Phenomenological quantum mechanics I: phenomenology of quantum observables
Abstract
We propose an exercise in which one attempts to deduce the formalism of quantum mechanics solely from phenomenological observations. The only assumed inputs are obtained through sequential probing of quantum systems; no presuppositions about the underlying mathematical structures are permitted. We demonstrate that it is indeed possible to derive, on this basis, a complete and fully functional formalism rooted in the structures of Hilbert spaces. However, the resulting formalism--the bi-trajectory formalism--differs significantly from the standard state-focused formulation. In Part I of the paper, we analyze the outcomes of various experiments involving sequential measurements of quantum observables. These outcomes are quantitatively described by phenomenological multi-time probability distributions, estimated from experimental data. Our first conclusion is that the theory describing these experiments must be non-classical: the measured sequences cannot be interpreted as sampling of a uni-trajectory representing the system's observable. The non-classical nature of the investigated systems manifests in a range of observed phenomena, including quantum interference, the quantum Zeno effect, and uncertainty relations between the measured observables.
Keywords
Cite
@article{arxiv.2410.14410,
title = {Phenomenological quantum mechanics I: phenomenology of quantum observables},
author = {Piotr Szańkowski and Davide Lonigro and Fattah Sakuldee and Łukasz Cywiński and Dariusz Chruściński},
journal= {arXiv preprint arXiv:2410.14410},
year = {2025}
}
Comments
Part I of a two-part series; Part II arXiv:2507.04812. Note that the original submission arXiv:2410.14410v1 has been now split into two parts. Submitted to Quantum Journal