AI RESEARCH
Optimizing Language Models for Crosslingual Knowledge Consistency
arXiv CS.AI
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ArXi:2603.04678v2 Announce Type: replace-cross Large language models are known to often exhibit inconsistent knowledge. This is particularly problematic in multilingual scenarios, where models are likely to be asked similar questions in different languages, and inconsistent responses can undermine their reliability. In this work, we show that this issue can be mitigated using reinforcement learning with a structured reward function, which leads to an optimal policy with consistent crosslingual responses. We.