Proceedings of the 44th International ACM SIGIR Conference on Research and Development in Information Retrieval 2021
DOI: 10.1145/3404835.3462784
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DiffIR: Exploring Differences in Ranking Models' Behavior

Abstract: Understanding and comparing the behavior of retrieval models is a fundamental challenge that requires going beyond examining average effectiveness and per-query metrics, because these do not reveal key differences in how ranking models' behavior impacts individual results. DiffIR is a new open-source web tool to assist with qualitative ranking analysis by visually 'diffing' system rankings at the individual result level for queries where behavior significantly diverges. Using one of several configurable simila… Show more

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Cited by 10 publications
(4 citation statements)
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“…Model: This section proposes a Difference Perception Review Model that can calculate scores and rank entries based on input raw data, outputting the final ranking results. The specific implementation steps of the Difference Perception Review Model [55][56][57] are as follows:…”
Section: Establishment Of the Difference Perception Reviewmentioning
confidence: 99%
“…Model: This section proposes a Difference Perception Review Model that can calculate scores and rank entries based on input raw data, outputting the final ranking results. The specific implementation steps of the Difference Perception Review Model [55][56][57] are as follows:…”
Section: Establishment Of the Difference Perception Reviewmentioning
confidence: 99%
“…To better verify the effectiveness of this method, we also evaluated the results output by this model against the original ranked results. The specific implementation steps of the Difference Perception Review Model [55][56][57] are as follows:…”
Section: Establishment Of the Difference Perception Review Modelmentioning
confidence: 99%
“…It is also used by OpenNIR [18], Experimaestro [26], and DiffIR [14]. The ir-datasets [19] package uses ir-measures notation to provide documentation of the official evaluation measures for test collections.…”
Section: Measurementioning
confidence: 99%