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基于AI智能体技术赋能的尘肺病诊疗沟通模式优化研究

鞠牛 陈彦瑾 孙小钧 梁玉成

新医学2026,Vol.57Issue(4):339-349,11.
新医学2026,Vol.57Issue(4):339-349,11.DOI:10.12464/j.issn.0253-9802.2025-0421

基于AI智能体技术赋能的尘肺病诊疗沟通模式优化研究

A study on optimizing the diagnostic and therapeutic communication model for pneumoconiosis care empowered by AI agent technology

鞠牛 1陈彦瑾 2孙小钧 2梁玉成3

作者信息

  • 1. 中山大学附属第七医院临床医学人文研究中心、全科医学科,广东 深圳 518107
  • 2. 暨南大学新闻与传播学院,广东 广州 510632
  • 3. 中山大学社会学与社会工作系,广东 广州 510275
  • 折叠

摘要

Abstract

Objective To develop an AI agent dedicated to assisting the diagnosis and treatment of pneumoconiosis,improve clinical communication outcomes and treatment adherence,and promote precision prevention and control of pneumoconiosis.Methods A cross-sectional study was conducted by recruiting 388 patients with pneumoconiosis in Guangdong Province.Behavioral characteristics and difficulties in this population were analyzed and incorporated into workflow scripts.Unstructured interviews were conducted with 4 patients,2 respiratory physicians,1 volunteer from a public welfare organization,and 1 occupational disease litigation attorney.Based on the questionnaire and interview results,an AI agent was developed on the Coze platform,and its effectiveness and advantages were evaluated through specialist physician assessment and comparison with the use of general-purpose large models.Results A total of 357 patients were ultimately included,of whom 344 were male(96.4%).Questionnaire results showed that,regarding disease cognition,patients'treatment cognition was positively influenced only by educational level(B=0.110,β=0.163,P<0.01).Symptom cognition was influenced not only positively by educational level(B=0.082,β=0.112,P<0.05)but also negatively by hope level(B=−0.480,β=−0.190,P<0.001).The total cognition score was positively influenced by educational level(B=0.192,β=0.115,P<0.05)and negatively influenced by hope level(B=−0.754,β=−0.131,P<0.05).Regarding self-management capacity,female patients had higher self-management capacity than male patients(B=6.875,β=0.156,P<0.01).Educational level,disease stage,degree of media exposure,and hope level all showed positive effects(B=0.519,β=0.110,P<0.05;B=1.134,β=0.125,P<0.05;B=0.782,β=0.323,P<0.001;B=2.090,β=0.128,P<0.05).Unstructured interview results showed that many patients had passive information behaviors,lacked health education support from primary-level organizations,and had a structural imbalance in disease cognition;interviewees without pneumoconiosis generally considered that patients had certain problems in obtaining disease information and in physician-patient communication.The AI agent"E Xiaozhu",developed to address these issues,includes the following core functions:knowledge-graph-based intelligent Q&A,standardized guidance for symptom self-assessment,generation of personalized health management plans,and pre-visit communication assistance.Two specialist physicians reported that"E Xiaozhu"has adequate reliability and scientific rigor.A comparison of human-AI interaction in response to specific diagnostic and therapeutic questions between the AI agent"E Xiaozhu"and general-purpose large models such as DeepSeek and Xinghuo showed that the AI agent can provide diagnostic and therapeutic information more directly from a specialist physician perspective,and offers emotional support,thereby facilitating patients'active disease management.Therefore,the AI agent"E Xiaozhu"can optimize the diagnostic and therapeutic communication model by improving treatment efficiency and information completeness,considering patient needs,and analyzing complex lesions.Conclusion The AI agent developed based on the cognitive and behavioral characteristics of patients with pneumoconiosis can assist in providing more comprehensive diagnosis and life advice,and to improve treatment and communication outcomes.

关键词

尘肺病/患者/AI智能体/诊疗/沟通

Key words

Pneumoconiosis/Patients/AI agent/Diagnosis and treatment/Communication

引用本文复制引用

鞠牛,陈彦瑾,孙小钧,梁玉成..基于AI智能体技术赋能的尘肺病诊疗沟通模式优化研究[J].新医学,2026,57(4):339-349,11.

基金项目

教育部人文社会科学重点研究基地重大项目(22JJD720022) (22JJD720022)

暨南大学中央高校基本科研业务费项目(23JNQMX55) (23JNQMX55)

新医学

0253-9802

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