An efficient graph-based peer selection method for financial statements

Sander Noels, Simon De Ridder, Sebastien Viaene,Tijl De Bie

INTELLIGENT SYSTEMS IN ACCOUNTING FINANCE & MANAGEMENT(2023)

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摘要
Comparing companies can be useful for various purposes. Despite the widespread use of industry classification systems as a peer selection standard, these have been criticized for various reasons. Financial statements, however, offer a promising alternative to such classification systems. They are standardized, widely available, and offer deep insights into the nature of the company. In this paper, we present a graph distance metric for financial statements using the earth mover's distance. When using the distance metric on real-world tasks such as peer identification and industry classification, it shows promising results in terms of accuracy and computational efficiency.
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关键词
company embedding,financial statements,graph distance metric,industry classification,peer companies
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