Learned world models are becoming essential to general-purpose agents: by predicting action consequences, they support planning and decision-making while reducing reliance on costly trial and error. This reliance creates a fundamental ambiguity: when a world-model-guided decision fails, the trajectory alone may not rev...
Hua-Tai Zhu, Qiang Chen, Zi-Qian Kou et al.· 0 citations
Dialogue failures in language models are usually framed as memory failures: context too long, summaries lossy, a constraint forgotten. We argue this misses a deeper problem: in many conversations the model does not forget, it commits too early. An ambiguous early turn collapses into a single hidden interpretation, and...
Jian-Zhe Lin, Xiao-Lin Li, Fei Wang et al.· 0 citations
A social agent's most basic decisions (should I react to this post? who should I reach out to?) are not purely content problems. The right action often hinges on the latent relationship between people -- tie strength, reciprocity, mutual connections -- rather than on which content is most salient. Standard LLM agent lo...
Jian-Zhe Lin, Xiao-Lin Li, Yun-Da Liu et al.· 0 citations
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