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Taeyoun Kim

3 accepted papers

2025

Mitigating Bias in RAG: Controlling the Embedder

ACL 2025finding

In retrieval augmented generation (RAG) systems, each individual component—the LLM, embedder, and corpus—could introduce biases in the form of skews towards certain genders or political leanings. In this work, we study the conflict between biases of each component and their relationship to the overa…

2024

Predicting the Performance of Foundation Models via Agreement-on-the-Line

NeurIPS 2024poster

Estimating the out-of-distribution performance in regimes where labels are scarce is critical to safely deploy foundation models. Recently, it was shown that ensembles of neural networks observe the phenomena "agreement-on-the-line", which can be leveraged to reliably predict OOD performance without…

Cited by 5SourcePDFScholar