cs.AI updates on arXiv.org 10月07日 12:07
WebUI-to-Code:大规模基准与评估指标研究
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本文提出WebRenderBench,一个包含22.5k网页的大规模基准,旨在提升UI图像到网页代码转换的自动化。同时,提出新型评估指标,通过强化学习提高UI生成性能。

arXiv:2510.04097v1 Announce Type: new Abstract: Automating the conversion of UI images into web code is a critical task for front-end development and rapid prototyping. Advances in multimodal large language models (MLLMs) have made WebUI-to-Code increasingly feasible, yet existing benchmarks remain limited in data diversity and evaluation reliability. To address these issues, we present WebRenderBench, a large-scale benchmark of 22.5k webpages collected from real-world portal sites, offering greater diversity, complexity, and realism than prior benchmarks. We further propose a novel evaluation metric that measures layout and style consistency from the final rendered pages. Unlike vision-based methods that rely on costly LLM reasoning or structure-based comparisons vulnerable to noise and asymmetry, our approach enables more efficient, objective, and reliable UI quality assessment. Finally, we introduce the Automated Layout and Style Inspection Agent (ALISA), which integrates this metric into reinforcement learning as a reward signal to enhance training on crawled asymmetric webpages. Experiments show that ALISA significantly boosts generation performance, achieving state-of-the-art results across multiple metrics.

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WebUI-to-Code 大规模基准 评估指标 强化学习 UI生成
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