Papers with PACRR

    1 papers
    Deep Relevance Ranking Using Enhanced Document-Query Interactions (D18-1)

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    Challenge: Document relevance ranking is the task of ranking documents from a large collection using the query and the text of each document only.
    Approach: They propose to use convolutional n-gram matching to inject rich context-sensitive encodings into their models, inspired by PACRR's convolution-based ngram matching features.
    Outcome: The proposed models outperform baselines, DRMM, and PACRR on the BIOASQ and TREC ROBUST questions and document inputs.

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