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量子游走能区分彼此吗?基于量子游走的图相似性研究。

Can a Quantum Walk Tell Which Is Which?A Study of Quantum Walk-Based Graph Similarity.

作者信息

Minello Giorgia, Rossi Luca, Torsello Andrea

机构信息

Dipartimento di Scienze Ambientali, Informatica e Statistica, Universita Ca' Foscari Venezia, via Torino 155, 30170 Venezia Mestre, Italy.

Department of Computer Science and Engineering, Southern University of Science and Technology, Nanshan District, Shenzhen 518055, China.

出版信息

Entropy (Basel). 2019 Mar 26;21(3):328. doi: 10.3390/e21030328.

Abstract

We consider the problem of measuring the similarity between two graphs using continuous-time quantum walks and comparing their time-evolution by means of the quantum Jensen-Shannon divergence. Contrary to previous works that focused solely on undirected graphs, here we consider the case of both directed and undirected graphs. We also consider the use of alternative Hamiltonians as well as the possibility of integrating additional node-level topological information into the proposed framework. We set up a graph classification task and we provide empirical evidence that: (1) our similarity measure can effectively incorporate the edge directionality information, leading to a significant improvement in classification accuracy; (2) the choice of the quantum walk Hamiltonian does not have a significant effect on the classification accuracy; (3) the addition of node-level topological information improves the classification accuracy in some but not all cases. We also theoretically prove that under certain constraints, the proposed similarity measure is positive definite and thus a valid kernel measure. Finally, we describe a fully quantum procedure to compute the kernel.

摘要

我们考虑使用连续时间量子游走测量两个图之间的相似度,并通过量子詹森 - 香农散度比较它们的时间演化问题。与以往仅关注无向图的工作不同,这里我们考虑有向图和无向图两种情况。我们还考虑使用替代哈密顿量以及将额外的节点级拓扑信息整合到所提出框架中的可能性。我们设置了一个图分类任务,并提供了实证证据表明:(1)我们的相似度度量可以有效地纳入边的方向性信息,从而显著提高分类准确率;(2)量子游走哈密顿量的选择对分类准确率没有显著影响;(3)在某些但并非所有情况下,添加节点级拓扑信息可提高分类准确率。我们还从理论上证明,在某些约束条件下,所提出的相似度度量是正定的,因此是一种有效的核度量。最后,我们描述了一种用于计算核的全量子过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a036/7514811/b70091685f07/entropy-21-00328-g001.jpg

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