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Purpose To evaluate the feasibility of artificial intelligence language generation models (AILMs) in medical education, we examined the utilization patterns and attitudes of medical students in a developed area of Southern China. Methods We conducted a cross-sectional questionnaire survey assessing educational background, awareness, usage, and attitudes towards AILMs. Attitudes were measured using a five-point Likert scale, where scores of 4 or above indicated support, scores of 2 or below indicated opposition, and a score of 3 indicated a neutral stance. Results Among the 254 respondents, the average awareness score for AILMs was 2.4. AILMs were primarily used for solving medical and academic problems. Although students were aware of many domestic AILM products, foreign products were preferred. More than half of the students used AILMs less than once a week, and 13 (5.1%) students had never used them. A significant portion supported the integration of AILMs in current (187/254, 73.6%) and future (194/249, 78.0%) education, with a strong correlation between these attitudes (² = 46.351, P < 0.001). Concerns about technological immaturity were a major reason for opposition. A higher proportion of those who opposed the use of AILM had advanced computer skills compared to those with lack of or basic computer skills (10/47, 13.5% vs. 9/177, 5.1%, P = 0.010). Even after adjusting for specialty and academic performance, advanced computer skills were independently linked to opposition (OR 2.959, 95% CI 1.109 - 7.898). Conclusion While medical students generally support the use of AILMs, broader acceptance requires addressing challenges such as enhancing the quality and promotion of domestic AILMs and considering the diverse perspectives of individuals with varying levels of computer proficiency.
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http://dx.doi.org/10.7759/cureus.89425 | DOI Listing |
Cont Lens Anterior Eye
September 2025
Keele University, Stafforshire, UK.
Purpose: To investigate associations between dry eye disease (DED) symptoms and psychological distress (depression, anxiety, stress) among undergraduate health sciences and nursing students in the Gaza Strip during the 2023-2025 conflict period.
Methods: A cross-sectional study used convenience sampling via WhatsApp and face-to-face interviews between 4 February and 29 April 2025. Participants completed a demographic form, the Arabic Ocular Surface Disease Index (OSDI), and the Arabic Depression Anxiety Stress Scale-8 (DASS-8).
Am J Hosp Palliat Care
September 2025
Division of Geriatrics and Palliative Medicine, Weill Cornell Medicine/New York-Presbyterian Hospital, New York, NY, USA.
Palliative Care (PC) is a rapidly expanding field, with a more recent shift toward outpatient services to enhance patient care. Palliative Care educators can provide fulfilling outpatient PC experiences to trainees across various disciplines, including medical students, physician fellows, nurse practitioner students, and social work interns. We present five strategies for optimizing training in the outpatient PC setting.
View Article and Find Full Text PDFJ Sch Health
September 2025
University of Michigan-Flint, Flint, Michigan, USA.
Background: Health-related issues are perhaps the most common reason for student absences, as nearly every student has missed school due to an illness or injury at some point. Researchers in medicine and education have thoroughly documented the relationship between health and attendance.
Methods: Descriptive trends are analyzed.
Nurse Educ Pract
September 2025
RAISE Initiative, Heilbrunn Department of Population and Family Health, Mailman School of Public Health, Columbia University, 60 Haven Ave, New York, NY 10032, USA. Electronic address:
Aim: To determine the strengths and weaknesses of the midwifery education program at three IMC-supported schools and their associated clinical sites in South Sudan.
Background: Evidence indicates that investing in midwifery education can substantially reduce maternal mortality, particularly in low- and middle-income countries.
Design: A cross-sectional mixed methods assessment.
Am J Surg
September 2025
Department of Surgery, Queen Mary Hospital, the University of Hong Kong, Hong Kong. Electronic address:
Introduction: Evaluating indeterminate thyroid nodules(ITN) is challenging, especially without molecular tests. This study examines whether artificial intelligence (AI) assistance can improve ITN diagnostic accuracy and bridge expertise gaps in surgeon-performed ultrasound.
Methods: 134 ultrasound clips from 67 patients with ITN were reviewed by doctors of four levels: endocrine-surgery specialist, senior residents, junior residents, and medical student.