Recursive Question Understanding for Complex Question Answering over Heterogeneous Personal Data
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Abstract
Question answering over mixed sources, like text and tables, has been advanced by verbalizing all contents and encoding it with a language model.A prominent case of such heterogeneous data is personal information: user devices log vast amounts of data every day, such as calendar entries, workout statistics, shopping records, streaming history, and more.Information needs range from simple look-ups to queries of analytical nature.The challenge is to provide humans with convenient access with small footprint, so that all personal data stays on the user devices.We present REQAP, a novel method that creates an executable operator tree for a given question, via recursive decomposition.Operators are designed to enable seamless integration of structured and unstructured sources, and the execution of the operator tree yields a traceable answer.We further release the PERQA benchmark, with persona-based data and questions, covering a diverse spectrum of realistic user needs.
Publication details
- DOI
- 10.18653/v1/2025.findings-acl.939
- OpenAlex
- W4412887911
- Document type
- conference-paper
- Language
- EN
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