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Role and progress of artificial intelligence in radiodiagnosing vascular calcification: a narrative review
Zhiqi Zhong1, Wenjun Yang1, Chengcheng Zhu2
1Department of Cardiology, Affiliated Hospital of Jiangsu University, Zhenjiang, China.
Insights
Artificial intelligence (AI) is revolutionizing vascular calcification diagnosis in radiology, offering high speed and accuracy. AI tools now assist radiologists in efficiently diagnosing various calcification types, improving patient outcomes.
Area of Science:
- Radiology
- Medical Imaging
- Artificial Intelligence
Background:
- Vascular calcification is a critical prognostic indicator for cardiovascular diseases, CKD, and diabetes.
- Radiology faces challenges with increasing workloads and decreasing accuracy in diagnosing vascular calcification.
- Artificial intelligence (AI) presents a solution with its potential for high-speed and accurate image analysis.
Purpose of the Study:
- To review the role and progress of AI in the diagnostic radiology of vascular calcification.
- To assess AI's application across different types of vascular calcification.
- To highlight AI's potential to enhance diagnostic efficiency and accuracy.
Main Methods:
- A systematic literature search was conducted in PubMed and Web of Science.
- Keywords included "artificial intelligence", "machine learning", "deep learning", and "vascular calcification".
- Qualitative analysis of 62 selected articles was performed to synthesize findings on AI's role.
Main Results:
- AI has been applied to diagnosing five types of vascular calcification: coronary artery, thoracic aortic, abdominal aortic, carotid artery, and breast artery.
- Deep learning (DL) shows promising performance in vascular calcification diagnosis.
- AI achieves reliable accuracy and efficiency comparable to human experts, aiding radiologists.
Conclusions:
- Advanced AI demonstrates expert-level accuracy and speed in vascular calcification diagnosis.
- AI enhances imaging equipment's ability to provide reliable quantification by reducing noise and artifacts.
- Future research should focus on expanding AI applications to more calcification types and improving result interpretation.
Background And Objective:
Vascular calcification has important clinical significance due to its vital prognostic value for cardiovascular diseases, chronic kidney disease (CKD), diabetes, fracture, and other multisystem diseases. Radiology is the main diagnostic method of it, but facing great pressure such as the increasing workload and decreasing working accuracy rate. Therefore, radiology needs to find a way out to better realize the clinical value of vascular calcification. Artificial intelligence (AI) encompasses any algorithm imitating human intelligence. AI has shown great potential in image analysis, such as its high speed and accuracy, becoming the savior of the current situation. In order to promote more rational utilization, the role and progress of AI in this field were reviewed.
Methods:
A search was conducted in PubMed and Web of Science. The key words included "artificial intelligence", "machine learning", "deep learning", and "vascular calcification". The qualitative analysis of literature was achieved through repeated deliberation after refining valuable content. The theme is the role and progress of AI in the diagnostic radiology of vascular calcification.
Key Content And Findings:
Sixty-two articles were included. AI has been applied to the diagnostic radiology of 5 types of vascular calcification, including coronary artery calcification (CAC), thoracic aortic calcification (TAC), abdominal aortic calcification (AAC), carotid artery calcification, and breast artery calcification (BAC). Deep learning (DL), the latest technology in this field has been well applied and satisfactorily performed. Radiologists have been able to achieve efficient diagnosis of 5 types of vascular calcification through AI, with reliable accuracy.
Conclusions:
Increasingly, advanced AI has achieved an accuracy comparable to that of human experts, with a faster speed. Moreover, the ability to reduce noise and artifacts enables more imaging equipment to obtain reliable quantification. AI has acquired the ability to cooperate with radiology departments in future work. However, the research in AAC and carotid artery calcification can be more in-depth, and more types of vascular calcification and more fields of radiology should be expanded to. The interpretation of results made by AI and the promotion of existing achievements to the development of other disciplines are also the focus in future.
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