Methods › General › Information Retrieval Methods › ReInfoSelect

ReInfoSelect

1 paper tagged archive 2025-07-28

Introduced by Kaitao Zhang et al. in Selective Weak Supervision for Neural Information Retrieval

archive 2025-07-28 Description, source and code snippet are the archive's method entry.

ReInfoSelect is a reinforcement weak supervision selection method for information retrieval. It learns to select anchor-document pairs that best weakly supervise the neural ranker (action), using the ranking performance on a handful of relevance labels as the reward. Iteratively, for a batch of anchor-document pairs, ReInfoSelect back propagates the gradients through the neural ranker, gathers its NDCG reward, and optimizes the data selection network using policy gradients, until the neural ranker's performance peaks on target relevance metrics (convergence).

PaperSource

Papers archive 2025-07-28

1 shown of 1, newest first. Repository counts are the archive's code-links table. A Syntology line states what Syntology ran from that paper's harvested code; it is per sample and not a correctness claim.

Tasks archive 2025-07-28

3 tasks the archive attaches to papers tagged with this method, by distinct papers. A task without a page in the catalog is plain text.

TaskPapers
Information Retrieval1
Learning-To-Rank1
Retrieval1

Usage over time archive 2025-07-28

Papers per year tagged with ReInfoSelect: 2020 to 2020, peak 1 1 0 2020: 1 paper 2020
Papers per year the archive tags with this method, by the paper's archive date (1 dated). Bars are counts, not a trend claim.

Components: the archive holds no method-to-method composition, so PwC's Components table cannot be rebuilt; the Papers list carries no Results column for the same reason (the archive does not join its leaderboard rows to method tags).

Categories archive 2025-07-28

Information Retrieval MethodsInformation Bottleneck

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