cs.AI updates on arXiv.org 10月27日 14:27
Chunk-GRPO:基于块级优化的文本到图像生成新方法
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本文提出Chunk-GRPO,一种基于块级优化的文本到图像生成方法,旨在解决传统GRPO方法在优势归因和时间动态处理上的局限性。通过将连续步骤分组为具有内在时间动态的“块”,在块级优化策略下进行优化,并引入加权采样策略,显著提升生成图像的质量和偏好匹配度。

arXiv:2510.21583v1 Announce Type: cross Abstract: Group Relative Policy Optimization (GRPO) has shown strong potential for flow-matching-based text-to-image (T2I) generation, but it faces two key limitations: inaccurate advantage attribution, and the neglect of temporal dynamics of generation. In this work, we argue that shifting the optimization paradigm from the step level to the chunk level can effectively alleviate these issues. Building on this idea, we propose Chunk-GRPO, the first chunk-level GRPO-based approach for T2I generation. The insight is to group consecutive steps into coherent 'chunk's that capture the intrinsic temporal dynamics of flow matching, and to optimize policies at the chunk level. In addition, we introduce an optional weighted sampling strategy to further enhance performance. Extensive experiments show that ChunkGRPO achieves superior results in both preference alignment and image quality, highlighting the promise of chunk-level optimization for GRPO-based methods.

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文本到图像生成 GRPO优化 块级优化 图像质量 偏好匹配
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