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August 30, 2005IEEE Transactions on Medical Imaging289 citationsOpen Access

Spatio-temporal nonrigid registration for ultrasound cardiac motion estimation

MLMaría J. Ledesma‐CarbayoJKJan KybicMDManuel Desco

Key Result

The spatio-temporal elastic registration algorithm accurately estimated cardiac motion from 2D echocardiograms, demonstrating significant differences in systolic displacement and strain between normal, hypokinetic, and akinetic segments (p<0.001).

Study Design

Type

Observational (n=12)

Structured PICO

Does a spatio-temporal elastic registration algorithm improve the accuracy of cardiac motion estimation from ultrasound sequences compared to pairwise registration?

P
Population
Synthetic sequence generated with an ultrasound simulation package and realistic cardiac motion model, and regional analysis of the left ventricle (normal and pathological segments)
I
Intervention
Spatio-temporal elastic registration algorithm using a semi-local spatio-temporal parametric model for deformation using splines
C
Comparator
Previous method based on pairwise registration of consecutive frames
O
Outcome
Accuracy of displacement fields and motion reconstructionsurrogate

A novel spatio-temporal elastic registration algorithm improves cardiac motion estimation from ultrasound images by introducing temporal consistency, successfully differentiating normal from pathological left ventricular segments.

Main Result

p-value: p=<0.001

Limitations

  • Partially decorrelated speckle
  • Out-of-plane motion causing myocardial texture changes
  • Signal attenuation in some myocardial regions
  • Independent movement of intraventricular structures
  • Small number of clinical cases evaluated

Abstract

We propose a new spatio-temporal elastic registration algorithm for motion reconstruction from a series of images. The specific application is to estimate displacement fields from two-dimensional ultrasound sequences of the heart. The basic idea is to find a spatio-temporal deformation field that effectively compensates for the motion by minimizing a difference with respect to a reference frame. The key feature of our method is the use of a semi-local spatio-temporal parametric model for the deformation using splines, and the reformulation of the registration task as a global optimization problem. The scale of the spline model controls the smoothness of the displacement field. Our algorithm uses a multiresolution optimization strategy to obtain a higher speed and robustness. We evaluated the accuracy of our algorithm using a synthetic sequence generated with an ultrasound simulation package, together with a realistic cardiac motion model. We compared our new global multiframe approach with a previous method based on pairwise registration of consecutive frames to demonstrate the benefits of introducing temporal consistency. Finally, we applied the algorithm to the regional analysis of the left ventricle. Displacement and strain parameters were evaluated showing significant differences between the normal and pathological segments, thereby illustrating the clinical applicability of our method.

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Cite This Study

Ledesma‐Carbayo et al. (2005) conducted an observational in Myocardial wall motion abnormalities (prior myocardial infarction) (n=12). Spatio-temporal elastic registration algorithm vs. Consecutive elastic registration / Expert qualitative scoring was evaluated on Mean displacement vector and mean local deformation (strain) of myocardial segments during systole (p=<0.001). The spatio-temporal elastic registration algorithm accurately estimated cardiac motion from 2D echocardiograms, demonstrating significant differences in systolic displacement and strain between normal, hypokinetic, and akinetic segments (p<0.001).

synapsesocial.com/papers/6a087e0dab15ea61dee8e1c7https://doi.org/10.1109/tmi.2005.852050
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