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本期的 14 篇论文如下: [00:26] 🎨 Style-Friendly SNR Sampler for Style-Driven Generation(风格友好SNR采样器用于风格驱动生成) [01:08] 🚀 TÜLU 3: Pushing Frontiers in Open Language Model Post-Training(TÜLU 3:推动开放语言模型后训练的前沿) [01:53] 🌐 OminiControl: Minimal and Universal Control for Diffusion Transformer(OminiControl:扩散Transformer的最小且通用控制) [02:31] 🛡 A Flexible Large Language Models Guardrail Development Methodology Applied to Off-Topic Prompt Detection(一种应用于离题提示检测的灵活大型语言模型防护开发方法) [03:08] 🧠 Large Multi-modal Models Can Interpret Features in Large Multi-modal Models(大型多模态模型中的特征解释) [03:49] 🎥 VideoEspresso: A Large-Scale Chain-of-Thought Dataset for Fine-Grained Video Reasoning via Core Frame Selection(视频浓缩:通过核心帧选择进行细粒度视频推理的大规模思维链数据集) [04:29] 🎮 BALROG: Benchmarking Agentic LLM and VLM Reasoning On Games(BALROG:在游戏中评估代理型LLM和VLM的推理能力) [05:13] 🎥 Efficient Long Video Tokenization via Coordinated-based Patch Reconstruction(基于协调的补丁重构高效长视频标记化) [05:56] 👴 MyTimeMachine: Personalized Facial Age Transformation(我的时光机:个性化面部年龄转换) [06:34] 🎥 Novel View Extrapolation with Video Diffusion Priors(基于视频扩散先验的新视角外推) [07:10] 🎥 VideoRepair: Improving Text-to-Video Generation via Misalignment Evaluation and Localized Refinement(视频修复:通过错位评估和局部细化改进文本到视频生成) [07:54] ☁ Adapting Vision Foundation Models for Robust Cloud Segmentation in Remote Sensing Images(适应视觉基础模型用于遥感图像中云分割的鲁棒性) [08:31] 🤖 One to rule them all: natural language to bind communication, perception and action(一统天下:自然语言结合通信、感知与行动) [09:15] 🤖 WildLMa: Long Horizon Loco-Manipulation in the Wild(野外长时程移动操作) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 5 篇论文如下: [00:41] TOP1(🔥93) | 🧠 LLaVA-o1: Let Vision Language Models Reason Step-by-Step(LLaVA-o1:让视觉语言模型逐步推理) [02:41] TOP2(🔥55) | 🌍 Generative World Explorer(生成世界探索者) [05:00] TOP3(🔥44) | 🧠 Enhancing the Reasoning Ability of Multimodal Large Language Models via Mixed Preference Optimization(通过混合偏好优化提升多模态大语言模型的推理能力) [07:11] TOP4(🔥41) | 📚 RedPajama: an Open Dataset for Training Large Language Models(红睡衣:用于训练大型语言模型的开放数据集) [09:20] TOP5(🔥41) | ⚡ SageAttention2 Technical Report: Accurate 4 Bit Attention for Plug-and-play Inference Acceleration(SageAttention2技术报告:用于即插即用推理加速的精确4比特注意力机制) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 14 篇论文如下: [00:26] 🧠 Enhancing the Reasoning Ability of Multimodal Large Language Models via Mixed Preference Optimization(通过混合偏好优化提升多模态大语言模型的推理能力) [01:12] 🌐 Multimodal Autoregressive Pre-training of Large Vision Encoders(大规模视觉编码器多模态自回归预训练) [01:55] 🧠 Marco-o1: Towards Open Reasoning Models for Open-Ended Solutions(Marco-o1:面向开放式解决方案的开放推理模型) [02:40] 🧠 Hymba: A Hybrid-head Architecture for Small Language Models(Hymba:一种用于小语言模型的混合头架构) [03:22] 🚀 Ultra-Sparse Memory Network(超稀疏内存网络) [03:58] 📚 OpenScholar: Synthesizing Scientific Literature with Retrieval-augmented LMs(开放学者:利用检索增强型语言模型合成科学文献) [04:47] 🧠 Natural Language Reinforcement Learning(自然语言强化学习) [05:26] 🧠 Insight-V: Exploring Long-Chain Visual Reasoning with Multimodal Large Language Models(Insight-V:探索多模态大语言模型的长链视觉推理) [06:08] 🤖 Do I Know This Entity? Knowledge Awareness and Hallucinations in Language Models(我了解这个实体吗?语言模型中的知识意识与幻觉) [06:46] 🌊 Stable Flow: Vital Layers for Training-Free Image Editing(稳定流:无需训练的图像编辑关键层) [07:25] 🌐 UnifiedCrawl: Aggregated Common Crawl for Affordable Adaptation of LLMs on Low-Resource Languages(统一爬取:利用Common Crawl为低资源语言的LLM提供经济适用的适应性) [08:03] 🚗 MagicDriveDiT: High-Resolution Long Video Generation for Autonomous Driving with Adaptive Control(MagicDriveDiT:基于自适应控制的高分辨率长视频生成用于自动驾驶) [08:44] 🧠 Patience Is The Key to Large Language Model Reasoning(耐心是大型语言模型推理的关键) [09:18] 🌐 Baking Gaussian Splatting into Diffusion Denoiser for Fast and Scalable Single-stage Image-to-3D Generation(将高斯散射融入扩散去噪器以实现快速且可扩展的单阶段图像到3D生成) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 8 篇论文如下: [00:28] ⚡ SageAttention2 Technical Report: Accurate 4 Bit Attention for Plug-and-play Inference Acceleration(SageAttention2技术报告:用于即插即用推理加速的精确4比特注意力机制) [01:10] 📹 VBench++: Comprehensive and Versatile Benchmark Suite for Video Generative Models(VBench++:全面且多功能的视频生成模型基准套件) [01:51] 🎮 VideoAutoArena: An Automated Arena for Evaluating Large Multimodal Models in Video Analysis through User Simulation(视频自动竞技场:通过用户模拟评估大型多模态模型在视频分析中的能力) [02:33] 🎯 SAMURAI: Adapting Segment Anything Model for Zero-Shot Visual Tracking with Motion-Aware Memory(SAMURAI:利用运动感知记忆机制将分割模型适应于零样本视觉跟踪) [03:10] 🌐 Is Your LLM Secretly a World Model of the Internet? Model-Based Planning for Web Agents(你的LLM是否秘密地成为互联网的世界模型?基于模型的网络代理规划) [03:52] 🔄 When Precision Meets Position: BFloat16 Breaks Down RoPE in Long-Context Training(精度与位置的碰撞:BFloat16在长上下文训练中破坏了RoPE) [04:34] 🎨 Stylecodes: Encoding Stylistic Information For Image Generation(风格编码:为图像生成编码风格信息) [05:11] 🩺 ORID: Organ-Regional Information Driven Framework for Radiology Report Generation(器官-区域信息驱动的放射报告生成框架) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 7 篇论文如下: [00:33] ⚡ Continuous Speculative Decoding for Autoregressive Image Generation(自回归图像生成的连续推测解码) [01:14] 📚 RedPajama: an Open Dataset for Training Large Language Models(红睡衣:用于训练大型语言模型的开放数据集) [01:58] 🤖 Soft Robotic Dynamic In-Hand Pen Spinning(软体机器人动态手内笔旋转) [02:39] 🚀 ITACLIP: Boosting Training-Free Semantic Segmentation with Image, Text, and Architectural Enhancements(ITACLIP:通过图像、文本和架构增强提升无训练语义分割) [03:13] 🔒 Building Trust: Foundations of Security, Safety and Transparency in AI(构建信任:人工智能中的安全、安全和透明度基础) [03:46] 🔍 SEAGULL: No-reference Image Quality Assessment for Regions of Interest via Vision-Language Instruction Tuning(SEAGULL:通过视觉语言指令调优的无参考图像质量评估方法) [04:24] 📊 Evaluating Tokenizer Performance of Large Language Models Across Official Indian Languages(评估大型语言模型在印度官方语言中的分词器性能) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 16 篇论文如下: [00:25] 📱 BlueLM-V-3B: Algorithm and System Co-Design for Multimodal Large Language Models on Mobile Devices(BlueLM-V-3B:移动设备上多模态大语言模型的算法与系统协同设计) [01:06] 🌍 Generative World Explorer(生成世界探索者) [01:43] 🔍 Search, Verify and Feedback: Towards Next Generation Post-training Paradigm of Foundation Models via Verifier Engineering(搜索、验证与反馈:通过验证器工程实现下一代基础模型的后训练范式) [02:24] 🎥 AnimateAnything: Consistent and Controllable Animation for Video Generation(动画任何事物:视频生成的连贯可控动画) [03:08] 🧠 Top-$nσ$: Not All Logits Are You Need(Top-$nσ$:并非所有对数都需要) [03:55] 🧠 Awaker2.5-VL: Stably Scaling MLLMs with Parameter-Efficient Mixture of Experts(Awaker2.5-VL:通过参数高效混合专家稳定扩展多模态大语言模型) [04:40] ⚡ SmoothCache: A Universal Inference Acceleration Technique for Diffusion Transformers(SmoothCache:一种用于扩散变换器的通用推理加速技术) [05:19] 📚 Drowning in Documents: Consequences of Scaling Reranker Inference(文档淹没:扩展重排序器推理的后果) [06:00] 🩺 Comprehensive and Practical Evaluation of Retrieval-Augmented Generation Systems for Medical Question Answering(医疗问答系统中检索增强生成系统的综合与实用评估) [06:37] 📱 SlimLM: An Efficient Small Language Model for On-Device Document Assistance(SlimLM:一种用于设备端文档辅助的高效小型语言模型) [07:19] 🎥 VeGaS: Video Gaussian Splatting(视频高斯喷射) [07:50] 🔄 Adaptive Decoding via Latent Preference Optimization(通过潜在偏好优化的自适应解码) [08:27] 🎥 StableV2V: Stablizing Shape Consistency in Video-to-Video Editing(稳定视频编辑:在视频到视频编辑中保持形状一致性) [09:11] 🇩 LLäMmlein: Compact and Competitive German-Only Language Models from Scratch(LLäMmlein:从头开始构建紧凑且有竞争力的德语专用语言模型) [09:43] 👕 FitDiT: Advancing the Authentic Garment Details for High-fidelity Virtual Try-on(FitDiT:提升高保真虚拟试穿的真实服装细节) [10:18] 📜 Evaluating the role of `Constitutions' for learning from AI feedback(评估‘宪法’在从AI反馈中学习的作用) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 6 篇论文如下: [00:28] 🧠 LLaVA-o1: Let Vision Language Models Reason Step-by-Step(LLaVA-o1:让视觉语言模型逐步推理) [01:14] 🎨 Region-Aware Text-to-Image Generation via Hard Binding and Soft Refinement(区域感知文本到图像生成:硬绑定与软优化) [01:51] 🌐 GaussianAnything: Interactive Point Cloud Latent Diffusion for 3D Generation(高斯任意:交互式点云潜在扩散用于3D生成) [02:25] 🌅 The Dawn of GUI Agent: A Preliminary Case Study with Claude 3.5 Computer Use(GUI代理的黎明:基于Claude 3.5计算机使用的初步案例研究) [03:00] 📖 Number it: Temporal Grounding Videos like Flipping Manga(像翻阅漫画一样进行视频时间定位) [03:45] 🌍 Xmodel-1.5: An 1B-scale Multilingual LLM(Xmodel-1.5:一个10亿参数的多语言大型语言模型) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 5 篇论文如下: [00:44] TOP1(🔥54) | 🖼 Add-it: Training-Free Object Insertion in Images With Pretrained Diffusion Models(Add-it:基于预训练扩散模型的图像无训练对象插入) [02:31] TOP2(🔥44) | 🤖 Large Language Models Can Self-Improve in Long-context Reasoning(大型语言模型在长上下文推理中的自我改进) [04:15] TOP3(🔥43) | 🌐 LLaMA-Mesh: Unifying 3D Mesh Generation with Language Models(LLaMA-Mesh:将3D网格生成与语言模型统一) [06:12] TOP4(🔥42) | 🎨 OmniEdit: Building Image Editing Generalist Models Through Specialist Supervision(全能编辑器:通过专家监督构建图像编辑通用模型) [08:01] TOP5(🔥42) | 📚 M-Longdoc: A Benchmark For Multimodal Super-Long Document Understanding And A Retrieval-Aware Tuning Framework(M-Longdoc:多模态超长文档理解和检索感知调优框架的基准) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 7 篇论文如下: [00:27] ✨ MagicQuill: An Intelligent Interactive Image Editing System(魔法羽毛笔:智能交互式图像编辑系统) [01:15] 🌐 LLaMA-Mesh: Unifying 3D Mesh Generation with Language Models(LLaMA-Mesh:将3D网格生成与语言模型统一) [01:50] 💾 Cut Your Losses in Large-Vocabulary Language Models(在大词汇量语言模型中减少损失) [02:22] 🏥 ClinicalBench: Can LLMs Beat Traditional ML Models in Clinical Prediction?(临床基准:LLMs能否在临床预测中超越传统ML模型?) [03:02] 🤖 Hermes: A Large Language Model Framework on the Journey to Autonomous Networks(赫尔墨斯:迈向自主网络的大型语言模型框架) [03:36] 🎥 Sharingan: Extract User Action Sequence from Desktop Recordings(分享眼:从桌面录制中提取用户操作序列) [04:21] 🤔 Inconsistencies In Consistency Models: Better ODE Solving Does Not Imply Better Samples(一致性模型中的不一致性:更好的ODE求解并不意味着更好的样本) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 7 篇论文如下: [00:26] 🤖 Large Language Models Can Self-Improve in Long-context Reasoning(大型语言模型在长上下文推理中的自我改进) [01:09] 🎥 EgoVid-5M: A Large-Scale Video-Action Dataset for Egocentric Video Generation(EgoVid-5M:用于第一人称视频生成的大规模视频动作数据集) [01:58] 🔍 Direct Preference Optimization Using Sparse Feature-Level Constraints(利用稀疏特征级约束进行直接偏好优化) [02:37] 🇫 CamemBERT 2.0: A Smarter French Language Model Aged to Perfection(CamemBERT 2.0:更智能的法语语言模型,完美成熟) [03:18] 🧠 Can sparse autoencoders be used to decompose and interpret steering vectors?(稀疏自编码器能否用于分解和解释转向向量?) [03:58] 🎵 PerceiverS: A Multi-Scale Perceiver with Effective Segmentation for Long-Term Expressive Symbolic Music Generation(PerceiverS:一种具有有效分割的多尺度感知器,用于长期表达性符号音乐生成) [04:39] 🎥 Motion Control for Enhanced Complex Action Video Generation(增强复杂动作视频生成的运动控制) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 6 篇论文如下: [00:28] 🔍 SAMPart3D: Segment Any Part in 3D Objects(SAMPart3D:三维物体任意部分分割) [01:06] 🌐 JanusFlow: Harmonizing Autoregression and Rectified Flow for Unified Multimodal Understanding and Generation(JanusFlow:统一自回归与校正流的多模态理解与生成) [01:42] 🤔 Stronger Models are NOT Stronger Teachers for Instruction Tuning(更强的模型并非更强的指令调优教师) [02:21] 🌐 Wavelet Latent Diffusion (Wala): Billion-Parameter 3D Generative Model with Compact Wavelet Encodings(小波潜在扩散(WaLa):具有紧凑小波编码的十亿参数3D生成模型) [03:02] 📚 BLIP3-KALE: Knowledge Augmented Large-Scale Dense Captions(BLIP3-KALE:知识增强的大规模密集字幕) [03:55] 🔍 Hardware and Software Platform Inference(硬件与软件平台推断) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
本期的 14 篇论文如下: [00:23] 🖼 Add-it: Training-Free Object Insertion in Images With Pretrained Diffusion Models(Add-it:基于预训练扩散模型的图像中无训练对象插入) [01:05] 🎨 OmniEdit: Building Image Editing Generalist Models Through Specialist Supervision(全能编辑器:通过专家监督构建图像编辑通用模型) [01:49] 📚 Chinese SimpleQA: A Chinese Factuality Evaluation for Large Language Models(中文简单问答:大语言模型的中文事实性评估) [02:27] 📚 M-Longdoc: A Benchmark For Multimodal Super-Long Document Understanding And A Retrieval-Aware Tuning Framework(M-Longdoc:多模态超长文档理解和检索感知调优框架的基准) [03:04] 🖼 Edify Image: High-Quality Image Generation with Pixel Space Laplacian Diffusion Models(启迪图像:基于像素空间拉普拉斯扩散模型的高质量图像生成) [03:42] 🧠 IOPO: Empowering LLMs with Complex Instruction Following via Input-Output Preference Optimization(IOPO:通过输入输出偏好优化增强LLMs复杂指令跟随能力) [04:33] 🦎 GitChameleon: Unmasking the Version-Switching Capabilities of Code Generation Models(GitChameleon:揭秘代码生成模型的版本切换能力) [05:11] 🌐 Watermark Anything with Localized Messages(基于局部信息的水印技术) [05:50] 🧠 Counterfactual Generation from Language Models(语言模型中的反事实生成) [06:22] 🤖 KMM: Key Frame Mask Mamba for Extended Motion Generation(KMM:扩展运动生成的关键帧掩码Mamba) [06:56] 🎲 Game-theoretic LLM: Agent Workflow for Negotiation Games(博弈论LLM:谈判游戏中的代理工作流程) [07:35] 📊 Golden Touchstone: A Comprehensive Bilingual Benchmark for Evaluating Financial Large Language Models(金标准:评估金融大语言模型的综合双语基准) [08:15] 🧠 NeKo: Toward Post Recognition Generative Correction Large Language Models with Task-Oriented Experts(NeKo:面向任务导向专家的生成校正大型语言模型) [08:54] 🧠 Ablation is Not Enough to Emulate DPO: How Neuron Dynamics Drive Toxicity Reduction(消融不足以模拟DPO:神经元动力学如何驱动毒性降低) 【关注我们】 您还可以在以下平台找到我们,获得播客内容以外更多信息 小红书: AI速递
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