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远程精神病学与人工智能:对可及性精神科护理新兴方法的结构化综述

Telepsychiatry and Artificial Intelligence: A Structured Review of Emerging Approaches to Accessible Psychiatric Care.

作者信息

Bobkov Artem, Cheng Feier, Xu Jinpeng, Bobkova Tatiana, Deng Fangmin, He Jingran, Jiang Xinyan, Khuzin Dinislam, Kang Zheng

机构信息

School of Health Management, Harbin Medical University, Harbin 150081, China.

Department of Rheumatology and Immunology, The Second Affiliated Hospital of Harbin Medical University, Harbin 150001, China.

出版信息

Healthcare (Basel). 2025 Jun 5;13(11):1348. doi: 10.3390/healthcare13111348.

Abstract

BACKGROUND/OBJECTIVES: Artificial intelligence is rapidly permeating the field of psychiatry. It offers novel avenues for the diagnosis, treatment, and prediction of mental health disorders. This structured review aims to consolidate current approaches to the application of AI in telepsychiatry. In addition, it evaluates their technological maturity, clinical utility, and ethical-legal robustness.

METHODS

A systematic search was conducted across the PubMed, Scopus, and Google Scholar databases for the period spanning 2015 to 2025. The selection and analysis processes adhered to the PRISMA 2020 guidelines. The final synthesis included 44 publications, among which 14 were empirical studies encompassing a broad spectrum of algorithmic approaches-ranging from neural networks and natural language processing (NLP) to multimodal architectures.

RESULTS

The review revealed a wide array of AI applications in telepsychiatry, encompassing automated diagnostics, therapeutic support, predictive modeling, and risk stratification. The most actively employed techniques include natural language and speech processing, multimodal analysis, and advanced forecasting models. However, significant barriers to implementation persist-ethical (threats to autonomy and risks of algorithmic bias), technological (limited generalizability and a lack of explainability), and legal (ambiguous accountability and weak regulatory frameworks).

CONCLUSIONS

This review underscores a growing disconnect between the rapid evolution of AI technologies and the institutional maturity of tools suitable for scalable clinical integration. Despite notable technological advances, the clinical adoption of AI in telepsychiatry remains limited. The analysis identifies persistent methodological gaps and systemic barriers that demand coordinated efforts across research, technical, and regulatory communities. It also outlines key directions for future empirical studies and interdisciplinary development of implementation standards.

摘要

背景/目的:人工智能正在迅速渗透到精神病学领域。它为心理健康障碍的诊断、治疗和预测提供了新途径。本结构化综述旨在整合当前人工智能在远程精神病学中的应用方法。此外,还评估了它们的技术成熟度、临床效用以及伦理法律稳健性。

方法

在2015年至2025年期间,对PubMed、Scopus和谷歌学术数据库进行了系统检索。选择和分析过程遵循PRISMA 2020指南。最终综合纳入了44篇出版物,其中14篇是实证研究,涵盖了广泛的算法方法——从神经网络、自然语言处理(NLP)到多模态架构。

结果

该综述揭示了人工智能在远程精神病学中的广泛应用,包括自动诊断、治疗支持、预测建模和风险分层。最常用的技术包括自然语言和语音处理、多模态分析以及先进的预测模型。然而,实施过程中仍然存在重大障碍——伦理方面(对自主性的威胁和算法偏差风险)、技术方面(通用性有限和缺乏可解释性)以及法律方面(责任不明确和监管框架薄弱)。

结论

本综述强调了人工智能技术的快速发展与适用于可扩展临床整合的工具的机构成熟度之间日益扩大的脱节。尽管取得了显著的技术进步,但人工智能在远程精神病学中的临床应用仍然有限。分析确定了持续存在的方法学差距和系统性障碍,需要研究、技术和监管社区共同努力。它还概述了未来实证研究和实施标准跨学科发展的关键方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b06d/12155282/615870e04b69/healthcare-13-01348-g001.jpg

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