Functional Renormalization Group Approach for Signal Detection

Fuente: arXiv
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Hauptverfasser: Lahoche, Vincent, Samary, Dine Ousmane, Tamaazousti, Mohamed
Format: Preprint
Veröffentlicht: 2022
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author Lahoche, Vincent
Samary, Dine Ousmane
Tamaazousti, Mohamed
author_facet Lahoche, Vincent
Samary, Dine Ousmane
Tamaazousti, Mohamed
contents This review paper uses renormalization group techniques for signal detection in nearly-continuous positive spectra. We highlight universal aspects of the analogue field-theory approach. The first aim is to present an extended self-consistent construction of the analogue effective field-theory framework for data, which can be viewed as a maximum entropy model. In particular and exploiting universality arguments, we justify the $\mathbb{Z}_2$-symmetry of the classical action and we stress the existence of a large-scale (local) regime and of a small-scale (nonlocal) regime. Secondly and related to noise models, we observe the universal relation between phase transition and symmetry breaking in the vicinity of the detection threshold. Finally, we discuss the issue of defining the covariance matrix for tensorial-like data. Based on the cutting graph prescription, we note the superiority of definitions based on complete graphs of large size for data analysis.
format Preprint
id arxiv_https___arxiv_org_abs_2201_04250
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Functional Renormalization Group Approach for Signal Detection
Lahoche, Vincent
Samary, Dine Ousmane
Tamaazousti, Mohamed
High Energy Physics - Theory
Disordered Systems and Neural Networks
This review paper uses renormalization group techniques for signal detection in nearly-continuous positive spectra. We highlight universal aspects of the analogue field-theory approach. The first aim is to present an extended self-consistent construction of the analogue effective field-theory framework for data, which can be viewed as a maximum entropy model. In particular and exploiting universality arguments, we justify the $\mathbb{Z}_2$-symmetry of the classical action and we stress the existence of a large-scale (local) regime and of a small-scale (nonlocal) regime. Secondly and related to noise models, we observe the universal relation between phase transition and symmetry breaking in the vicinity of the detection threshold. Finally, we discuss the issue of defining the covariance matrix for tensorial-like data. Based on the cutting graph prescription, we note the superiority of definitions based on complete graphs of large size for data analysis.
title Functional Renormalization Group Approach for Signal Detection
topic High Energy Physics - Theory
Disordered Systems and Neural Networks
url https://arxiv.org/abs/2201.04250