Xiaoxue Chen, Ziya Xin, Dong Yang, Xinyuan Song, Jiudi Zhong, Jiahuan Weng, Yongxue Zhang, Dandan Liu, Wang Min, Kang Lu, Yuan Juan
{"title":"应用人工智能软件识别肺癌患者术前健康教育中的情绪:一项横断面研究。","authors":"Xiaoxue Chen, Ziya Xin, Dong Yang, Xinyuan Song, Jiudi Zhong, Jiahuan Weng, Yongxue Zhang, Dandan Liu, Wang Min, Kang Lu, Yuan Juan","doi":"10.1111/jnu.70001","DOIUrl":null,"url":null,"abstract":"<div>\n \n \n <section>\n \n <h3> Aim(s)</h3>\n \n <p>To determine the correlation between preoperative health education and the emotions of lung cancer patients, artificial intelligence software was used.</p>\n </section>\n \n <section>\n \n <h3> Design</h3>\n \n <p>This was a cross-sectional study.</p>\n </section>\n \n <section>\n \n <h3> Methods</h3>\n \n <p>This study included 210 lung cancer patients from Sun Yat-sen University Cancer Center and examined the impact of health education on patient emotions using an AI-based emotion analysis tool.</p>\n </section>\n \n <section>\n \n <h3> Results</h3>\n \n <p>This study indicated a significant relationship between the tone and emotional content of health education materials and patient emotions. Specifically, educational materials with an explanatory tone and negative sentiment appeared to impact patients' emotional states.</p>\n </section>\n \n <section>\n \n <h3> Conclusion</h3>\n \n <p>Quality improvements in health education can potentially benefit lung cancer patients' emotional well-being by minimizing the use of both explanatory tone and negative sentiment in educational content.</p>\n </section>\n \n <section>\n \n <h3> Implications for the Profession and/or Patient Care</h3>\n \n <p>This research suggests that the careful crafting of health education materials, taking into consideration tone and emotional expressions, can have a tangible positive effect on the emotional state of lung cancer patients.</p>\n </section>\n \n <section>\n \n <h3> Reporting Method</h3>\n \n <p>The study was reported in accordance with the STROBE guidelines.</p>\n </section>\n \n <section>\n \n <h3> Patient or Public Contribution</h3>\n \n <p>No patients, service users, caregivers, or members of the public were involved in the design, conduct, collection, analysis, or interpretation of the data for this study, nor were they involved in writing the manuscript.</p>\n </section>\n </div>","PeriodicalId":51091,"journal":{"name":"Journal of Nursing Scholarship","volume":"57 3","pages":"546-556"},"PeriodicalIF":2.4000,"publicationDate":"2025-02-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1111/jnu.70001","citationCount":"0","resultStr":"{\"title\":\"Application of Artificial Intelligence Software to Identify Emotions of Lung Cancer Patients in Preoperative Health Education: A Cross-Sectional Study\",\"authors\":\"Xiaoxue Chen, Ziya Xin, Dong Yang, Xinyuan Song, Jiudi Zhong, Jiahuan Weng, Yongxue Zhang, Dandan Liu, Wang Min, Kang Lu, Yuan Juan\",\"doi\":\"10.1111/jnu.70001\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div>\\n \\n \\n <section>\\n \\n <h3> Aim(s)</h3>\\n \\n <p>To determine the correlation between preoperative health education and the emotions of lung cancer patients, artificial intelligence software was used.</p>\\n </section>\\n \\n <section>\\n \\n <h3> Design</h3>\\n \\n <p>This was a cross-sectional study.</p>\\n </section>\\n \\n <section>\\n \\n <h3> Methods</h3>\\n \\n <p>This study included 210 lung cancer patients from Sun Yat-sen University Cancer Center and examined the impact of health education on patient emotions using an AI-based emotion analysis tool.</p>\\n </section>\\n \\n <section>\\n \\n <h3> Results</h3>\\n \\n <p>This study indicated a significant relationship between the tone and emotional content of health education materials and patient emotions. 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Application of Artificial Intelligence Software to Identify Emotions of Lung Cancer Patients in Preoperative Health Education: A Cross-Sectional Study
Aim(s)
To determine the correlation between preoperative health education and the emotions of lung cancer patients, artificial intelligence software was used.
Design
This was a cross-sectional study.
Methods
This study included 210 lung cancer patients from Sun Yat-sen University Cancer Center and examined the impact of health education on patient emotions using an AI-based emotion analysis tool.
Results
This study indicated a significant relationship between the tone and emotional content of health education materials and patient emotions. Specifically, educational materials with an explanatory tone and negative sentiment appeared to impact patients' emotional states.
Conclusion
Quality improvements in health education can potentially benefit lung cancer patients' emotional well-being by minimizing the use of both explanatory tone and negative sentiment in educational content.
Implications for the Profession and/or Patient Care
This research suggests that the careful crafting of health education materials, taking into consideration tone and emotional expressions, can have a tangible positive effect on the emotional state of lung cancer patients.
Reporting Method
The study was reported in accordance with the STROBE guidelines.
Patient or Public Contribution
No patients, service users, caregivers, or members of the public were involved in the design, conduct, collection, analysis, or interpretation of the data for this study, nor were they involved in writing the manuscript.
期刊介绍:
This widely read and respected journal features peer-reviewed, thought-provoking articles representing research by some of the world’s leading nurse researchers.
Reaching health professionals, faculty and students in 103 countries, the Journal of Nursing Scholarship is focused on health of people throughout the world. It is the official journal of Sigma Theta Tau International and it reflects the society’s dedication to providing the tools necessary to improve nursing care around the world.