cs.AI updates on arXiv.org 10月07日
LaDiR:融合连续潜表示与迭代推理的LLM框架
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本文提出LaDiR,一种结合连续潜表示和迭代推理能力的新型推理框架,旨在提升大型语言模型(LLM)的推理能力。通过构建结构化潜推理空间,实现语义信息的保留和可解释性,同时提供紧凑且富有表现力的表示。实验结果表明,LaDiR在数学推理和规划基准测试中优于现有方法。

arXiv:2510.04573v1 Announce Type: cross Abstract: Large Language Models (LLMs) demonstrate their reasoning ability through chain-of-thought (CoT) generation. However, LLM's autoregressive decoding may limit the ability to revisit and refine earlier tokens in a holistic manner, which can also lead to inefficient exploration for diverse solutions. In this paper, we propose LaDiR (Latent Diffusion Reasoner), a novel reasoning framework that unifies the expressiveness of continuous latent representation with the iterative refinement capabilities of latent diffusion models for an existing LLM. We first construct a structured latent reasoning space using a Variational Autoencoder (VAE) that encodes text reasoning steps into blocks of thought tokens, preserving semantic information and interpretability while offering compact but expressive representations. Subsequently, we utilize a latent diffusion model that learns to denoise a block of latent thought tokens with a blockwise bidirectional attention mask, enabling longer horizon and iterative refinement with adaptive test-time compute. This design allows efficient parallel generation of diverse reasoning trajectories, allowing the model to plan and revise the reasoning process holistically. We conduct evaluations on a suite of mathematical reasoning and planning benchmarks. Empirical results show that LaDiR consistently improves accuracy, diversity, and interpretability over existing autoregressive, diffusion-based, and latent reasoning methods, revealing a new paradigm for text reasoning with latent diffusion.

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LaDiR LLM 推理框架 连续潜表示 迭代推理
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