Knowledge Questions from Knowledge Graphs
October 31, 2016 ยท Declared Dead ยท ๐ International Conference on the Theory of Information Retrieval
"No code URL or promise found in abstract"
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Authors
Dominic Seyler, Mohamed Yahya, Klaus Berberich
arXiv ID
1610.09935
Category
cs.CL: Computation & Language
Citations
61
Venue
International Conference on the Theory of Information Retrieval
Last Checked
4 months ago
Abstract
We address the novel problem of automatically generating quiz-style knowledge questions from a knowledge graph such as DBpedia. Questions of this kind have ample applications, for instance, to educate users about or to evaluate their knowledge in a specific domain. To solve the problem, we propose an end-to-end approach. The approach first selects a named entity from the knowledge graph as an answer. It then generates a structured triple-pattern query, which yields the answer as its sole result. If a multiple-choice question is desired, the approach selects alternative answer options. Finally, our approach uses a template-based method to verbalize the structured query and yield a natural language question. A key challenge is estimating how difficult the generated question is to human users. To do this, we make use of historical data from the Jeopardy! quiz show and a semantically annotated Web-scale document collection, engineer suitable features, and train a logistic regression classifier to predict question difficulty. Experiments demonstrate the viability of our overall approach.
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