Relevance-guided Supervision for OpenQA with ColBERT
Papers Read on AI

Relevance-guided Supervision for OpenQA with ColBERT

2024-02-11
Abstract Systems for Open-Domain Question Answering (OpenQA) generally depend on a retriever for finding candidate passages in a large corpus and a reader for extracting answers from those passages. In much recent work, the retriever is a learned component that uses coarse-grained vector representations of questions and passages. We argue that this modeling choice is insufficiently expressive for dealing with the complexity of natural language questions. To address this, we define ColBERT-QA, which adapts...
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