Digital Image Processing for Determining the Speed of Blood Flow in the Heart Based on the Doppler Effect

Eif Sparzinanda, S. Oktamuliani, D. Fitriyani, Imam Taufiq
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Abstract

A research study was conducted to estimate and visualize 2D vectors of blood flow in the heart using image processing algorithms to determine Doppler velocity at each point. The study used secondary data from ten patients who provided informed consent, encompassing healthy and unhealthy hearts. ECD image data were collected using a Philips epiq 7C machine in DICOM format. The image processing tasks, including area segmentation, flow velocity analysis, and area smoothing, were carried out using MATLAB R2016b software. These processes aimed to eliminate noise and other disturbances, enhancing the accuracy of blood flow velocity estimation in the heart. The study's findings included estimations and 2D vector visualizations representing the average blood flow velocity at each point within the heart. These achievements were made possible using image processing techniques to correct the acquired images, ensuring precise measurement of blood flow speed. Among the collected data, one patient exhibited indications of a healthy heart, with an average blood flow velocity of 40.2513 cm/s, a maximum speed of 68.5807 cm/s, and a minimum speed of 33.6971 cm/s. Deviations from the normal range of blood flow speeds were considered as potential abnormalities in heart health.
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基于多普勒效应确定心脏血流速度的数字图像处理
进行了一项研究,使用图像处理算法来估计和可视化心脏中血流的2D矢量,以确定每个点的多普勒速度。该研究使用了来自10名提供知情同意书的患者的次要数据,包括健康和不健康的心脏。使用Philips epiq 7C机器以DICOM格式收集ECD图像数据。使用MATLAB R2016b软件进行图像处理任务,包括区域分割、流速分析和区域平滑。这些过程旨在消除噪声和其他干扰,提高心脏血流速度估计的准确性。该研究的发现包括表示心脏内每个点的平均血流速度的估计和2D矢量可视化。这些成就是通过使用图像处理技术来校正采集的图像,确保精确测量血流速度而实现的。在收集的数据中,一名患者表现出心脏健康的迹象,平均血流速度为40.2513 cm/s,最大速度为68.5807 cm/s,最小速度为33.6971 cm/s。偏离正常血流速度范围被认为是心脏健康的潜在异常。
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审稿时长
6 weeks
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