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On the Optimal Reasoning Length for RL-Trained Language Models

Daisuke Nohara, Taishi Nakamura, Rio Yokota
Thursday at 04:00
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arXiv:2602.09591v3 Announce Type: replace-cross Abstract: Reinforcement learning substantially improves reasoning in large language models, but it also tends to lengthen chain-of-thought outputs and increase computational cost. Although length-control methods have been proposed, the length-accuracy relationship they induce remains unclear. We...

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