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DragNet: Learning-based deformable registration for realistic cardiac MR sequence generation from a single frame.

Authors :
Zakeri, Arezoo
Hokmabadi, Alireza
Bi, Ning
Wijesinghe, Isuru
Nix, Michael G.
Petersen, Steffen E.
Frangi, Alejandro F.
Taylor, Zeike A.
Gooya, Ali
Source :
Medical Image Analysis. Jan2023, Vol. 83, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Deformable image registration (DIR) can be used to track cardiac motion. Conventional DIR algorithms aim to establish a dense and non-linear correspondence between independent pairs of images. They are, nevertheless, computationally intensive and do not consider temporal dependencies to regulate the estimated motion in a cardiac cycle. In this paper, leveraging deep learning methods, we formulate a novel hierarchical probabilistic model, termed DragNet, for fast and reliable spatio-temporal registration in cine cardiac magnetic resonance (CMR) images and for generating synthetic heart motion sequences. DragNet is a variational inference framework, which takes an image from the sequence in combination with the hidden states of a recurrent neural network (RNN) as inputs to an inference network per time step. As part of this framework, we condition the prior probability of the latent variables on the hidden states of the RNN utilised to capture temporal dependencies. We further condition the posterior of the motion field on a latent variable from hierarchy and features from the moving image. Subsequently, the RNN updates the hidden state variables based on the feature maps of the fixed image and the latent variables. Different from traditional methods, DragNet performs registration on unseen sequences in a forward pass, which significantly expedites the registration process. Besides, DragNet enables generating a large number of realistic synthetic image sequences given only one frame, where the corresponding deformations are also retrieved. The probabilistic framework allows for computing spatio-temporal uncertainties in the estimated motion fields. Our results show that DragNet performance is comparable with state-of-the-art methods in terms of registration accuracy, with the advantage of offering analytical pixel-wise motion uncertainty estimation across a cardiac cycle and being a motion generator. We will make our code publicly available. [Display omitted] • We propose an unsupervised probabilistic motion generative model (DragNet). • We infer probabilistic displacement fields in their original high dimensional spaces. • Generating high temporal resolution image sequences given only one reference frame. • Explicit modelling spatio-temporal uncertainties at the pixel level for motion fields. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13618415
Volume :
83
Database :
Academic Search Index
Journal :
Medical Image Analysis
Publication Type :
Academic Journal
Accession number :
160588560
Full Text :
https://doi.org/10.1016/j.media.2022.102678