cs.AI updates on arXiv.org 07月18日
Modeling Open-World Cognition as On-Demand Synthesis of Probabilistic Models
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本文提出了一种名为“模型合成架构”(MSA)的计算模型,通过结合分布和符号表示,模拟人类在新型情境下构建心理模型的能力。MSA使用语言模型进行全局相关性检索和模型合成,并利用概率程序构建定制化的世界模型。在模拟人类判断的实验中,MSA在直接和基于思维链的生成中均优于仅使用语言模型的基线,表明MSA在开放性领域内具有模拟人类推理的能力。

arXiv:2507.12547v1 Announce Type: cross Abstract: When faced with novel situations, people are able to marshal relevant considerations from a wide range of background knowledge and put these to use in inferences and predictions. What permits us to draw in globally relevant information and reason over it coherently? Here, we explore the hypothesis that people use a combination of distributed and symbolic representations to construct bespoke mental models tailored to novel situations. We propose a computational implementation of this idea -- a `Model Synthesis Architecture'' (MSA) -- using language models to implement global relevance-based retrieval and model synthesis and probabilistic programs to implement bespoke, coherent world models. We evaluate our MSA as a model of human judgments on a novel reasoning dataset. The dataset -- built around aModel Olympics` domain of sports vignettes -- tests models' capacity for human-like, open-ended reasoning by requiring (i) judgments about novel causal structures described in language; (ii) drawing on large bodies of background knowledge; and (iii) doing both in light of observations that introduce arbitrary novel variables. Our MSA approach captures human judgments better than language model-only baselines, under both direct and chain-of-thought generations from the LM that supports model synthesis. These results suggest that MSAs can be implemented in a way that mirrors people's ability to deliver locally coherent reasoning over globally relevant variables, offering a path to understanding and replicating human reasoning in open-ended domains.

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模型合成架构 人类推理 语言模型 概率程序 心理模型
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