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PromptEcho: Annotation-Free Reward from Vision-Language Models for Text-to-Image Reinforcement Learning

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Reinforcement learning (RL) can improve the prompt following capability of text-to-image (T2I) models, yet obtaining high-quality reward signals remains challenging: CLIP Score is too coarse-grained, while VLM-based reward models (e.g., RewardDance) require costly human-annotated preference data and additional fine-tuning. We propose PromptEcho, a reward construction method that requires \emph{no} annotation and \emph{no} reward model training. Given a generated image and a guiding query, PromptEcho computes the token-level cross-entropy loss of a frozen VLM with the original prompt as the label, directly extracting the image-text alignment knowledge encoded during VLM pretraining. The reward is deterministic, computationally efficient, and improves automatically as stronger open-source VLMs become available. For evaluation, we develop DenseAlignBench, a benchmark of concept-rich dense captions for rigorously testing prompt following capability. Experimental results on two state-of-the-art T2I models (Z-Image and QwenImage-2512) demonstrate that PromptEcho achieves substantial improvements on DenseAlignBench (+26.8pp / +16.2pp net win rate), along with consistent gains on GenEval, DPG-Bench, and TIIFBench without any task-specific training. Ablation studies confirm that PromptEcho comprehensively outperforms inference-based scoring with the same VLM, and that reward quality scales with VLM size. We will open-source the trained models and the DenseAlignBench.

Jinlong Liu, Wanggui He, Peng Zhang, Mushui Liu, Hao Jiang, Pipei Huang• 2026

Related benchmarks

TaskDatasetResultRank
Text-to-Image GenerationGenEval
GenEval Score82
360
Text-to-Image AlignmentDPG
Overall87.92
39
Text-to-Image GenerationTIIF Long Prompts
Basic Following (Avg)89.7
14
Text-to-Image Instruction FollowingTIFF-Bench short descriptions v1
Overall Score88.5
12
Text-to-Image Prompt FollowingDenseAlignBench
Win Rate61.5
2
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