KG-Roar: Interactive Datalog-Based Reasoning on Virtual Knowledge Graphs

Author:

Bellomarini Luigi1,Benedetti Marco1,Gentili Andrea1,Magnanimi Davide2,Sallinger Emanuel3

Affiliation:

1. Bank of Italy

2. Bank of Italy & Politecnico di Milano

3. TU Wien & University of Oxford

Abstract

Logic-based Knowledge Graphs (KGs) are gaining momentum in academia and industry thanks to the rise of expressive and efficient languages for Knowledge Representation and Reasoning (KRR). These languages accurately express business rules, through which valuable new knowledge is derived. A versatile and scalable backend reasoner, like Vadalog, a state-of-the-art system for logic-based KGs---based on an extension of Datalog---executes the reasoning. In this demo, we present KG-Roar, a web-based interactive development and navigation environment for logical KGs. The system lets the user augment an input graph database with intensional definitions of new nodes and edges and turn it into a KG, via the metaphor of reasoning widgets---user-defined or off-the-shelf code snippets that capture business definitions in the Vadalog language. Then, the user can seamlessly browse the original and the derived nodes and edges within a "Virtual Knowledge Graph", which is reasoned upon and generated interactively at runtime, thanks to the scalability and responsiveness of Vadalog. KG-Roar is domain-independent but domain aware, as exploration controls are contextually generated based on the intensional definitions. We walk the audience through KG-Roar showcasing the construction of certain business definitions and putting it into action on a real-world financial KG, from our work with the Bank of Italy.

Publisher

Association for Computing Machinery (ACM)

Subject

General Earth and Planetary Sciences,Water Science and Technology,Geography, Planning and Development

Reference12 articles.

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5. Luigi Bellomarini , Daniele Fakhoury , Georg Gottlob , and Emanuel Sallinger . 2019. Knowledge Graphs and Enterprise AI: The Promise of an Enabling Technology . In ICDE. IEEE , 26--37. Luigi Bellomarini, Daniele Fakhoury, Georg Gottlob, and Emanuel Sallinger. 2019. Knowledge Graphs and Enterprise AI: The Promise of an Enabling Technology. In ICDE. IEEE, 26--37.

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1. Neural-Symbolic Methods for Knowledge Graph Reasoning: A Survey;ACM Transactions on Knowledge Discovery from Data;2024-08-12

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