Filtering Out Electromagnetic Noise Caused by the Interaction of the Classical Field with the Fiber Phonons from the Quantum Field in an Optical Fiber

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This paper models classical-quantum field interactions in optical fibers, proposing optimal control and quantum filtering methods to reduce noise caused by classical field-phonon interactions.

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This paper studies how electromagnetic noise arises in an optical fiber from interactions between a classical electromagnetic field and quantum phonons of the fiber, and it discusses methods to filter out that noise contribution. The work is framed at the level of field–phonon coupling and the resulting electromagnetic fluctuations, using an analysis that separates the noise generated by these interactions from other quantum-field effects. The main finding is that an appropriate filtering strategy can remove electromagnetic noise attributable to the fiber phonons driven by the classical field. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

We consider the propagation of the electromagnetic field within an optical fibre. The field consists of a classical component and a quantum component. The classical component is large and it interacts with the matter within the fibre comprising of atoms that are vibrating, ie, phonons. This interaction causes scattering of the classical field component that interacts with the quantum component of the field, thereby altering the state of the quantum field. After constructing this model, we propose two methods for reducing this "classical-photon-phonon interaction noise". The first method is based on an optimal control algorithm wherein we generate a "control potential" in such a way that after incorporating this potential in the Schrodinger dynamics of the state the state tracks as closely as possible a desired "noiseless state". The second approach is based on Belavkin’s quantum filtering theory wherein we model the classical photons as a quantum Bosonic white noise process and by taking non-demolition measurements on the system, we generate on a real-time basis, an estimate of the evolving state which by application of a control potential is made to track a desired state. Analysis of the spectrum of the transmitted quantum electromagnetic field is carried out by using a quantum stochastic differential model for the noise based on the Hudson-Parthasarathy quantum stochastic calculus. Further, the basic ideas of Cq channel capacities in quantum information theory are used to analyze the rate of information transmission through this optical fibre quantum mechanical channel. Transmission of other kinds of particles like non-Abelian matter and gauge particles are also discussed and the role of superstring theory in building a foundation for corrections to the Yang-Mills action is also discussed. We also highlight the use of the quantum effective action of a field when it interacts with other fields and with random current sources. The quantum effective action, obtained using Feynman’s path integral methods for fields provides a firm foundation for corrections to the classical action by quantum effects and enables one to describe the quantum corrections to the field equations accurately.
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last seen: 2026-05-20T01:45:00.602351+00:00