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@@ -65,7 +65,7 @@ Our machine evaluation involved a comprehensive comparison of various models. Th
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  As shown in the figures below, a comparison of different models in Chinese and English text-to-image generation performance is presented. The XL version models, such as SD-XL and Taiyi-XL, show significant improvements over the 1.5 version models like SD-v1.5 and Alt-Diffusion. DALL-E 3 is renowned for its vibrant colors and its ability to closely follow text prompts, setting a high standard. Our Taiyi-XL model, with its photographic style, closely matches the performance of Midjourney and excels in bilingual (Chinese and English) text-to-image generation.
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- 尽管Taiyi-XL可能还未能与商业模型相媲美,但它比当前双语开源模型优越不少。我们认为我们模型与商业模型的差距主要归因于训练数据的数量、质量和多样性的差异。我们的模型仅使用学术数据集和符合版权要求的图文数据进行训练。正如大家所知的,版权问题仍然是文生图和AIGC模型最大的问题。对于中国人像或者元素我们也希望开源社区进一步数据微调。
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  Although Taiyi-XL may not yet rival commercial models, it excels among current bilingual open-source models. The gap with commercial models is mainly due to differences in the quantity, quality, and diversity of training data. Our model is trained exclusively on copyright-compliant image-text data. As is well known, copyright issues remain the biggest challenge in text-to-image and AI-generated content (AIGC) models.
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  As shown in the figures below, a comparison of different models in Chinese and English text-to-image generation performance is presented. The XL version models, such as SD-XL and Taiyi-XL, show significant improvements over the 1.5 version models like SD-v1.5 and Alt-Diffusion. DALL-E 3 is renowned for its vibrant colors and its ability to closely follow text prompts, setting a high standard. Our Taiyi-XL model, with its photographic style, closely matches the performance of Midjourney and excels in bilingual (Chinese and English) text-to-image generation.
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+ 尽管Taiyi-XL可能还未能与商业模型相媲美,但它比当前双语开源模型优越不少。我们认为我们模型与商业模型的差距主要归因于训练数据的数量、质量和多样性的差异。我们的模型仅使用学术数据集和符合版权要求的图文数据进行训练。正如大家所知的,版权问题仍然是文生图和AIGC模型最大的问题。**当然由于数据限制,对于中国人像或者元素我们也希望开源社区进一步数据微调**。
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  Although Taiyi-XL may not yet rival commercial models, it excels among current bilingual open-source models. The gap with commercial models is mainly due to differences in the quantity, quality, and diversity of training data. Our model is trained exclusively on copyright-compliant image-text data. As is well known, copyright issues remain the biggest challenge in text-to-image and AI-generated content (AIGC) models.
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