Score-Based Explanations in Data Management and Machine Learning
–arXiv.org Artificial Intelligence
We describe some approaches to explanations for observed outcomes in data management and machine learning. They are based on the assignment of numerical scores to predefined and potentially relevant inputs. More specifically, we consider explanations for query answers in databases, and for results from classification models. The described approaches are mostly of a causal and counterfactual nature. We argue for the need to bring domain and semantic knowledge into score computations; and suggest some ways to do this.
arXiv.org Artificial Intelligence
Aug-18-2020
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- Europe
- Denmark > Capital Region
- Copenhagen (0.04)
- United Kingdom > England
- Cambridgeshire > Cambridge (0.04)
- Denmark > Capital Region
- North America > United States
- California > Los Angeles County > Long Beach (0.04)
- South America > Chile
- Europe
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- Research Report (0.50)
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