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  • All entries88,343
  • Agents7,552
  • Applications5,409
  • Concepts5
  • Hardware1,835
  • Industry6,164
  • Local Ai4,928
  • Model Releases23,861
  • Research20,124
  • Safety13,369
  • Syntheses17
  • Tools1,677
  • Tutorials3,402

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88,343Total entries
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GridTimelineEvolution
62,897 results
Model Releases

Residual Drift Dominates Contradiction in Multi-Turn Constraint Reasoning

DGX agent

arXiv:2605.23940v1 Announce Type: new Abstract: How do multi-turn reasoning systems fail? The expected answer is logical contradiction, in which the system's maintained state becomes unsatisfiable. We

model-releasesarxiv-cs-ai
26 May 2026
DGX agent

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Model Releases

Rethinking Continual Anomaly Detection on the Edge: Benchmarking Under Realistic Industrial Conditions

DGX agent

arXiv:2605.24251v1 Announce Type: new Abstract: Continual anomaly detection (CAD) addresses the need for industrial inspection systems to adapt to evolving production conditions, yet existing methods

model-releasesarxiv-cs-lg
26 May 2026
Safety

Rethinking Feature Alignment in Generalist Graph Anomaly Detection: A Relational Fingerprint-based Approach

DGX agent

arXiv:2605.25429v1 Announce Type: new Abstract: Generalist graph anomaly detection (GAD) aims to detect anomalies on unseen graphs without graph-specific retraining. Nevertheless, existing approaches

safetyarxiv-cs-lg
26 May 2026
Research

Rethinking Federated Unlearning via the Lens of Memorization

DGX agent

arXiv:2605.24545v1 Announce Type: cross Abstract: Federated learning (FL) increasingly needs machine unlearning to comply with privacy regulations. However, existing federated unlearning approaches ma

researcharxiv-cs-ai
26 May 2026
Model Releases

Rethinking Weak Supervision in Anomaly Detection: A Comprehensive Benchmark

DGX agent

arXiv:2605.26068v1 Announce Type: cross Abstract: Weakly supervised anomaly detection (WSAD) has developed in three primary directions: incomplete, inexact, and inaccurate supervision. However, these

model-releasesarxiv-cs-ai
26 May 2026
Agents

Retrieval as Reasoning: Self-Evolving Agent-Native Retrieval via LLM-Wiki

DGX agent

arXiv:2605.25480v1 Announce Type: new Abstract: LLM agents require retrieval to behave less like one-shot context fetching and more like reasoning: searching, reading, traversing, and deciding when ev

agentsarxiv-cs-cl
26 May 2026
Local Ai

Retrieval-Augmented Detection of Potentially Abusive Clauses in Chilean Terms of Service

DGX agent

arXiv:2605.26019v1 Announce Type: cross Abstract: Online Terms of Service often function as contracts of adhesion, creating asymmetries that may expose consumers to potentially abusive clauses. In Chi

local-aiarxiv-cs-ai
26 May 2026
Research

Retrieved In-Context Principles from Previous Mistakes

DGX agent

arXiv:2407.05682v2 Announce Type: replace Abstract: In-context learning (ICL) has been instrumental in adapting Large Language Models (LLMs) to downstream tasks using correct input-output examples. Re

researcharxiv-cs-cl
26 May 2026
Model Releases

Retrying vs Resampling in AI Control

DGX agent

arXiv:2605.26047v1 Announce Type: new Abstract: AI coding scaffolds like Claude Code and Codex use extit{retrying}: blocking actions flagged as risky and continuing the trajectory. We study retrying f

model-releasesarxiv-cs-ai
26 May 2026
Research

Revisiting Pre-Propagation GNNs: Robust Diffusion Operators and Hidden-State Re-Propagation

DGX agent

arXiv:2605.25111v1 Announce Type: new Abstract: Pre-propagation graph neural networks (PPGNNs) decouple node feature propagation from transformation: graph diffusion is performed once as preprocessing

researcharxiv-cs-lg
26 May 2026
Model Releases

Reward-free Alignment for Conflicting Objectives

DGX agent

arXiv:2602.02495v3 Announce Type: replace-cross Abstract: Direct alignment methods are increasingly used to align large language models (LLMs) with human preferences. However, many real-world alignmen

model-releasesarxiv-cs-ai
26 May 2026
Agents

Reward Shaping and Action Masking for Compositional Tasks using Behavior Trees and LLMs

DGX agent

arXiv:2605.05795v2 Announce Type: replace Abstract: Decomposing complex tasks into a sequence of simpler subtasks can improve learning efficiency for an autonomous agent. Reinforcement learning (RL) c

agentsarxiv-cs-lg
26 May 2026
Safety

Rewarding Structural Conformance of Reasoning using Process Mining

DGX agent

arXiv:2510.25065v3 Announce Type: replace Abstract: Recent advances in sparse reward policy gradient methods have enabled effective reinforcement learning (RL)-based language model post-training. Howe

safetyarxiv-cs-ai
26 May 2026
Research

Riemannian Archetypal Analysis: Interpretable non-linear data analysis on deformed star distributions

DGX agent

arXiv:2605.24113v1 Announce Type: new Abstract: Classical archetypal analysis is appealing for its interpretability, but its linear geometry can limit performance on data with strongly non-linear stru

researcharxiv-cs-lg
26 May 2026
Model Releases

Riemannian-Manifold Steering: Geometry-Aware Generative Autoencoders for Label-Free Steering

DGX agent

arXiv:2605.24942v1 Announce Type: cross Abstract: Steering a language model - intervening on its internal activations to change downstream behaviour - has recently expanded beyond linear interpolation

model-releasesarxiv-cs-ai
26 May 2026
Safety

Right-Sizing Communication and Recommendation Set Size in AI-Assisted Search

DGX agent

arXiv:2605.23944v1 Announce Type: new Abstract: We model the interaction between a user and an AI driven recommendation system. The user initiates the process by conveying preference information throu

safetyarxiv-cs-ai
26 May 2026
Safety

RiskBridge: Turning CVEs into Business-Aligned Patch Priorities

DGX agent

arXiv:2601.06201v2 Announce Type: replace-cross Abstract: Enterprises are confronted with an unprecedented escalation in cybersecurity vulnerabilities, with thousands of new CVEs disclosed each month.

safetyarxiv-cs-ai
26 May 2026
Model Releases

RL with Learnable Textual Feedback: A Bilevel Approach

DGX agent

arXiv:2605.24547v1 Announce Type: new Abstract: Reinforcement learning with verifiable rewards can improve LLM reasoning, but learning remains sample-inefficient when terminal rewards are sparse. This

model-releasesarxiv-cs-lg
26 May 2026
Applications

RoboHitch: Learning Visual Affordance from Disordered Keypoints for Hitch Knots Tying

DGX agent

arXiv:2605.24394v1 Announce Type: new Abstract: Robotic manipulation of deformable linear objects (DLOs) presents significant challenges due to complex dynamics and frequent self-occlusions. Existing

applicationsarxiv-cs-ro
26 May 2026
Model Releases

RoboManipBaselines: A Unified Framework for Imitation Learning in Robotic Manipulation across Real and Simulation Environments

DGX agent

arXiv:2509.17057v3 Announce Type: replace Abstract: We present RoboManipBaselines, an open-source software framework for imitation learning research in robotic manipulation. The framework supports the

model-releasesarxiv-cs-ro
26 May 2026
Model Releases

Robust Fuzzy Multi-view Learning under View Conflict

DGX agent

arXiv:2605.24475v1 Announce Type: cross Abstract: Trusted multi-view classification aims to deliver reliable fusion for accurate predictions and has recently attracted substantial attention in both ac

model-releasesarxiv-cs-ai
26 May 2026
Research

Robust inference using density-powered Stein operators

DGX agent

arXiv:2511.03963v2 Announce Type: replace-cross Abstract: We introduce a density-power weighted variant for the Stein operator, called the gamma-Stein operator. This is a novel class of operators deri

researcharxiv-cs-lg
26 May 2026
Research

ROC Analysis for Evaluating Translation Quality Estimation Systems

DGX agent

arXiv:2605.24721v1 Announce Type: new Abstract: The increasing use of automated translation quality estimation (QE) systems calls for practical, decision-oriented methods for evaluating their performa

researcharxiv-cs-cl
26 May 2026
Model Releases

RotMoLE: Enhancing Mixture of Low-Rank Experts through Rotational Gating Mechanism

DGX agent

arXiv:2605.25565v1 Announce Type: cross Abstract: While Large Language Models (LLMs) are commonly fine-tuned to handle domain-specific tasks before being applied to vertical applications, adapting the

model-releasesarxiv-cs-cl
26 May 2026
Safety

RouteScan: A Non-Intrusive Approach to Auditing MoE LLMs Safety via Expert Routing Telemetry

DGX agent

arXiv:2605.24817v1 Announce Type: cross Abstract: Mixture-of-Experts (MoE) architectures have become an increasingly important paradigm for scaling Large Language Models (LLMs). As MoE models are incr

safetyarxiv-cs-cl
26 May 2026
Research

Routing by Analogy: kNN-Augmented Expert Assignment for Mixture-of-Experts

DGX agent

arXiv:2601.02144v2 Announce Type: replace-cross Abstract: Mixture-of-Experts (MoE) architectures scale large language models efficiently by employing a parametric ``router'' to dispatch tokens to a sp

researcharxiv-cs-ai
26 May 2026
Research

Rubato: Transcribing Piano Music with Timestamps

DGX agent

arXiv:2605.24291v1 Announce Type: cross Abstract: We consider the conversion of musical recordings into human-readable sheet music annotated with timestamps. Such output lets a listener clearly visual

researcharxiv-cs-cl
26 May 2026
Hardware

SA-Kura: An Energy-Efficient Systolic Array Accelerator for Locally-Coupled Kuramoto Drift in Diffusion Sampling

DGX agent

arXiv:2605.24016v1 Announce Type: cross Abstract: Diffusion inference remains costly for edge deployment, yet existing accelerators focus almost exclusively on score networks because standard drift is

hardwarearxiv-cs-ai
26 May 2026
Research

SAE-FD: Sparse Autoencoder Feature Distillation for Continual Learning of Large Language Models

DGX agent

arXiv:2605.25525v1 Announce Type: new Abstract: Continual learning enables large language models to adapt to evolving tasks without retraining from scratch, yet catastrophic forgetting remains a centr

researcharxiv-cs-lg
26 May 2026
Model Releases

SafeCtrl-RL: Inference-Time Adaptive Behaviour Control for LLM Dialogue via RL-Driven Prompt Optimisation

DGX agent

arXiv:2605.25984v1 Announce Type: cross Abstract: Ensuring safe and contextually appropriate behaviour in Large Language Models (LLMs) remains a critical challenge for real-world deployment. We presen

model-releasesarxiv-cs-ai
26 May 2026
Safety

Safety-Critical Whole-Body Control for Humanoid Robots via Input-to-State Safe Control Barrier Functions

DGX agent

arXiv:2605.25546v1 Announce Type: new Abstract: Safety-critical control is essential for humanoid robots operating in complex human-centered environments, where physical safety constraints such as joi

safetyarxiv-cs-ro
26 May 2026
Model Releases

Safety Generalization Under Distribution Shift in Safe Reinforcement Learning: A Diabetes Testbed

DGX agent

arXiv:2601.21094v2 Announce Type: replace-cross Abstract: Safe Reinforcement Learning (RL) algorithms are typically evaluated under fixed training conditions. We investigate whether training-time safe

model-releasesarxiv-cs-ai
26 May 2026
Safety

Safety-Oriented Routing Analysis of Mixtral MoE Under Benign and Harmful Prompts

DGX agent

arXiv:2605.24270v1 Announce Type: new Abstract: Sparse mixture-of-experts (MoE) language models activate only a small subset of parameters for each token, making router behavior a central part of mode

safetyarxiv-cs-ai
26 May 2026
Model Releases

SafetyRepro: Configuration-Conditional Rank Instability on Alignment Benchmarks

DGX agent

arXiv:2605.25492v1 Announce Type: new Abstract: Pairwise model comparisons drawn from foundation-model benchmarks ('A is safer than B') are read as quantitative verdicts but hinge on harness choices b

model-releasesarxiv-cs-lg
26 May 2026
Agents

SAM: State-Adaptive Memory for Long-Horizon Reasoning Agent

DGX agent

arXiv:2605.24468v1 Announce Type: new Abstract: Long-horizon agentic reasoning requires large language models to act over long interaction histories containing thoughts, tool calls, observations, and

agentsarxiv-cs-ai
26 May 2026
Research

SAMark: A Self-Anchored Text Watermarking with Paragraph-Level Paraphrase Robustness

DGX agent

arXiv:2605.25796v1 Announce Type: cross Abstract: Semantic-level watermarking (SWM) improves robustness against text modifications by treating sentences as the basic unit. However, robustness to parag

researcharxiv-cs-ai
26 May 2026
Applications

Saturating Scaling Laws for Equational Discovery: A Phenomenology of Growth Dynamics in Three Toy Substrates with Two Real-World Replications

DGX agent

arXiv:2605.23983v1 Announce Type: new Abstract: We investigate growth dynamics in deterministic equational discovery substrates. Across three toy domains (arithmetic, boolean, higher-order list; n=592

applicationsarxiv-cs-ai
26 May 2026
Research

Scale When Needed: Adaptive Neuron-level Mixed Precision Quantization Aware Training

DGX agent

arXiv:2605.25054v1 Announce Type: cross Abstract: Deploying deep neural networks on resource-constrained 6G edge devices demands aggressive compression with minimal accuracy loss. Quantization-Aware T

researcharxiv-cs-ai
26 May 2026
Model Releases

ScaleAcross Explorer: Exploring Communication Optimization for Scale-Across AI Model Training

DGX agent

arXiv:2605.24326v1 Announce Type: cross Abstract: The rapid scaling of large language model training requires distributing GPU resources across multiple data center buildings and regions. We refer to

model-releasesarxiv-cs-ai
26 May 2026
Research

Scaling Natural-Language Graph-Based Test Time Compute for Automated Theorem Proving

DGX agent

arXiv:2503.11657v3 Announce Type: replace Abstract: Large language models have demonstrated remarkable capabilities in natural language processing tasks requiring multi-step logical reasoning capabili

researcharxiv-cs-cl
26 May 2026
Agents

Scaling up Energy-Aware Multi-Agent Reinforcement Learning for Mission-Oriented Drone Networks with Individual Reward

DGX agent

arXiv:2605.24992v1 Announce Type: cross Abstract: Multi-agent reinforcement learning (MARL) has shown wide applicability in collaborative systems such as autonomous driving and smart cities for its ab

agentsarxiv-cs-ai
26 May 2026
Research

Scheduling LLM Inference with Uncertainty-Aware Output Length Predictions

DGX agent

arXiv:2604.00499v2 Announce Type: replace Abstract: To schedule LLM inference, the extit{shortest job first} (SJF) principle is favorable by prioritizing requests with short output lengths to avoid he

researcharxiv-cs-lg
26 May 2026
Model Releases

Schema-Grounded LLM Extraction for FHIR Patient Digital Twins

DGX agent

arXiv:2601.05847v2 Announce Type: replace Abstract: We revisit the problem of constructing interoperable patient digital twins from unstructured electronic health records (EHRs) and argue that the tas

model-releasesarxiv-cs-cl
26 May 2026
Safety

SEAL: Synergistic Co-Evolution of Agents and Learning Environments

DGX agent

arXiv:2605.24426v1 Announce Type: new Abstract: Large Language Model (LLM) agents are increasingly improved through interaction, yet most self-evolution methods adapt either the policy or the learning

safetyarxiv-cs-cl
26 May 2026
Model Releases

Second Guess: Detecting Uncertainty Through Abstention and Answer Stability in Small Language Models

DGX agent

arXiv:2605.25394v1 Announce Type: new Abstract: Large language models often generate confident but incorrect answers rather than abstaining when uncertain. This problem is particularly acute for small

model-releasesarxiv-cs-ai
26 May 2026
Model Releases

Security in the Fine-Tuning Lifecycle of Large Language Models: Threats, Defenses,Evaluation, and Future Directions

DGX agent

arXiv:2605.25073v1 Announce Type: cross Abstract: Background: Fine-tuning is central to adapting pre-trained Large Language Models (LLMs) to downstream tasks, but its reliance on training data, parame

model-releasesarxiv-cs-ai
26 May 2026
Agents

Security of OpenClaw Agents: Fundamentals, Attacks, and Countermeasures

DGX agent

arXiv:2605.25435v1 Announce Type: new Abstract: The rapid evolution of large language model (LLM)-driven autonomous agents has given rise to OpenClaw, a new class of open-source agent frameworks that

agentsarxiv-cs-ai
26 May 2026
Research

SEED: Semi-supervised Continual MalwarE Detection for Tackling ConcEpt Drift on a BuDget

DGX agent

arXiv:2605.24903v1 Announce Type: cross Abstract: Machine learning based malware detectors become obsolete over time due to concept drift in benign and malware applications. Recent methods rely on ful

researcharxiv-cs-lg
26 May 2026
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