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作为多种最优传输问题快速解决方案的锚定空间最优传输

Anchor Space Optimal Transport as a Fast Solution to Multiple Optimal Transport Problems.

作者信息

Huang Jianming, Su Xun, Fang Zhongxi, Kasai Hiroyuki

出版信息

IEEE Trans Neural Netw Learn Syst. 2024 Oct 3;PP. doi: 10.1109/TNNLS.2024.3462504.

DOI:10.1109/TNNLS.2024.3462504
PMID:39361469
Abstract

In machine learning, optimal transport (OT) theory is extensively utilized to compare probability distributions across various applications, such as graph data represented by node distributions and image data represented by pixel distributions. In practical scenarios, it is often necessary to solve multiple OT problems. Traditionally, these problems are treated independently, with each OT problem being solved sequentially. However, the computational complexity required to solve a single OT problem is already substantial, making the resolution of multiple OT problems even more challenging. Although many applications of fast solutions to OT are based on the premise of a single OT problem with arbitrary distributions, few efforts handle such multiple OT problems with multiple distributions. Therefore, we propose the anchor space OT (ASOT) problem: an approximate OT problem designed for multiple OT problems. This proposal stems from our finding that in many tasks the mass transport tends to be concentrated in a reduced space from the original feature space. By restricting the mass transport to a learned anchor point space, ASOT avoids pairwise instantiations of cost matrices for multiple OT problems and simplifies the problems by canceling insignificant transports. This simplification greatly reduces its computational costs. We then prove the upper bounds of its 1 -Wasserstein distance error between the proposed ASOT and the original OT problem under different conditions. Building upon this accomplishment, we propose three methods to learn anchor spaces for reducing the approximation error. Furthermore, our proposed methods present great advantages for handling distributions of different sizes with GPU parallelization.

摘要

在机器学习中,最优传输(OT)理论被广泛用于比较各种应用中的概率分布,例如由节点分布表示的图数据和由像素分布表示的图像数据。在实际场景中,通常需要解决多个OT问题。传统上,这些问题是独立处理的,每个OT问题按顺序求解。然而,解决单个OT问题所需的计算复杂度已经很高,这使得解决多个OT问题更具挑战性。尽管许多OT快速解决方案的应用基于具有任意分布的单个OT问题这一前提,但很少有人致力于处理具有多个分布的多个OT问题。因此,我们提出了锚定空间OT(ASOT)问题:一个为多个OT问题设计的近似OT问题。这一提议源于我们的发现,即在许多任务中,质量传输往往集中在从原始特征空间缩减而来的空间中。通过将质量传输限制在一个学习到的锚点空间,ASOT避免了针对多个OT问题成对实例化成本矩阵,并通过消除无关紧要的传输简化了问题。这种简化极大地降低了其计算成本。然后,我们证明了在不同条件下,所提出的ASOT与原始OT问题之间1 - Wasserstein距离误差的上界。基于这一成果,我们提出了三种学习锚定空间以减少近似误差的方法。此外,我们提出的方法在利用GPU并行化处理不同大小的分布方面具有很大优势。

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