首页> 美国卫生研究院文献>other >Marker-Free Tracking for Motion Artifact Compensation and Deformation Measurements in Optical Mapping Videos of Contracting Hearts
【2h】

Marker-Free Tracking for Motion Artifact Compensation and Deformation Measurements in Optical Mapping Videos of Contracting Hearts

机译:心脏收缩光学成像视频中运动伪影补偿和变形测量的无标记跟踪

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

Optical mapping is a high-resolution fluorescence imaging technique, which provides highly detailed visualizations of the electrophysiological wave phenomena, which trigger the beating of the heart. Recent advancements in optical mapping have demonstrated that the technique can now be performed with moving and contracting hearts and that motion and motion artifacts, once a major limitation, can now be overcome by numerically tracking and stabilizing the heart's motion. As a result, the optical measurement of electrical activity can be obtained from the moving heart surface in a co-moving frame of reference and motion artifacts can be reduced substantially. The aim of this study is to assess and validate the performance of a 2D marker-free motion tracking algorithm, which tracks motion and non-rigid deformations in video images. Because the tracking algorithm does not require markers to be attached to the tissue, it is necessary to verify that it accurately tracks the displacements of the cardiac tissue surface, which not only contracts and deforms, but also fluoresces and exhibits spatio-temporal physiology-related intensity changes. We used computer simulations to generate synthetic optical mapping videos, which show the contracting and fluorescing ventricular heart surface. The synthetic data reproduces experimental data as closely as possible and shows electrical waves propagating across the deforming tissue surface, as seen during voltage-sensitive imaging. We then tested the motion tracking and motion-stabilization algorithm on the synthetic as well as on experimental data. The motion tracking and motion-stabilization algorithm decreases motion artifacts approximately by 80% and achieves sub-pixel precision when tracking motion of 1–10 pixels (in a video image with 100 by 100 pixels), effectively inhibiting motion such that little residual motion remains after tracking and motion-stabilization. To demonstrate the performance of the algorithm, we present optical maps with a substantial reduction in motion artifacts showing action potential waves propagating across the moving and strongly deforming ventricular heart surface. The tracking algorithm reliably tracks motion if the tissue surface is illuminated homogeneously and shows sufficient contrast or texture which can be tracked or if the contrast is artificially or numerically enhanced. In this study, we also show how a reduction in dissociation-related motion artifacts can be quantified and linked to tracking precision. Our results can be used to advance optical mapping techniques, enabling them to image contracting hearts, with the ultimate goal of studying the mutual coupling of electrical and mechanical phenomena in healthy and diseased hearts.
机译:光学测绘是一种高分辨率的荧光成像技术,可提供触发心脏跳动的电生理波现象的高度详细的可视化效果。光学制图的最新进展表明,该技术现在可以在心脏移动和收缩的情况下执行,而运动和运动伪影曾经是一个主要限制,现在可以通过数字跟踪和稳定心脏的运动来克服。结果,可以在共同运动的参考系中从运动的心脏表面获得电活动的光学测量,并且可以大大减少运动伪像。这项研究的目的是评估和验证2D无标记运动跟踪算法的性能,该算法可跟踪视频图像中的运动和非刚性变形。由于跟踪算法不需要将标记附着到组织上,因此有必要验证它是否可以精确跟踪心脏组织表面的位移,该位移不仅会收缩和变形,还会发出荧光,并表现出与时空生理相关的特征强度变化。我们使用计算机模拟来生成合成光学制图视频,以显示心室心脏表面的收缩和发荧光。合成数据尽可能地重现实验数据,并显示在变形的组织表面上传播的电波,如在电压敏感成像期间看到的那样。然后,我们在合成数据以及实验数据上测试了运动跟踪和运动稳定算法。运动跟踪和运动稳定算法在跟踪1–10像素的运动(在具有100 x 100像素的视频图像中)时,可将运动伪影减少约80%,并达到亚像素精度,从而有效地抑制了运动,从而几乎没有残留运动跟踪和运动稳定之后。为了演示该算法的性能,我们展示了运动伪影大大减少的光学地图,这些伪影显示了在运动中且剧烈变形的心室心脏表面传播的动作电位波。如果组织表面被均匀照明,并且显示出可以跟踪的足够的对比度或纹理,或者人工或数值增强了对比度,则跟踪算法可以可靠地跟踪运动。在这项研究中,我们还展示了如何量化与解离相关的运动伪影并与跟踪精度相关联。我们的结果可用于推进光学测绘技术,使他们能够对心脏收缩进行成像,其最终目标是研究健康和患病心脏中电气和机械现象的相互耦合。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号