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Adaptive tracking algorithm based on direction field using ML estimation in angiogram

机译:血管造影中基于ML估计的基于方向场的自适应跟踪算法

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We present a new tracking algorithm for the main artery contours in a digital angiogram. The proposed work extracts features and profiles the narrow blood vessel, mainly the blood vessel in the digital subtraction angiography image. A consecutive value is performed on the boundary detection by calculating maximum-likelihood (ML) estimation on adjacent pixels. The proposed algorithm adaptively detects the position of the centerline as a direction vector with the entire vessel's direction field. ML estimation is most effective at profiling for a vessel's contour having anomalies and noise. This proposed algorithm is intended to support radiologists in diagnosis, radiation therapy planning, and surgical planning.
机译:我们为数字血管造影中的主要动脉轮廓提出了一种新的跟踪算法。拟议的工作提取特征并描绘出狭窄血管的轮廓,主要是数字减影血管造影图像中的血管。通过计算相邻像素的最大似然(ML)估计,对边界检测执行连续值。所提出的算法自适应地将中心线的位置检测为整个血管方向场的方向向量。 ML估计在分析具有异常和噪声的船只轮廓时最有效。该拟议算法旨在为放射科医生提供诊断,放射治疗计划和外科手术计划的支持。

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