首页> 外文期刊>International Journal of Cardiology >A new automated system to identify a consistent sampling position to make tissue Doppler and transmitral Doppler measurements of E, E′ and E/E′
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A new automated system to identify a consistent sampling position to make tissue Doppler and transmitral Doppler measurements of E, E′ and E/E′

机译:一种新的自动系统,用于识别一致的采样位置,以对E,E'和E / E'进行组织多普勒和经皮多普勒测量

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Background: Transmitral pulse wave (PW) Doppler and annular tissue Doppler velocity measurements provide valuable diagnostic and prognostic information. However, they depend on an echocardiographer manually selecting positions to make the measurements. This is time-consuming and open to variability, especially by less experienced operators. We present a new, automated method to select consistent Doppler velocity sites to measure blood flow and muscle function. Methods: Our automated algorithm combines speckle tracking and colour flow mapping to locate the septal and lateral mitral valve annuli (to measure peak early diastolic velocity, E′) and the mitral valve inflow (to measure peak inflow velocity, E). We also automate peak velocity measurements from resulting PW Doppler traces. The algorithm-selected locations and time taken to identify them were compared against a panel of echo specialists - the current "gold standard". Results: The algorithm identified positions to measure Doppler velocities within 3.6 ± 2.2 mm (mitral inflow), 3.2 ± 1.8 mm (septal annulus) and 3.8 ± 1.5 mm (lateral annulus) of the consensus of 3 specialists. This was less than the average 4 mm fidelity with which the specialists could themselves identify the points. The automated algorithm could potentially reduce the time taken to make these measurements by 60 ± 15%. Conclusions: Our automated algorithm identified sampling positions for measurement of mitral flow, septal and lateral tissue velocities as reliably as specialists. It provides a rapid, easy method for new specialists and potentially non-specialists to make automated measurements of key cardiac physiological indices. This could help support decision-making, without introducing delay and extend availability of echocardiography to more patients.
机译:背景:发射脉搏波(PW)多普勒和环形组织多普勒速度测量提供有价值的诊断和预后信息。但是,它们取决于超声心动图医师手动选择位置进行测量。这是耗时的,并且易变,特别是对于经验不足的操作员而言。我们提出一种新的自动化方法,以选择一致的多普勒速度部位来测量血流和肌肉功能。方法:我们的自动化算法结合了斑点跟踪和色彩流图,以定位二尖瓣间隔和外侧的二尖瓣环(以测量舒张早期峰值速度E')和二尖瓣的流入(以峰值流入速度为E)。我们还将根据所得的PW多普勒迹线自动进行峰值速度测量。将算法选择的位置和识别它们的时间与一组回声专家(当前的“金标准”)进行了比较。结果:该算法确定了测量多普勒速度的位置,该位置在三位专家的共识下,分别位于3.6±2.2 mm(二尖瓣流入),3.2±1.8 mm(中隔瓣环)和3.8±1.5 mm(外侧瓣环)内。这低于专家们自己可以识别出的平均4毫米保真度。自动化算法可以潜在地将进行这些测量所需的时间减少60±15%。结论:我们的自动化算法可以像专家一样可靠地确定用于测量二尖瓣血流,间隔和外侧组织速度的采样位置。它为新专家和潜在的非专家提供了一种快速,简便的方法来自动测量关键的心脏生理指标。这可以帮助支持决策,而不会引起延迟,并将超声心动图的可用性扩展到更多患者。

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