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Most Influential SIGIR 2004 Paper · 2026-03 edition

Retrieval Evaluation With Incomplete Information

Chris Buckley; Ellen M. Voorhees

Venue
ACM SIGIR Conference (SIGIR) 2004
Recognition
Most Influential SIGIR 2004 Paper (Rank No. 2)
Edition
2026-03
Impact factor
8
Certificate ID
2a0a560c393e2516

Abstract

This paper examines whether the Cranfield evaluation methodology is robust to gross violations of the completeness assumption (i.e., the assumption that all relevant documents within a test collection have been identified and are present in the collection). We show that current evaluation measures are not robust to substantially incomplete relevance judgments. A new measure is introduced that is both highly correlated with existing measures when complete judgments are available and more robust to incomplete judgment sets. This finding suggests that substantially larger or dynamic test collections built using current pooling practices should be viable laboratory tools, despite the fact that the relevance information will be incomplete and imperfect.

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