cs.AI updates on arXiv.org 10月07日
通用多域翻译模型UMDT及其扩散路由器
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本文提出了一种名为UMDT的通用多域翻译模型,通过使用中心域和Diffusion Router技术,实现了跨多个域的翻译,同时降低了采样成本,拓展了新的翻译任务。

arXiv:2510.03252v1 Announce Type: cross Abstract: Multi-domain translation (MDT) aims to learn translations between multiple domains, yet existing approaches either require fully aligned tuples or can only handle domain pairs seen in training, limiting their practicality and excluding many cross-domain mappings. We introduce universal MDT (UMDT), a generalization of MDT that seeks to translate between any pair of $K$ domains using only $K-1$ paired datasets with a central domain. To tackle this problem, we propose Diffusion Router (DR), a unified diffusion-based framework that models all central$\leftrightarrow$non-central translations with a single noise predictor conditioned on the source and target domain labels. DR enables indirect non-central translations by routing through the central domain. We further introduce a novel scalable learning strategy with a variational-bound objective and an efficient Tweedie refinement procedure to support direct non-central mappings. Through evaluation on three large-scale UMDT benchmarks, DR achieves state-of-the-art results for both indirect and direct translations, while lowering sampling cost and unlocking novel tasks such as sketch$\leftrightarrow$segmentation. These results establish DR as a scalable and versatile framework for universal translation across multiple domains.

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多域翻译 UMDT 扩散路由器 翻译模型 跨域翻译
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