Exploring the performance of implicit neural representations for brain image registration

计算机科学 图像配准 人工智能 空间归一化 卷积神经网络 规范化(社会学) 成对比较 功能磁共振成像 模式识别(心理学) 人工神经网络 图像(数学) 体素 神经科学 社会学 人类学 生物
作者
Michał Byra,Charissa Poon,Muhammad Febrian Rachmadi,Matthias Schlachter,Henrik Skibbe
出处
期刊:Scientific Reports [Nature Portfolio]
卷期号:13 (1): 17334-17334 被引量:18
标识
DOI:10.1038/s41598-023-44517-5
摘要

Pairwise image registration is a necessary prerequisite for brain image comparison and data integration in neuroscience and radiology. In this work, we explore the efficacy of implicit neural representations (INRs) in improving the performance of brain image registration in magnetic resonance imaging. In this setting, INRs serve as a continuous and coordinate based approximation of the deformation field obtained through a multi-layer perceptron. Previous research has demonstrated that sinusoidal representation networks (SIRENs) surpass ReLU models in performance. In this study, we first broaden the range of activation functions to further investigate the registration performance of implicit networks equipped with activation functions that exhibit diverse oscillatory properties. Specifically, in addition to the SIRENs and ReLU, we evaluate activation functions based on snake, sine+, chirp and Morlet wavelet functions. Second, we conduct experiments to relate the hyper-parameters of the models to registration performance. Third, we propose and assess various techniques, including cycle consistency loss, ensembles and cascades of implicit networks, as well as a combined image fusion and registration objective, to enhance the performance of implicit registration networks beyond the standard approach. The investigated implicit methods are compared to the VoxelMorph convolutional neural network and to the symmetric image normalization (SyN) registration algorithm from the Advanced Normalization Tools (ANTs). Our findings not only highlight the remarkable capabilities of implicit networks in addressing pairwise image registration challenges, but also showcase their potential as a powerful and versatile off-the-shelf tool in the fields of neuroscience and radiology.
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