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Categories
  • All entries85,188
  • Agents7,322
  • Applications5,231
  • Concepts5
  • Hardware1,770
  • Industry6,109
  • Local Ai4,762
  • Model Releases22,797
  • Research19,333
  • Safety12,893
  • Syntheses17
  • Tools1,670
  • Tutorials3,279

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85,188Total entries
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GridTimelineEvolution
60,292 results
Research

Intrinsic Gradient Suppression for Label-Noise Prompt Tuning in Vision-Language Models

DGX agent

arXiv:2605.00591v1 Announce Type: new Abstract: Contrastive vision-language models like CLIP exhibit remarkable zero-shot generalization. However, prompt tuning remains highly sensitive to label noise

researcharxiv-cs-cv
4 May 2026
DGX agent

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Model Releases

Introducing WARM-VR: Benchmark Dataset for Multimodal Wearable Affect Recognition in Virtual Reality

DGX agent

arXiv:2605.00184v1 Announce Type: new Abstract: With the growing integration of human-computer interaction into everyday life, advances in machine learning have enabled systems to better perceive and

model-releasesarxiv-cs-lg
4 May 2026
Research

Is Textual Similarity Invariant under Machine Translation? Evidence Based on the Political Manifesto Corpus

DGX agent

arXiv:2605.00618v1 Announce Type: new Abstract: We investigate the extent to which cosine similarity between paragraph embeddings is invariant under machine translation, using the Manifesto Corpus of

researcharxiv-cs-cl
4 May 2026
Research

It's Never Too Late: Noise Optimization for Collapse Recovery in Trained Diffusion Models

DGX agent

arXiv:2601.00090v2 Announce Type: replace Abstract: Contemporary text-to-image models exhibit a surprising degree of mode collapse, as can be seen when sampling several images given the same text prom

researcharxiv-cs-cv
4 May 2026
Model Releases

Jailbreaking Vision-Language Models Through the Visual Modality

DGX agent

arXiv:2605.00583v1 Announce Type: new Abstract: The visual modality of vision-language models (VLMs) is an underexplored attack surface for bypassing safety alignment. We introduce four jailbreak atta

model-releasesarxiv-cs-cv
4 May 2026
Model Releases

Jailbroken Frontier Models Retain Their Capabilities

DGX agent

arXiv:2605.00267v1 Announce Type: new Abstract: As language model safeguards become more robust, attackers are pushed toward developing increasingly complex jailbreaks. Prior work has found that this

model-releasesarxiv-cs-lg
4 May 2026
Model Releases

Knowing When to Defer: Selective Prediction for Responsible Knowledge Tracing

DGX agent

arXiv:2509.21514v3 Announce Type: replace-cross Abstract: Research on Knowledge Tracing (KT) models traditionally focuses on improving predictive accuracy. However, responsible real-world deployment r

model-releasesarxiv-cs-cl
4 May 2026
Research

Knowing when to trust machine-learned interatomic potentials

DGX agent

arXiv:2605.00640v1 Announce Type: new Abstract: Prevailing machine-learned interatomic potential (MLIP) uncertainty-quantification methods rely on ensembles of independently trained backbones. These m

researcharxiv-cs-lg
4 May 2026
Research

Koopman-Assisted Reinforcement Learning

DGX agent

arXiv:2403.02290v2 Announce Type: replace-cross Abstract: The Bellman equation and its continuous form, the Hamilton-Jacobi-Bellman equation, are ubiquitous in reinforcement learning and control theor

researcharxiv-cs-lg
4 May 2026
Applications

LambdaRankIC: Directly Optimizing Rank IC for Financial Prediction

DGX agent

arXiv:2605.00501v1 Announce Type: new Abstract: In financial predictions, the performance of machine learning models is often assessed by Rank IC, which is the Spearman rank correlation between the mo

applicationsarxiv-cs-lg
4 May 2026
Research

LandSegmenter: Towards a Flexible Foundation Model for Land Use and Land Cover Mapping

DGX agent

arXiv:2511.08156v2 Announce Type: replace Abstract: Land Use and Land Cover (LULC) mapping is a fundamental task in Earth Observation (EO). However, current LULC models are typically developed for a s

researcharxiv-cs-cv
4 May 2026
Applications

Language-free Experience at Expo 2025 Osaka

DGX agent

arXiv:2605.00373v1 Announce Type: new Abstract: In line with the Global Communication Plan 2025, we have pursued the development of multilingual translation technologies to realize a language-barrier-

applicationsarxiv-cs-cl
4 May 2026
Applications

Language Models Struggle to Use Representations Learned In-Context

DGX agent

arXiv:2602.04212v2 Announce Type: replace Abstract: Though large language models (LLMs) have enabled great success across a wide variety of tasks, they still appear to fall short of one of the loftier

applicationsarxiv-cs-cl
4 May 2026
Research

LASE: Language-Adversarial Speaker Encoding for Indic Cross-Script Identity Preservation

DGX agent

arXiv:2605.00777v1 Announce Type: cross Abstract: A speaker encoder used in multilingual voice cloning should treat the same speaker identically regardless of which script the audio was uttered in. Of

researcharxiv-cs-cl
4 May 2026
Research

Last-Iterate Analyses of FTRL with the 1/2-Tsallis Entropy in Stochastic Bandits

DGX agent

arXiv:2510.22819v2 Announce Type: replace Abstract: The convergence analysis of online learning algorithms is central to machine learning theory, where the last-iterate convergence is particularly imp

researcharxiv-cs-lg
4 May 2026
Safety

Last-Iterate Convergence of General Parameterized Policies in Constrained MDPs

DGX agent

arXiv:2408.11513v2 Announce Type: replace Abstract: This paper focuses on learning a Constrained Markov Decision Process (CMDP) via general parameterized policies. We propose a Primal-Dual based Regul

safetyarxiv-cs-lg
4 May 2026
Tutorials

Latent Generative Modeling of Random Fields from Limited Training Data

DGX agent

arXiv:2505.13007v2 Announce Type: replace Abstract: The ability to accurately model random fields plays a critical role in science and engineering for problems involving uncertain, spatially-varying q

tutorialsarxiv-cs-lg
4 May 2026
Safety

Learn where to Click from Yourself: On-Policy Self-Distillation for GUI Grounding

DGX agent

arXiv:2605.00642v1 Announce Type: cross Abstract: Graphical User Interface (GUI) grounding maps natural language instructions to the visual coordinates of target elements and serves as a core capabili

safetyarxiv-cs-cv
4 May 2026
Safety

Learning Coarse-to-Fine Osteoarthritis Representations under Noisy Hierarchical Labels

DGX agent

arXiv:2605.00718v1 Announce Type: new Abstract: Knee osteoarthritis (OA) assessment involves a natural but often underused label hierarchy: a coarse binary OA decision and a fine-grained Kellgren--Law

safetyarxiv-cs-cv
4 May 2026
Tutorials

Learning Fingerprints for Medical Time Series with Redundancy-Constrained Information Maximization

DGX agent

arXiv:2605.00130v1 Announce Type: new Abstract: Learning meaningful representations from medical time series (MedTS) such as ECG or EEG signals is a critical challenge. These signals are often high-di

tutorialsarxiv-cs-lg
4 May 2026
Model Releases

Learning from Compressed CT: Feature Attention Style Transfer and Structured Factorized Projections for Resource-Efficient Medical Image Analysis

DGX agent

arXiv:2605.00448v1 Announce Type: new Abstract: The deployment of artificial intelligence in medical imaging is hindered by high computational complexity and resource-intensive processing of volumetri

model-releasesarxiv-cs-cv
4 May 2026
Model Releases

Learning from Supervision with Semantic and Episodic Memory: A Reflective Approach to Agent Adaptation

DGX agent

arXiv:2510.19897v2 Announce Type: replace Abstract: We investigate how agents built on pretrained large language models (LLMs) can learn target classification functions from labeled examples without p

model-releasesarxiv-cs-cl
4 May 2026
Model Releases

Learning from the Unseen: Generative Data Augmentation for Geometric-Semantic Accident Anticipation

DGX agent

arXiv:2605.00051v1 Announce Type: new Abstract: Anticipating traffic accidents is a critical yet unresolved problem for autonomous driving, hindered by the inherent complexity of modeling interactions

model-releasesarxiv-cs-cv
4 May 2026
Safety

Learning How and What to Memorize: Cognition-Inspired Two-Stage Optimization for Evolving Memory

DGX agent

arXiv:2605.00702v1 Announce Type: new Abstract: Large language model (LLM) agents require long-term user memory for consistent personalization, but limited context windows hinder tracking evolving pre

safetyarxiv-cs-cl
4 May 2026
Model Releases

Learning Locally, Revising Globally: Global Reviser for Federated Learning with Noisy Labels

DGX agent

arXiv:2412.00452v2 Announce Type: replace-cross Abstract: Conventioanl federated learning (FL) heavily depends on high-quality labels, which are often impractical in the real world, leading to the fed

model-releasesarxiv-cs-cv
4 May 2026
Research

Learning Multimodal Energy-Based Model with Multimodal Variational Auto-Encoder via MCMC Revision

DGX agent

arXiv:2605.00644v1 Announce Type: new Abstract: Energy-based models (EBMs) are a flexible class of deep generative models and are well-suited to capture complex dependencies in multimodal data. Howeve

researcharxiv-cs-lg
4 May 2026
Safety

Learning physically grounded traffic accident reconstruction from public accident reports

DGX agent

arXiv:2605.00050v1 Announce Type: cross Abstract: Traffic accidents are routinely documented in textual reports, yet physically grounded accident reconstruction remains difficult because detailed scen

safetyarxiv-cs-cv
4 May 2026
Local Ai

Learning the Helmholtz equation operator with DeepONet for non-parametric 2D geometries

DGX agent

arXiv:2605.00760v1 Announce Type: new Abstract: This paper deals with solving the 2D Helmholtz equation on non-parametric domains, leveraging a physics-informed neural operator network based on the De

local-aiarxiv-cs-lg
4 May 2026
Safety

Learning while Deploying: Fleet-Scale Reinforcement Learning for Generalist Robot Policies

DGX agent

arXiv:2605.00416v1 Announce Type: new Abstract: Generalist robot policies increasingly benefit from large-scale pretraining, but offline data alone is insufficient for robust real-world deployment. De

safetyarxiv-cs-ro
4 May 2026
Research

Let ViT Speak: Generative Language-Image Pre-training

DGX agent

arXiv:2605.00809v1 Announce Type: new Abstract: In this paper, we present extbf{Gen}erative extbf{L}anguage-extbf{I}mage extbf{P}re-training (GenLIP), a minimalist generative pretraining framework for

researcharxiv-cs-cv
4 May 2026
Research

Leveraging Vision-Language Models as Weak Annotators in Active Learning

DGX agent

arXiv:2605.00480v1 Announce Type: new Abstract: Active learning aims to reduce annotation cost by selectively querying informative samples for supervision under a limited labeling budget. In this work

researcharxiv-cs-cv
4 May 2026
Model Releases

Lightweight Domain Adaptation of a Large Language Model for Legal Assistance in the Indian Context

DGX agent

arXiv:2505.22003v2 Announce Type: replace Abstract: In India, access to legal assistance for the general public has been observed to have a critical gap, as many citizens are not able to take full adv

model-releasesarxiv-cs-cl
4 May 2026
Applications

LIMSSR: LLM-Driven Sequence-to-Score Reasoning under Training-Time Incomplete Multimodal Observations

DGX agent

arXiv:2605.00434v1 Announce Type: new Abstract: Real-world multimodal learning is often hindered by missing modalities. While Incomplete Multimodal Learning (IML) has gained traction, existing methods

applicationsarxiv-cs-cv
4 May 2026
Safety

Linking Behaviour and Perception to Evaluate Meaningful Human Control over Partially Automated Driving

DGX agent

arXiv:2605.00556v1 Announce Type: cross Abstract: Partial driving automation creates a tension: drivers remain legally responsible for vehicle behaviour, yet their active control is significantly redu

safetyarxiv-cs-ro
4 May 2026
Research

LLM DNA: Tracing Model Evolution via Functional Representations

DGX agent

arXiv:2509.24496v3 Announce Type: replace Abstract: The explosive growth of large language models (LLMs) has created a vast but opaque landscape: millions of models exist, yet their evolutionary relat

researcharxiv-cs-lg
4 May 2026
Model Releases

LLM-Oriented Information Retrieval: A Denoising-First Perspective

DGX agent

arXiv:2605.00505v1 Announce Type: cross Abstract: Modern information retrieval (IR) is no longer consumed primarily by humans but increasingly by large language models (LLMs) via retrieval-augmented g

model-releasesarxiv-cs-cl
4 May 2026
Agents

Long-Horizon Model-Based Offline Reinforcement Learning Without Explicit Conservatism

DGX agent

arXiv:2512.04341v3 Announce Type: replace Abstract: Popular offline reinforcement learning (RL) methods rely on explicit conservatism, penalizing out-of-dataset actions or restricting rollout horizons

agentsarxiv-cs-lg
4 May 2026
Research

Lost in State Space: Probing Frozen Mamba Representations

DGX agent

arXiv:2605.00253v1 Announce Type: new Abstract: Mamba's recurrent state h_t is, by construction, a compressed summary of every token seen so far. This raises a tempting hypothesis: if we extract token

researcharxiv-cs-cl
4 May 2026
Local Ai

Lucid-XR: An Extended-Reality Data Engine for Robotic Manipulation

DGX agent

arXiv:2605.00244v1 Announce Type: cross Abstract: We introduce Lucid-XR, a generative data engine for creating diverse and realistic-looking multi-modal data to train real-world robotic systems. At th

local-aiarxiv-cs-cv
4 May 2026
Model Releases

M-CaStLe: Uncovering Local Causal Structures in Multivariate Space-Time Gridded Data

DGX agent

arXiv:2605.00398v1 Announce Type: new Abstract: Causal graph discovery for space-time systems is challenging in high-dimensional gridded data, which often has many more grid cells than temporal observ

model-releasesarxiv-cs-lg
4 May 2026
Tutorials

MAEPose: Self-Supervised Spatiotemporal Learning for Human Pose Estimation on mmWave Video

DGX agent

arXiv:2605.00242v1 Announce Type: new Abstract: Millimetre-wave (mmWave) radar offers a more privacy-preserving alternative to RGB-based human pose estimation. However, existing methods typically rely

tutorialsarxiv-cs-cv
4 May 2026
Model Releases

Make Your LVLM KV Cache More Lightweight

DGX agent

arXiv:2605.00789v1 Announce Type: new Abstract: Key-Value (KV) cache has become a de facto component of modern Large Vision-Language Models (LVLMs) for inference. While it enhances decoding efficiency

model-releasesarxiv-cs-cv
4 May 2026
Research

Making Every Verified Token Count: Adaptive Verification for MoE Speculative Decoding

DGX agent

arXiv:2605.00342v1 Announce Type: new Abstract: Tree-based speculative decoding accelerates autoregressive generation by verifying multiple draft candidates in parallel, but this advantage weakens for

researcharxiv-cs-cl
4 May 2026
Agents

Map2World: Segment Map Conditioned Text to 3D World Generation

DGX agent

arXiv:2605.00781v1 Announce Type: new Abstract: 3D world generation is essential for applications such as immersive content creation or autonomous driving simulation. Recent advances in 3D world gener

agentsarxiv-cs-cv
4 May 2026
Research

Matroid Algorithms Under Size-Sensitive Independence Oracles

DGX agent

arXiv:2605.00201v1 Announce Type: cross Abstract: The standard oracle model for matroid algorithms assumes that each independence query can be answered in constant time, regardless of the size of the

researcharxiv-cs-lg
4 May 2026
Research

Mean-field limit from general mixtures of experts to quantum neural networks

DGX agent

arXiv:2501.14660v2 Announce Type: replace-cross Abstract: In this work, we study the asymptotic behavior of Mixture of Experts (MoE) trained via gradient flow on supervised learning problems. Our main

researcharxiv-cs-lg
4 May 2026
Agents

Memory in the LLM Era: Modular Architectures and Strategies in a Unified Framework

DGX agent

arXiv:2604.01707v2 Announce Type: replace Abstract: Memory emerges as the core module in the large language model (LLM)-based agents for long-horizon complex tasks (e.g., multi-turn dialogue, game pla

agentsarxiv-cs-cl
4 May 2026
Model Releases

MemoryBench: A Benchmark for Memory and Continual Learning in LLM Systems

DGX agent

arXiv:2510.17281v5 Announce Type: replace Abstract: Scaling up data, parameters, and test-time computation has been the mainstream methods to improve LLM systems (LLMsys), but their upper bounds are a

model-releasesarxiv-cs-lg
4 May 2026
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