Alignment of density maps in Wasserstein distance.

Biological imaging Pub Date : 2024-03-15 eCollection Date: 2024-01-01 DOI:10.1017/S2633903X24000059
Amit Singer, Ruiyi Yang
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Abstract

In this article, we propose an algorithm for aligning three-dimensional objects when represented as density maps, motivated by applications in cryogenic electron microscopy. The algorithm is based on minimizing the 1-Wasserstein distance between the density maps after a rigid transformation. The induced loss function enjoys a more benign landscape than its Euclidean counterpart and Bayesian optimization is employed for computation. Numerical experiments show improved accuracy and efficiency over existing algorithms on the alignment of real protein molecules. In the context of aligning heterogeneous pairs, we illustrate a potential need for new distance functions.

以瓦瑟施泰因距离排列密度图。
在本文中,我们根据低温电子显微镜的应用,提出了一种以密度图表示的三维物体对齐算法。该算法基于最小化刚性变换后密度图之间的 1-Wasserstein 距离。诱导的损失函数比欧几里得对应函数具有更良性的分布,并采用贝叶斯优化法进行计算。数值实验表明,与现有算法相比,该方法在实际蛋白质分子配准方面的精度和效率都有所提高。在异质配对的情况下,我们说明了对新距离函数的潜在需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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