cs.AI updates on arXiv.org 10月23日 12:10
DAIL:解决指令模糊性的人工智能新方法
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本文提出了一种名为DAIL的新方法,通过分布策略和语义对齐两个关键组件,有效解决指令模糊性问题,提升算法性能。实验结果表明,DAIL在结构化和视觉观测基准测试中均优于基线方法。

arXiv:2510.19562v1 Announce Type: new Abstract: Comprehending natural language and following human instructions are critical capabilities for intelligent agents. However, the flexibility of linguistic instructions induces substantial ambiguity across language-conditioned tasks, severely degrading algorithmic performance. To address these limitations, we present a novel method named DAIL (Distributional Aligned Learning), featuring two key components: distributional policy and semantic alignment. Specifically, we provide theoretical results that the value distribution estimation mechanism enhances task differentiability. Meanwhile, the semantic alignment module captures the correspondence between trajectories and linguistic instructions. Extensive experimental results on both structured and visual observation benchmarks demonstrate that DAIL effectively resolves instruction ambiguities, achieving superior performance to baseline methods. Our implementation is available at https://github.com/RunpengXie/Distributional-Aligned-Learning.

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人工智能 指令模糊性 算法性能 DAIL 语义对齐
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