Papers with general-domain baselines

1 papers
MOSAIC: Masked Objective with Selective Adaptation for In-domain Contrastive Learning (2026.findings-eacl)

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Challenge: a new framework for domain adaptation of text embedding models addresses the challenges of adapting general-domain text embeds to specialized domains.
Approach: They propose a framework for domain adaptation of text embedding models that integrates masked supervision and mangled objectives within a unified training pipeline.
Outcome: The proposed framework improves on high-resource and low-resourced domains while preserving the robustness of the original model.

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