Visual System Inspired Algorithm for Enhanced Visibility in Coronary Angiograms (VIAEVCA).

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY Biomimetics Pub Date : 2025-01-01 DOI:10.3390/biomimetics10010018
Hedva Spitzer, Yosef Shai Kashi, Morris Mosseri, Jacob Erel
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Abstract

Numerous efforts have been invested in previous algorithms to expose and enhance blood vessel (BV) visibility derived from clinical coronary angiography (CAG) procedures, such as noise reduction, segmentation, and background subtraction. Yet, the visibility of the BVs and their luminal content, particularly the small ones, is still limited. We propose a novel visibility enhancement algorithm, whose main body is inspired by a line completion mechanism of the visual system, i.e., lateral interactions. It facilitates the enhancement of the BVs along with simultaneous noise reduction. In addition, we developed a specific algorithm component that allows better visibility of small BVs and the various CAG tools utilized during the procedure. It is accomplished by enhancing the BVs' fine resolutions, located in the coarse resolutions at the BV zone. The visibility of the most significant clinical features during the CAG procedure was evaluated and qualitatively compared by the consensus of two cardiologists (MM and JE) to the algorithm's results. These included the visibility of the whole frame, the coronary BVs as well as the small ones, the main obstructive lesions within the BVs, and the various angiography interventional tools utilized during the procedure. The algorithm succeeded in producing better visibility of all these features, even under low-contrast or low-radiation conditions. Despite its major advantages, the algorithm also caused the appearance of disturbing vertebral and bony artifacts, which could somewhat lower diagnostic accuracy. Yet, viewing the processed images from multiple angles and not just from a single one and evaluating the cine mode usually overcomes this drawback. Thus, our novel algorithm potentially leads to a better clinical diagnosis, improved procedural capabilities, and a successful outcome.

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基于视觉系统的冠状动脉造影可见性增强算法(VIAEVCA)。
为了暴露和增强临床冠状动脉造影(CAG)过程中血管(BV)的可见性,如降噪、分割和背景减除,以前的算法已经投入了大量的努力。然而,bv的可见度和它们的流明内容,特别是小的,仍然是有限的。本文提出了一种新的视觉增强算法,该算法的主体灵感来自于视觉系统的直线补全机制,即横向相互作用。它有助于增强车辆的性能,同时降低噪音。此外,我们开发了一个特定的算法组件,可以更好地查看小型bv和过程中使用的各种CAG工具。这是通过提高BV的精细分辨率来实现的,BV位于BV区域的粗分辨率。通过两位心脏病专家(MM和JE)对算法结果的共识,对CAG过程中最重要临床特征的可见性进行了评估和定性比较。这些包括整个框架的可见性,冠状动脉bv和小bv, bv内的主要阻塞性病变,以及手术过程中使用的各种血管造影介入工具。即使在低对比度或低辐射条件下,该算法也能更好地显示所有这些特征。尽管该算法具有主要优点,但也会导致令人不安的椎体和骨骼伪影的出现,这可能会降低诊断的准确性。然而,从多个角度观看处理后的图像,而不仅仅是从一个角度,并评估电影模式通常克服了这个缺点。因此,我们的新算法可能会带来更好的临床诊断,改进的程序能力和成功的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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