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Open Graph

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KR2ML

description

Knowledge Representation & Reasoning Meets Machine Learning

image

site name

author

KR2ML

updated

2025-12-19 08:30:21

raw text

KR2ML Workshop - Knowledge Representation & Reasoning Meets Machine Learning Toggle navigation KR2ML Workshop KR2ML Knowledge Representation & Reasoning Meets Machine Learning Machine learning (ML) has seen a tremendous amount of recent success and has been applied in a variety of applications. However, it comes with several drawbacks, such as the need for large amounts of training data and the lack of explainability and verifiability of the results. In many domains, there is structured knowledge (e.g., from electronic health records, laws, clinical guidelines, or common sense knowledge) which can be leveraged for reasoning in an informed way (i.e., including the information encoded in the knowledge representation itself) in order to obtain high quality answers. Symbolic approaches for knowledge representation and reasoning (KRR) are less prominent today - mainly due to their lack of scalability - but their strength lies in the verifiable and interpretable reasoning that can ...

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