2025.12.01 | Z-Image小参高效夺冠;REASONEDIT先思后画登顶

2025.12.01 | Z-Image小参高效夺冠;REASONEDIT先思后画登顶

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本期的 15 篇论文如下:

00:26 🚀 Z-Image: An Efficient Image Generation Foundation Model with Single-Stream Diffusion Transformer(Z-Image:基于单流扩散Transformer的高效图像生成基础模型)

01:00 🤔 REASONEDIT: Towards Reasoning-Enhanced Image Editing Models(REASONEDIT:迈向推理增强的图像编辑模型)

01:25 🎬 AnyTalker: Scaling Multi-Person Talking Video Generation with Interactivity Refinement(AnyTalker:通过交互性精炼实现可扩展的多人物对话视频生成)

01:59 🌉 Vision Bridge Transformer at Scale(大规模视觉桥接变换器)

02:35 🔍 Architecture Decoupling Is Not All You Need For Unified Multimodal Model(架构解耦并非统一多模态模型的全部所需)

03:23 ⚡ DiP: Taming Diffusion Models in Pixel Space(DiP:在像素空间驾驭扩散模型)

03:49 🧠 Every Token Counts: Generalizing 16M Ultra-Long Context in Large Language Models(每个令牌都重要:在大型语言模型中泛化1600万超长上下文)

04:19 🤖 DualVLA: Building a Generalizable Embodied Agent via Partial Decoupling of Reasoning and Action(DualVLA:通过部分解耦推理与动作构建可泛化的具身智能体)

05:02 ⚡ Adversarial Flow Models(对抗性流模型)

05:29 🔬 Decoupled DMD: CFG Augmentation as the Spear, Distribution Matching as the Shield(解耦的DMD:CFG增强为矛,分布匹配为盾)

06:10 🎥 Captain Safari: A World Engine(Captain Safari:一种世界引擎)

06:43 🌍 World in a Frame: Understanding Culture Mixing as a New Challenge for Vision-Language Models(框架中的世界:理解文化混合作为视觉语言模型的新挑战)

07:20 🔍 The Collapse of Patches(图像块坍缩)

07:50 🔍 RefineBench: Evaluating Refinement Capability of Language Models via Checklists(RefineBench:基于检查表评估语言模型精炼能力)

08:23 🦷 OralGPT-Omni: A Versatile Dental Multimodal Large Language Model(OralGPT-Omni:一个通用的牙科多模态大语言模型)

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