Data Set and Evaluation of Automated Construction of Financial Knowledge Graph

Author:

Wang Wenguang1,Xu Yonglin1,Du Chunhui1,Chen Yunwen1,Wang Yijie1,Wen Hui1

Affiliation:

1. DataGrand Inc., Shanghai 201203, China

Abstract

With the technological development of entity extraction, relationship extraction, knowledge reasoning, and entity linking, the research on knowledge graph has been carried out in full swing in recent years. To better promote the development of knowledge graph, especially in the Chinese language and in the financial industry, we built a high-quality data set, named financial research report knowledge graph (FR2KG), and organized the automated construction of financial knowledge graph evaluation at the 2020 China Knowledge Graph and Semantic Computing Conference (CCKS2020). FR2KG consists of 17,799 entities, 26,798 relationship triples, and 1,328 attribute triples covering 10 entity types, 19 relationship types, and 6 attributes. Participants are required to develop a constructor that will automatically construct a financial knowledge graph based on the FR2KG. In addition, we summarized the technologies for automatically constructing knowledge graphs, and introduced the methods used by the winners and the results of this evaluation.

Publisher

MIT Press - Journals

Subject

General Earth and Planetary Sciences,General Environmental Science

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