Proceedings of the 2019 SIAM International Conference on Data Mining 2019
DOI: 10.1137/1.9781611975673.40
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Edge Replacement Grammars : A Formal Language Approach for Generating Graphs

Abstract: Graphs are increasingly becoming ubiquitous as models for structured data. A generative model that closely mimics the structural properties of a given set of graphs has utility in a variety of domains. Much of the existing work require that a large number of parameters, in fact exponential in size of the graphs, be estimated from the data. We take a slightly different approach to this problem, leveraging the extensive prior work in the formal graph grammar literature. In this paper, we propose a graph generati… Show more

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“…Renewed interest in graph grammars provides a promising route towards the goal of building a non-parametric, interpretable graph model. Previous work has investigated the relationship between graph mining and formal language theory by extracting Vertex Replacement Grammars (VRGs) [10] and (Hyper)edge Replacement Grammars (HRGs) [3], [11]. Unfortunately, the composition of grammar rules in HRGs, and some VRGs are known to produce clunky patterns that are difficult to interpret.…”
Section: Introductionmentioning
confidence: 99%
“…Renewed interest in graph grammars provides a promising route towards the goal of building a non-parametric, interpretable graph model. Previous work has investigated the relationship between graph mining and formal language theory by extracting Vertex Replacement Grammars (VRGs) [10] and (Hyper)edge Replacement Grammars (HRGs) [3], [11]. Unfortunately, the composition of grammar rules in HRGs, and some VRGs are known to produce clunky patterns that are difficult to interpret.…”
Section: Introductionmentioning
confidence: 99%