Evidence map›Paper›PMID 41963600›Full record

ArticleScientific reports2026

Latent profile analysis of adolescents' active health behaviors and the predictive factors.

Zhenzhen Zhang, Yuhan Xu, Jinzhen Jin, Yinhe Xuan, XiangDan Shen

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In one paragraph

Article in Scientific reports, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

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4 · The record

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5 · Who and what money

Authors and funding

5 authors.

Zhenzhen ZhangSchool of Nursing, Yanbian University, 977 Park Rood, Yanji City, Yanbian Prefecture, 133000, Jilin Province, China.
Yuhan XuSchool of Nursing, Yanbian University, 977 Park Rood, Yanji City, Yanbian Prefecture, 133000, Jilin Province, China.
Jinzhen JinSchool of Nursing, Yanbian University, 977 Park Rood, Yanji City, Yanbian Prefecture, 133000, Jilin Province, China.
Yinhe XuanNursing Department of Yanbian Chaoyi Hospital, No. 633, Longdong Street, Yanbian Prefecture, 133000, Jilin Province, China.
XiangDan ShenSchool of Nursing, Yanbian University, 977 Park Rood, Yanji City, Yanbian Prefecture, 133000, Jilin Province, China. xdshen@ybu.edu.cn.

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

This study aimed to explore the latent profiles of adolescents’ active health behaviors and analyze the predictive factors of different latent profiles of active health behaviors. In December 2024, a survey was conducted among 1,093 middle school students from two rural schools in Anhui Province, China, using convenience sampling. The Adolescent Active Health Behavior Scale (AAHES), Family Functioning Scale (FF), and modified eHealth Literacy Scale (m-eHEALS) were adopted. Latent Profile Analysis (LPA) was used to identify the latent profiles of active health behaviors, and multivariable logistic regression analysis was applied to explore the relevant factors of active health behaviors. The active health behaviors of adolescents could be divided into three latent profiles: Negative Coping Type (27.5%), Unstable Type (46.1%), and Positive Development Type (26.3%). The predictive factors of adolescents’ active health behaviors included family functioning, digital health literacy, class cadre status, father’s educational level, exercise habits, dietary habits, electronic product usage, frequency of electronic product use, and frequently focused online information types. It is recommended that families and educators develop and implement targeted interventions based on the relevant factors to enhance adolescents’ active health behaviors.

Indexed as

Adolescent BehaviorHealth BehaviorAdolescentChinaDigital HealthExerciseFemaleHealth LiteracyHumansLatent Class AnalysisMaleSurveys and QuestionnairesActive health behaviorsAdolescentsLatent Profile Analysis (LPA)Predictive factors

Identifiers

PMID41963600
PMCPMC13230960

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