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Enriching Artificial Intelligence Explanations with Knowledge Fragments (2204.05579v1)

Published 12 Apr 2022 in cs.AI

Abstract: Artificial Intelligence models are increasingly used in manufacturing to inform decision-making. Responsible decision-making requires accurate forecasts and an understanding of the models' behavior. Furthermore, the insights into models' rationale can be enriched with domain knowledge. This research builds explanations considering feature rankings for a particular forecast, enriching them with media news entries, datasets' metadata, and entries from the Google Knowledge Graph. We compare two approaches (embeddings-based and semantic-based) on a real-world use case regarding demand forecasting.

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Authors (7)
  1. Jože M. Rožanec (23 papers)
  2. Elena Trajkova (4 papers)
  3. Inna Novalija (6 papers)
  4. Patrik Zajec (9 papers)
  5. Klemen Kenda (6 papers)
  6. Blaž Fortuna (16 papers)
  7. Dunja Mladenić (32 papers)
Citations (8)