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explanation selection
Explanation selection is the cognitive or computational process of choosing a small, relevant subset of causes from a broader set of contributing factors to formulate an explanation for an event or decision. Because real-world occurrences typically result from an extensive web of conditions and preceding events, providing an exhaustive causal history is often impractical and cognitively overwhelming. Through explanation selection, an explainer filters and prioritizes specific causes according to principles such as abnormal conditions, intentionality, simplicity, contrastive relevance, and the context and knowledge of the recipient, thereby producing an explanation that is concise, meaningful, and communicatively effective.
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