Quantum· 2026Q1
Measuring a Quantum Measure Exceeding Unity
- 3citations
- Q1SCImago
- 2026year
Short summary
An optical experiment demonstrates a quantum measure (μ) exceeding unity (μ(E) = 1.172 ± 0.019, agreeing with theoretical 5/4), validating a history-based formalism that incorporates quantum interference.
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Key points
- A quantum measure μ(E) = 1.172 ± 0.019 was experimentally measured for a photonic event.
- This measured value exceeds the classical probability limit of 1, agreeing with the theoretical prediction of 5/4.
- The measurement was achieved using an ancilla-based filtering scheme in an optical experiment.
- The quantum measure μ is defined within Quantum Measure Theory (QMT), which incorporates quantum interference.
AI-generated from the title and abstract; the full text is not read.
Abstract
The history based formalism known as Quantum Measure Theory (QMT) generalizes the concept of probability-measure so as to incorporate quantum interference. The resulting quantum measure μ is defined for arbitrary events (sets of histories), not just for observables at a fixed moment of time. Thanks to interference effects, μ can exceed unity, exhibiting its non-classical nature in a particularly striking manner. Here, in an optical experiment, we illustrate an ancilla based filtering scheme that gives operational meaning to the quantum measure. For a specific photonic event E , we report a measured value of μ ( E ) = 1.172 − 0.019 + 0.013 , which within errors agrees with the theoretical value of 5 / 4 , while exceeding the maximum value permissible for a classical probability (namely 1 ) by 13.32 upper or 8.89 lower percentile widths. The directly observed quantity is an ordinary detector probability p D ≤ 1 (or, with laser light, an equivalent power ratio); the value μ ( E ) > 1 is inferred via the calibrated relation μ ( E ) = 2 p D for our filter.If an unconventional theoretical concept is to play a role in meeting the foundational challenges of quantum theory, it seems important to bring it into contact with experiment as much as possible. Our experiment does this for the quantum measure.
The authors' abstract, as published at the source. Quantum, 2026 · DOI ↗
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Field: Statistics and Probability
Statistics and ProbabilityMathematics