Deep learning in abdominopelvic digital subtraction angiography: a systematic review of interventional radiology applications

Deep learning (DL) is increasingly integrated into clinical workflows [1]. Interventional radiology (IR), which relies on imaging for procedural guidance, can potentially benefit from these advancements [2]. Automated image analysis, noise reduction, motion correction, and real-time anomaly detection could enhance precision. These algorithms may optimize pre-procedural planning, enable more accurate vessel segmentation, improve detection of vascular abnormalities, enable real-time guidance durin…

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