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Use of artificial neural networks in chemical addiction stages detection of adolescents

Использование метода исусственных нейронных сетей при опредлении стадии химической аддикции подростков
[Zeitschriftenartikel]

Bardadymov, Vasiliy Anatolevich

Abstract

Today there is no unified approach to description of the stages of addiction and evolution of adolescent addiction formation. In this paper we consider two main points. At first we describe the different approaches to the selection stages of addictive behavior. The second point is the descriptio... mehr

Today there is no unified approach to description of the stages of addiction and evolution of adolescent addiction formation. In this paper we consider two main points. At first we describe the different approaches to the selection stages of addictive behavior. The second point is the description of using the method of constructing artificial neural networks to determine the formation of chemical addiction. Also this article describes the theoretical approaches to the evolution stages of dependence and to the construction of artificial neural networks. It is experimentally proved the importance and logic of constructing assessment stage of addictive behavior, described the main parameters of this assessment, and considered the main characteristics of sentence groups. Thus, we demonstrate the number of objective advantages of artificial neural networks to the classical methods. It is create possibility using artificial neural networks in professionals’ practice working with the assessment of adolescent addiction.... weniger

Klassifikation
soziale Probleme
psychische Störungen, Behandlung und Prävention

Freie Schlagwörter
addiction; latent phases of addictive behavior; artificial neural networks

Sprache Dokument
Russisch

Publikationsjahr
2012

Seitenangabe
18 S.

Zeitschriftentitel
Modern Research of Social Problems (2012) 2

ISSN
2218-7405

Status
Veröffentlichungsversion; begutachtet (peer reviewed)

Lizenz
Digital Peer Publishing Licence - Basismodul


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© 2007 - 2025 Social Science Open Access Repository (SSOAR).
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