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沙特放射科人员对人工智能实施的认知:一项横断面研究。

Saudi Radiology Personnel's Perceptions of Artificial Intelligence Implementation: A Cross-Sectional Study.

作者信息

Qurashi Abdulaziz A, Alanazi Rashed K, Alhazmi Yasser M, Almohammadi Ahmed S, Alsharif Walaa M, Alshamrani Khalid M

机构信息

Diagnostic Radiology Technology Department, College of Applied Medical Sciences, Taibah University, Madinah, Saudi Arabia.

College of Applied Medical Sciences, King Saud bin Abdulaziz University for Health Sciences, Jeddah, Saudi Arabia.

出版信息

J Multidiscip Healthc. 2021 Nov 23;14:3225-3231. doi: 10.2147/JMDH.S340786. eCollection 2021.

Abstract

PURPOSE

Artificial intelligence (AI) in radiology has been a subject of heated debate. The external perception is that algorithms and machines cannot offer better diagnosis than radiologists. Reluctance to implement AI maybe due to the opacity in how AI applications work and the challenging and lengthy validation process. In this study, Saudi radiology personnel's familiarity with AI applications and its usefulness in clinical practice were investigated.

METHODS

A cross-sectional study was conducted in Saudi Arabia among radiology personnel from March to April 2021. Radiology personnel nationwide were surveyed electronically using Google form. The questionnaire included 12-questions related to AI usefulness in clinical practice and participants' knowledge about AI and their acceptance level to learn and implement this technology into clinical practice. Participants' trust level was also measured; Kruskal-Wallis test was used to examine differences between groups.

RESULTS

A total of 224 respondents from various radiology-related occupations participated in the survey. The lowest trust level in AI applications was shown by radiologists (p = 0.033). Eighty-two percent of participants (n = 184) had never used AI in their departments. Most respondents (n = 160, 71.4%) reported lack of formal education regarding AI-based applications. Most participants (n = 214, 95.5%) showed strong interest in AI education and are willing to incorporate it into the clinical practice of radiology. Almost half of radiography students (22/46, 47.8%) believe that their job might be at risk due to AI application (p = 0.038).

CONCLUSION

Radiology personnel's knowledge of AI has a significant impact on their willingness to learn, use and adapt this technology in clinical practice. Participants demonstrated a positive attitude towards AI, showed a reasonable understanding and are highly motivated to learn and incorporate it into clinical practice. Some participants felt that their jobs were threatened by AI adaptation, but this belief might change with good training and education programmes.

摘要

目的

放射学中的人工智能(AI)一直是激烈争论的主题。外界的看法是,算法和机器无法提供比放射科医生更好的诊断。不愿实施人工智能可能是由于人工智能应用的工作方式不透明以及具有挑战性且冗长的验证过程。在本研究中,调查了沙特放射学人员对人工智能应用的熟悉程度及其在临床实践中的有用性。

方法

2021年3月至4月在沙特阿拉伯对放射学人员进行了一项横断面研究。使用谷歌表单对全国的放射学人员进行电子调查。问卷包括12个与人工智能在临床实践中的有用性、参与者对人工智能的了解以及他们将该技术学习并应用于临床实践的接受程度相关的问题。还测量了参与者的信任程度;使用Kruskal-Wallis检验来检查组间差异。

结果

共有224名来自各种放射学相关职业的受访者参与了调查。放射科医生对人工智能应用的信任程度最低(p = 0.033)。82%的参与者(n = 184)在其科室从未使用过人工智能。大多数受访者(n = 160,71.4%)报告缺乏关于基于人工智能的应用的正规教育。大多数参与者(n = 214,95.5%)对人工智能教育表现出浓厚兴趣,并愿意将其纳入放射学临床实践。几乎一半的放射摄影专业学生(22/46,47.8%)认为由于人工智能的应用他们的工作可能面临风险(p = 0.038)。

结论

放射学人员对人工智能的了解对他们在临床实践中学习、使用和采用这项技术的意愿有重大影响。参与者对人工智能表现出积极态度,显示出合理的理解,并极有动力学习并将其纳入临床实践。一些参与者认为他们的工作受到人工智能应用的威胁,但这种看法可能会随着良好的培训和教育计划而改变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7229/8627310/66c1bc8a6c37/JMDH-14-3225-g0001.jpg

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