential equation, such as the Klein–Gordon or Dirac equation, that describes how quantum fields or particles evolve in space and time in a way consistent with the principles of special relativity.
-
D.
equations of electromagnetism
Equations of electromagnetism are the mathematical laws, notably Maxwell’s equations, that describe how electric and magnetic fields are generated, interact, and propagate through space and matter.
-
E.
result in quantum electrodynamics
A result in quantum electrodynamics is a theoretically derived or experimentally confirmed prediction about how charged particles and electromagnetic fields interact, typically expressed through precise calculations of observable quantities such as scattering amplitudes, cross sections, or radiative corrections.
- F. None of above.
Provenance (1 batch)
The batch behind each pipeline step, in order, with when it ran. Timestamps are batch-level — stages were processed in waves, so the object chain (NER → NED1 → NEDg → NED2) reads in order, but predicate / elicitation batches can sit in a different wave.
| Step | Stage | Batch ID | Status | When |
|---|---|---|---|---|
| creating | Elicitation | batch_69ad85ac312481909e7027ced1456a9f |
completed | March 8, 2026, 2:20 p.m. |
Created at: March 8, 2026, 3:15 p.m.