HuggingFace 每日AI论文速递 - 节目列表

2025.10.17 | AI眼镜预判式服务;视频生成补想象力

2025.10.17 | AI眼镜预判式服务;视频生成补想象力

HuggingFace 每日AI论文速递

本期的 11 篇论文如下:[00:25] 👓 AI for Service: Proactive Assistance with AI Glasses(AI服务:AI眼镜的主动式协助)[01:06] 🎬 ImagerySearch: Adaptive Test-Time Search for Video Generation Beyond Semantic Dependency Constraints(ImagerySearch:面向超越语义依赖约束的自适应测试时搜索视频生成)[01:43] 🎯 LaSeR: Reinforcement Learning with Last-Token Self-Rewarding(LaSeR:基于末词元自奖励的强化学习)[02:33] 🧩 TokDrift: When LLM Speaks in Subwords but Code Speaks in Grammar(TokDrift:当大模型用子词而代码用语法时)[03:35] 🧠 Information Gain-based Policy Optimization: A Simple and Effective Approach for Multi-Turn LLM Agents(基于信息增益的策略优化:一种简单有效的多轮LLM智能体训练方法)[04:04] ⚡ Attention Is All You Need for KV Cache in Diffusion LLMs(扩散式大语言模型只需注意力即可搞定KV缓存)[04:45] 🤥 When Models Lie, We Learn: Multilingual Span-Level Hallucination Detection with PsiloQA(当模型撒谎时我们反而学到东西:用PsiloQA实现跨语言细粒度幻觉检测)[05:33] 📄 PaddleOCR-VL: Boosting Multilingual Document Parsing via a 0.9B Ultra-Compact Vision-Language Model(PaddleOCR-VL:以9亿参数超轻量多模态模型刷新多语言文档解析性能)[06:13] 🧠 VR-Thinker: Boosting Video Reward Models through Thinking-with-Image Reasoning(VR-Thinker:通过“边看边想”推理提升视频奖励模型)[06:52] 📐 MathCanvas: Intrinsic Visual Chain-of-Thought for Multimodal Mathematical Reasoning(MathCanvas:面向多模态数学推理的内生视觉思维链)[07:39] 🧠 COIG-Writer: A High-Quality Dataset for Chinese Creative Writing with Thought Processes(COIG-Writer:高质量中文创意写作数据集,附带思维过程)【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速递在小宇宙查看该单集文稿

8分钟
99+
8个月前
2025.10.16 | UniMoE一统语音音乐;注意力图点亮大模型推理

2025.10.16 | UniMoE一统语音音乐;注意力图点亮大模型推理

HuggingFace 每日AI论文速递

本期的 15 篇论文如下:[00:21] 🎧 UniMoE-Audio: Unified Speech and Music Generation with Dynamic-Capacity MoE(UniMoE-Audio:基于动态容量MoE的统一语音与音乐生成模型)[00:57] 🔍 Attention Illuminates LLM Reasoning: The Preplan-and-Anchor Rhythm Enables Fine-Grained Policy Optimization(注意力照亮大模型推理:预规划-锚定节奏实现细粒度策略优化)[01:38] ⚡ FlashWorld: High-quality 3D Scene Generation within Seconds(FlashWorld:秒级高质量3D场景生成)[02:06] 🐝 Bee: A High-Quality Corpus and Full-Stack Suite to Unlock Advanced Fully Open MLLMs(Bee:高质量语料与全栈套件解锁完全开源多模态大模型)[02:37] 🗣 InteractiveOmni: A Unified Omni-modal Model for Audio-Visual Multi-turn Dialogue(InteractiveOmni:面向音视频多轮对话的统一全模态模型)[03:24] 🌍 PhysMaster: Mastering Physical Representation for Video Generation via Reinforcement Learning(PhysMaster:通过强化学习掌握视频生成的物理表征)[04:00] 🧪 LIBERO-Plus: In-depth Robustness Analysis of Vision-Language-Action Models(LIBERO-Plus:视觉-语言-动作模型鲁棒性深度剖析)[04:43] 🚗 CVD-STORM: Cross-View Video Diffusion with Spatial-Temporal Reconstruction Model for Autonomous Driving(CVD-STORM:面向自动驾驶的跨视角视频扩散时空重建模型)[05:21] 🔍 Generative Universal Verifier as Multimodal Meta-Reasoner(生成式通用验证器:多模态元推理的反思引擎)[06:07] ⚖ ParallelBench: Understanding the Trade-offs of Parallel Decoding in Diffusion LLMs(ParallelBench:探明扩散式大模型并行解码的取舍)[06:43] 🎞 Trace Anything: Representing Any Video in 4D via Trajectory Fields(任意视频4D轨迹场表示:一次前馈即可还原每像素连续时空路径)[07:27] 🌍 Reasoning in Space via Grounding in the World(基于世界锚定的空间推理)[07:54] 🧠 The Role of Computing Resources in Publishing Foundation Model Research(计算资源在基础模型研究发表中的角色)[08:28] ⚖ UniME-V2: MLLM-as-a-Judge for Universal Multimodal Embedding Learning(UniME-V2:用多模态大模型当裁判,打造通用多模态表征)[09:05] 🤖 InternVLA-M1: A Spatially Guided Vision-Language-Action Framework for Generalist Robot Policy(InternVLA-M1:面向通用机器人策略的空间引导视觉-语言-动作框架)【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速递在小宇宙查看该单集文稿

10分钟
99+
8个月前
2025.10.15 | 像素级自监督ViT刷新生成基准;多智能体评测网文翻译新标尺

2025.10.15 | 像素级自监督ViT刷新生成基准;多智能体评测网文翻译新标尺

HuggingFace 每日AI论文速递

本期的 14 篇论文如下:[00:20] 🖼 Advancing End-to-End Pixel Space Generative Modeling via Self-supervised Pre-training(通过自监督预训练推进端到端像素空间生成建模)[00:53] 📚 DITING: A Multi-Agent Evaluation Framework for Benchmarking Web Novel Translation(DITING:面向网络小说翻译评测的多智能体基准框架)[01:41] 🌐 Scaling Language-Centric Omnimodal Representation Learning(以语言为中心的跨模态表征扩展学习)[02:29] 🎯 Detect Anything via Next Point Prediction(通过下一点预测检测万物)[03:02] ⚡ FlashVSR: Towards Real-Time Diffusion-Based Streaming Video Super-Resolution(FlashVSR:迈向实时扩散式流媒体视频超分辨率)[03:40] 🎯 Temporal Alignment Guidance: On-Manifold Sampling in Diffusion Models(时间对齐引导:扩散模型中的流形采样)[04:16] 🧠 Dr.LLM: Dynamic Layer Routing in LLMs(Dr.LLM:大模型中的动态层级路由)[05:03] 🎯 Spatial Forcing: Implicit Spatial Representation Alignment for Vision-language-action Model(空间强迫:面向视觉-语言-动作模型的隐式空间表征对齐)[05:50] 🤖 ERA: Transforming VLMs into Embodied Agents via Embodied Prior Learning and Online Reinforcement Learning(ERA:借助具身先验学习与在线强化学习将视觉-语言模型转化为具身智能体)[06:35] 🤖 Robot Learning: A Tutorial(机器人学习教程:从强化学习到多任务通用模型)[07:27] 🔄 SRUM: Fine-Grained Self-Rewarding for Unified Multimodal Models(SRUM:面向统一多模态模型的细粒度自奖励机制)[08:01] 🧠 Boundary-Guided Policy Optimization for Memory-efficient RL of Diffusion Large Language Models(面向扩散大语言模型的边界引导策略优化:内存高效的强化学习)[09:06] 🖼 UniFusion: Vision-Language Model as Unified Encoder in Image Generation(UniFusion:将视觉-语言模型统一作为图像生成的编码器)[09:43] 🧠 Memory as Action: Autonomous Context Curation for Long-Horizon Agentic Tasks(记忆即行动:面向长程智能体任务的自主上下文策展)【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速递在小宇宙查看该单集文稿

10分钟
95
8个月前
2025.10.14 | 量化误差变奖励,单卡训32B;面向多模态大模型的音视频评测基准

2025.10.14 | 量化误差变奖励,单卡训32B;面向多模态大模型的音视频评测基准

HuggingFace 每日AI论文速递

本期的 15 篇论文如下:[00:23] 🚀 QeRL: Beyond Efficiency -- Quantization-enhanced Reinforcement Learning for LLMs(QeRL:超越效率——面向大语言模型的量化增强强化学习)[01:22] 🧠 Diffusion Transformers with Representation Autoencoders(基于表示自编码器的扩散Transformer)[02:12] 🎬 OmniVideoBench: Towards Audio-Visual Understanding Evaluation for Omni MLLMs(OmniVideoBench:面向全向多模态大模型的音视频协同理解评测基准)[02:41] 🔄 Latent Refinement Decoding: Enhancing Diffusion-Based Language Models by Refining Belief States(潜变量精化解码:通过精化信念状态增强基于扩散的语言模型)[03:18] 🌊 RLFR: Extending Reinforcement Learning for LLMs with Flow Environment(RLFR:基于潜流环境扩展大模型强化学习)[04:11] 🔍 Spotlight on Token Perception for Multimodal Reinforcement Learning(多模态强化学习中token感知的光束聚焦)[04:50] 🎬 AVoCaDO: An Audiovisual Video Captioner Driven by Temporal Orchestration(AVoCaDO:面向时序编排的音视频联合字幕生成器)[05:25] 🌐 DiT360: High-Fidelity Panoramic Image Generation via Hybrid Training(DiT360:混合训练视角与全景数据的高保真全景图像生成)[05:56] 🧠 Demystifying Reinforcement Learning in Agentic Reasoning(揭开强化学习在智能体推理中的神秘面纱)[06:51] 🧮 Making Mathematical Reasoning Adaptive(让数学推理具备自适应性)[07:26] 🛡 Building a Foundational Guardrail for General Agentic Systems via Synthetic Data(面向通用智能体的基础护栏:基于合成数据的预执行安全框架)[08:05] 🧠 ACADREASON: Exploring the Limits of Reasoning Models with Academic Research Problems(ACADREASON:用学术研究问题探索推理模型的极限)[08:43] 🎨 InternSVG: Towards Unified SVG Tasks with Multimodal Large Language Models(InternSVG:用多模态大模型统一搞定SVG理解、编辑与生成)[09:23] 🧾 FinAuditing: A Financial Taxonomy-Structured Multi-Document Benchmark for Evaluating LLMs(FinAuditing:面向LLM评估的财务分类多文档基准)[10:09] 🧠 GIR-Bench: Versatile Benchmark for Generating Images with Reasoning(GIR-Bench:面向推理图像生成的多功能基准)【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速递在小宇宙查看该单集文稿

11分钟
99+
8个月前
2025.10.13 | 桌面交互预训练解锁机器人潜能;统一模型赋予相机空间想象力

2025.10.13 | 桌面交互预训练解锁机器人潜能;统一模型赋予相机空间想象力

HuggingFace 每日AI论文速递

本期的 14 篇论文如下:[00:20] 🖥 D2E: Scaling Vision-Action Pretraining on Desktop Data for Transfer to Embodied AI(D2E:利用桌面数据规模化视觉-动作预训练以迁移至具身智能)[01:13] 📷 Thinking with Camera: A Unified Multimodal Model for Camera-Centric Understanding and Generation(基于相机的统一多模态理解与生成模型)[01:56] 🎨 TAG:Tangential Amplifying Guidance for Hallucination-Resistant Diffusion Sampling(TAG:抑制幻觉的扩散采样切向放大引导)[02:31] 🧠 Multimodal Prompt Optimization: Why Not Leverage Multiple Modalities for MLLMs(多模态提示优化:为何不为多模态大模型释放全模态潜能)[03:05] 🚀 AutoPR: Let's Automate Your Academic Promotion!(AutoPR:让学术晋升一键自动化!)[03:39] 🧭 R-Horizon: How Far Can Your Large Reasoning Model Really Go in Breadth and Depth?(R-HORIZON:你的大推理模型在广度与深度上究竟能走多远?)[04:14] 🚀 Webscale-RL: Automated Data Pipeline for Scaling RL Data to Pretraining Levels(Webscale-RL:把强化学习数据扩展到预训练体量的自动化流水线)[04:56] 🛰 SpaceVista: All-Scale Visual Spatial Reasoning from mm to km(SpaceVista:毫米到千米全尺度视觉空间推理)[05:37] 🎥 StreamingVLM: Real-Time Understanding for Infinite Video Streams(StreamingVLM:面向无限视频流的实时理解框架)[06:19] 🌐 KORMo: Korean Open Reasoning Model for Everyone(KORMo:人人可用的韩语开放推理模型)[06:42] ♻ Don't Waste Mistakes: Leveraging Negative RL-Groups via Confidence Reweighting(别浪费错误:通过置信度加权利用负RL组)[07:25] 🧠 Bridging Reasoning to Learning: Unmasking Illusions using Complexity Out of Distribution Generalization(从推理到学习的桥梁:以复杂度分布外泛化揭穿幻觉)[08:16] ⚡ DISCO: Diversifying Sample Condensation for Efficient Model Evaluation(DISCO:以模型分歧为导向的样本浓缩加速评测)[08:56] 🚗 Progressive Gaussian Transformer with Anisotropy-aware Sampling for Open Vocabulary Occupancy Prediction(面向开放词汇占用预测的各向异性采样渐进高斯Transformer)【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速递在小宇宙查看该单集文稿

10分钟
99+
8个月前
2025.10.10 | 早期经验的Agent Learning;图文交错反思链跃升至24.9%

2025.10.10 | 早期经验的Agent Learning;图文交错反思链跃升至24.9%

HuggingFace 每日AI论文速递

本期的 14 篇论文如下:[00:16] 🌱 Agent Learning via Early Experience(基于早期经验的主体学习)[00:50] 🧠 MM-HELIX: Boosting Multimodal Long-Chain Reflective Reasoning with Holistic Platform and Adaptive Hybrid Policy Optimization(MM-HELIX:以整体平台与自适应混合策略优化激发多模态长链反思推理)[01:42] 🧪 From What to Why: A Multi-Agent System for Evidence-based Chemical Reaction Condition Reasoning(从“是什么”到“为什么”:面向循证化学反应条件推理的多智能体系统)[02:19] 🎬 UniVideo: Unified Understanding, Generation, and Editing for Videos(UniVideo:统一理解、生成与编辑视频的多模态框架)[03:01] 🧠 When Thoughts Meet Facts: Reusable Reasoning for Long-Context LMs(当思想邂逅事实:面向长上下文语言模型的可复用推理)[03:43] 🧠 Meta-Awareness Enhances Reasoning Models: Self-Alignment Reinforcement Learning(元认知增强推理模型:自对齐强化学习)[04:25] 🧠 MemMamba: Rethinking Memory Patterns in State Space Model(MemMamba:重新思考状态空间模型中的记忆模式)[05:17] 🛡 The Alignment Waltz: Jointly Training Agents to Collaborate for Safety(对齐圆舞曲:联合训练智能体协同守护安全)[05:53] 🎯 Hybrid Reinforcement: When Reward Is Sparse, It's Better to Be Dense(混合强化:奖励稀疏时,密集信号更胜一筹)[06:40] 🧪 NewtonBench: Benchmarking Generalizable Scientific Law Discovery in LLM Agents(NewtonBench:评测大模型智能体在通用科学定律发现中的基准)[07:17] 🪚 DeepPrune: Parallel Scaling without Inter-trace Redundancy(DeepPrune:并行扩展中消除跨路径冗余的高效推理框架)[07:54] 🚀 Training-Free Group Relative Policy Optimization(免训练群组相对策略优化)[08:24] 🪄 ARTDECO: Towards Efficient and High-Fidelity On-the-Fly 3D Reconstruction with Structured Scene Representation(ARTDECO:面向高效高保真即时三维重建的结构化场景表征)[08:55] 🤥 LLMs Learn to Deceive Unintentionally: Emergent Misalignment in Dishonesty from Misaligned Samples to Biased Human-AI Interactions(大模型在欺骗性样本与偏见人机交互中意外学会欺骗:不诚实行为的新兴错位)【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速递在小宇宙查看该单集文稿

10分钟
99+
8个月前
2025.10.09 | Ming-UniVision统一视觉词表;KV-Cache直连让大模型秒聊

2025.10.09 | Ming-UniVision统一视觉词表;KV-Cache直连让大模型秒聊

HuggingFace 每日AI论文速递

本期的 15 篇论文如下:[00:21] 🔄 Ming-UniVision: Joint Image Understanding and Generation with a Unified Continuous Tokenizer(Ming-UniVision:用统一连续视觉词表打通图像理解与生成)[00:59] 🧠 Cache-to-Cache: Direct Semantic Communication Between Large Language Models(缓存到缓存:大模型间的直接语义通信)[01:32] 🌀 Lumina-DiMOO: An Omni Diffusion Large Language Model for Multi-Modal Generation and Understanding(Lumina-DiMOO:面向多模态生成与理解的离散扩散大模型)[02:07] 🧠 SHANKS: Simultaneous Hearing and Thinking for Spoken Language Models(SHANKS:口语模型边听边想的同步推理框架)[03:06] 🤖 RLinf-VLA: A Unified and Efficient Framework for VLA+RL Training(RLinf-VLA:面向VLA模型强化学习训练的统一高效框架)[04:02] 🎬 MATRIX: Mask Track Alignment for Interaction-aware Video Generation(MATRIX:面向交互感知视频生成的掩码轨迹对齐)[04:51] 🎯 Vibe Checker: Aligning Code Evaluation with Human Preference(Vibe Checker:让代码评估对齐人类偏好)[05:44] 🤖 Multi-Agent Tool-Integrated Policy Optimization(多智能体工具集成策略优化)[06:24] 🧠 CALM Before the STORM: Unlocking Native Reasoning for Optimization Modeling(风暴前夜:解锁优化建模原生推理潜能的轻量化矫正框架)[06:59] ✂ OBS-Diff: Accurate Pruning For Diffusion Models in One-Shot(OBS-Diff:一次性精准剪枝扩散模型)[07:52] 🧠 Artificial Hippocampus Networks for Efficient Long-Context Modeling(面向高效长上下文建模的人工海马网络)[08:30] 🔍 Revisiting Long-context Modeling from Context Denoising Perspective(基于上下文降噪视角的长文本建模再审视)[09:11] 🧠 Pushing on Multilingual Reasoning Models with Language-Mixed Chain-of-Thought(推动多语言推理模型:语言混合思维链新范式)[09:51] 💥 Why Low-Precision Transformer Training Fails: An Analysis on Flash Attention(低精度Transformer训练为何失败:Flash Attention失效机理剖析)[10:37] ⚡ Native Hybrid Attention for Efficient Sequence Modeling(原生混合注意力高效序列建模)【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速递在小宇宙查看该单集文稿

11分钟
99+
8个月前
2025.10.08 | TaTToo用外挂代码干翻大模型;4B小模型32步逼近闭源巨头

2025.10.08 | TaTToo用外挂代码干翻大模型;4B小模型32步逼近闭源巨头

HuggingFace 每日AI论文速递

本期的 15 篇论文如下:[00:24] 📊 TaTToo: Tool-Grounded Thinking PRM for Test-Time Scaling in Tabular Reasoning(TaTToo:面向表格推理测试时扩展的“工具落地思维”过程奖励模型)[00:57] 🔍 Fathom-DeepResearch: Unlocking Long Horizon Information Retrieval and Synthesis for SLMs(Fathom-DeepResearch:解锁小模型长程信息检索与综合的钥匙)[01:39] 🚀 Fast-dLLM v2: Efficient Block-Diffusion LLM(Fast-dLLM v2:高效的块扩散大语言模型)[02:30] 🧑 CoDA: Coding LM via Diffusion Adaptation(CoDA:基于扩散适配的轻量级代码生成模型)[03:01] 🧩 Scaling Code-Assisted Chain-of-Thoughts and Instructions for Model Reasoning(规模化代码辅助思维链与指令以增强模型推理)[03:52] ⚖ ASPO: Asymmetric Importance Sampling Policy Optimization(ASPO:非对称重要性采样策略优化)[04:34] 🔗 Mixing Mechanisms: How Language Models Retrieve Bound Entities In-Context(混合机制:语言模型如何在上下文中检索绑定实体)[05:15] 🧠 AInstein: Assessing the Feasibility of AI-Generated Approaches to Research Problems(AInstein:评估AI生成科研方案可行性的研究框架)[05:51] 🪂 Refusal Falls off a Cliff: How Safety Alignment Fails in Reasoning?(拒绝断崖:安全对齐在推理中为何崩塌)[06:35] 🌍 HoloScene: Simulation-Ready Interactive 3D Worlds from a Single Video(HoloScene:单视频生成可交互3D仿真世界)[07:22] ⚡ TensorBLEU: Vectorized GPU-based BLEU Score Implementation for Per-Sentence In-Training Evaluation(TensorBLEU:面向逐句训练评估的向量化GPU加速BLEU分数实现)[08:09] 🎯 Margin Adaptive DPO: Leveraging Reward Model for Granular Control in Preference Optimization(边缘自适应DPO:利用奖励模型实现偏好优化的粒度控制)[09:00] 🩺 Discrete Diffusion Models with MLLMs for Unified Medical Multimodal Generation(基于多模态大语言模型的离散扩散模型实现统一医学多模态生成)[09:46] 🧠 MixReasoning: Switching Modes to Think(混合推理:动态切换思考模式)[10:20] ⚡ LightCache: Memory-Efficient, Training-Free Acceleration for Video Generation(LightCache:面向视频生成的内存高效、无需训练的加速方法)【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速递在小宇宙查看该单集文稿

11分钟
99+
8个月前
2025.10.07 | 论文秒变演讲;Video-LMM后训练突破

2025.10.07 | 论文秒变演讲;Video-LMM后训练突破

HuggingFace 每日AI论文速递

本期的 15 篇论文如下:[00:21] 🎬 Paper2Video: Automatic Video Generation from Scientific Papers(论文自动生成学术演讲视频)[00:55] 🎬 Video-LMM Post-Training: A Deep Dive into Video Reasoning with Large Multimodal Models(Video-LMM后训练:深入剖析大型多模态模型的视频推理)[01:38] 🎬 VChain: Chain-of-Visual-Thought for Reasoning in Video Generation(VChain:面向视频生成推理的视觉思维链)[02:14] 👻 Imperceptible Jailbreaking against Large Language Models(针对大语言模型的隐形越狱攻击)[02:56] 🌳 MITS: Enhanced Tree Search Reasoning for LLMs via Pointwise Mutual Information(MITS:基于点互信息的树搜索增强大模型推理)[03:30] 🧬 Hybrid Architectures for Language Models: Systematic Analysis and Design Insights(语言模型混合架构:系统剖析与设计洞见)[04:07] 📊 Factuality Matters: When Image Generation and Editing Meet Structured Visuals(事实至关重要:当图像生成与编辑遇上结构化视觉)[04:59] 🔄 Reactive Transformer (RxT) -- Stateful Real-Time Processing for Event-Driven Reactive Language Models(反应式Transformer:事件驱动的实时有状态对话模型)[05:55] ⚖ Judging with Confidence: Calibrating Autoraters to Preference Distributions(置信评判:将自动评分器校准到偏好分布)[06:44] 🎯 Reinforce-Ada: An Adaptive Sampling Framework for Reinforce-Style LLM Training(Reinforce-Ada:面向Reinforce风格LLM训练的自适应采样框架)[07:27] 📏 Optimal Scaling Needs Optimal Norm(最优扩放需要最优范数)[07:51] 🔬 Code4MeV2: a Research-oriented Code-completion Platform(Code4MeV2:面向研究的代码补全平台)[08:31] 🪞 Self-Reflective Generation at Test Time(测试时自反思生成)[09:15] 🔄 SwiReasoning: Switch-Thinking in Latent and Explicit for Pareto-Superior Reasoning LLMs(SwiReasoning:在显式与潜空间之间切换思维,实现帕累托更优的推理大模型)[10:00] 👀 Watch and Learn: Learning to Use Computers from Online Videos(观看与学习:从在线视频中学习使用计算机)【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速递在小宇宙查看该单集文稿

11分钟
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8个月前
2025.10.06 | 15B小模型追平DeepSeek-R1;渐进蒸馏128 token省八成算力

2025.10.06 | 15B小模型追平DeepSeek-R1;渐进蒸馏128 token省八成算力

HuggingFace 每日AI论文速递

本期的 15 篇论文如下:[00:28] 🧠 Apriel-1.5-15b-Thinker(Apriel-1.5-15B-Thinker:以小博大实现前沿多模态推理的15B开源模型)[01:04] 🚀 Efficient Multi-modal Large Language Models via Progressive Consistency Distillation(基于渐进一致性蒸馏的高效多模态大模型)[01:42] 🧩 Compose Your Policies! Improving Diffusion-based or Flow-based Robot Policies via Test-time Distribution-level Composition(组合式策略!利用测试时段分布级组合提升基于扩散或流的机器人策略性能)[02:19] 🪞 Self-Improvement in Multimodal Large Language Models: A Survey(多模态大语言模型自我提升综述)[02:59] 🧬 Your Agent May Misevolve: Emergent Risks in Self-evolving LLM Agents(你的智能体可能误入歧途:自演化大模型智能体中的涌现风险)[03:38] 📊 CoDA: Agentic Systems for Collaborative Data Visualization(CoDA:面向协同数据可视化的智能体系统)[04:21] 🧐 SurveyBench: How Well Can LLM(-Agents) Write Academic Surveys?(SurveyBench:大模型(智能体)写学术综述能有多靠谱?)[05:06] 🔧 REPAIR: Robust Editing via Progressive Adaptive Intervention and Reintegration(REPAIR:渐进式自适应干预与再融合的鲁棒编辑框架)[05:53] 🔍 OrtSAE: Orthogonal Sparse Autoencoders Uncover Atomic Features(OrtSAE:正交稀疏自编码器揭示原子级特征)[06:38] 🔍 FocusAgent: Simple Yet Effective Ways of Trimming the Large Context of Web Agents(FocusAgent:轻量级检索器为网页智能体精简冗长上下文的简易高效方案)[07:14] 🎯 Improving GUI Grounding with Explicit Position-to-Coordinate Mapping(基于显式位置-坐标映射的GUI定位改进方法)[08:05] 📏 LSPO: Length-aware Dynamic Sampling for Policy Optimization in LLM Reasoning(LSPO:面向大模型推理的基于长度感知的动态采样策略优化)[08:45] 🤖 WAInjectBench: Benchmarking Prompt Injection Detections for Web Agents(WAInjectBench:面向网页智能体的提示注入攻防基准评测)[09:19] 🍱 Free Lunch Alignment of Text-to-Image Diffusion Models without Preference Image Pairs(无需配对偏好图像即可免费对齐文本到图像扩散模型)[09:54] 🎯 LEAML: Label-Efficient Adaptation to Out-of-Distribution Visual Tasks for Multimodal Large Language Models(LEAML:面向多模态大模型的标签高效分布外视觉任务适配)【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速递在小宇宙查看该单集文稿

11分钟
99+
8个月前

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