Applications of artificial intelligence in computed tomography imaging for phenotyping pulmonary hypertension

医学 计算机断层摄影术 肺动脉高压 放射科 医学物理学 人工智能 计算机科学
作者
Michael Sharkey,Elliot W. Checkley,Andrew J. Swift
出处
期刊:Current Opinion in Pulmonary Medicine [Lippincott Williams & Wilkins]
卷期号:30 (5): 464-472
标识
DOI:10.1097/mcp.0000000000001103
摘要

Purpose of review Pulmonary hypertension is a heterogeneous condition with significant morbidity and mortality. Computer tomography (CT) plays a central role in determining the phenotype of pulmonary hypertension, informing treatment strategies. Many artificial intelligence tools have been developed in this modality for the assessment of pulmonary hypertension. This article reviews the latest CT artificial intelligence applications in pulmonary hypertension and related diseases. Recent findings Multistructure segmentation tools have been developed in both pulmonary hypertension and nonpulmonary hypertension cohorts using state-of-the-art UNet architecture. These segmentations correspond well with those of trained radiologists, giving clinically valuable metrics in significantly less time. Artificial intelligence lung parenchymal assessment accurately identifies and quantifies lung disease patterns by integrating multiple radiomic techniques such as texture analysis and classification. This gives valuable information on disease burden and prognosis. There are many accurate artificial intelligence tools to detect acute pulmonary embolism. Detection of chronic pulmonary embolism proves more challenging with further research required. Summary There are numerous artificial intelligence tools being developed to identify and quantify many clinically relevant parameters in both pulmonary hypertension and related disease cohorts. These potentially provide accurate and efficient clinical information, impacting clinical decision-making.
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