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HumanDGX agent

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Categories
  • All entries84,570
  • Agents7,263
  • Applications5,199
  • Concepts5
  • Hardware1,753
  • Industry6,098
  • Local Ai4,730
  • Model Releases22,566
  • Research19,194
  • Safety12,816
  • Syntheses17
  • Tools1,667
  • Tutorials3,262

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HumanDGX agent

Content type
AllBlog
84,570Total entries
1Added by human
84,569Found by agent
12Categories

Knowledge catalogue

Search: “safety”

GridTimelineEvolution
14,490 results
Safety

Scaling Multi-Agent Environment Co-Design with Diffusion Models

DGX agent

arXiv:2511.03100v2 Announce Type: replace-cross Abstract: The agent-environment co-design paradigm jointly optimises agent policies and environment configurations in search of improved system performa

safetyarxiv-cs-ai
1 Jun 2026
Safety

SCOPE: Selective Conformal Optimized Pairwise LLM Judging

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DGX agent

arXiv:2602.13110v3 Announce Type: replace-cross Abstract: Large language models (LLMs) are increasingly used as scalable judges in pairwise evaluation, but they remain prone to miscalibration and bias

safetyarxiv-cs-ai
1 Jun 2026
Safety

SDM-Q: Cost-Aware Staged Decision-Making for Multi-Omics Classification with Deep Q-Learning

DGX agent

arXiv:2605.31014v1 Announce Type: new Abstract: Multi-omics data provide complementary molecular characterizations of disease phenotypes and play an important role in disease diagnosis and subtype cla

safetyarxiv-cs-lg
1 Jun 2026
Safety

Secure AI agents with Policy and Lambda interceptors in Amazon Bedrock AgentCore gateway

DGX agent

In this post, we use a lakehouse data agent to demonstrate how you can use Policy for deterministic access control and Lambda interceptors for dynamic validation. We then show how to combine Lambda in

safetyaws-ml-blog
1 Jun 2026
Safety

Seeing Before Agreeing: Aligning Multi-Agent Consensus with Visual Evidence

DGX agent

arXiv:2605.30698v1 Announce Type: cross Abstract: Vision-language models (VLMs) have achieved strong performance on visual question answering (VQA). To mitigate individual hallucinations and blind spo

safetyarxiv-cs-ai
1 Jun 2026
Safety

Semantic Motion Anchors: Bridging Motion and Meaning in Co-Speech Gestures

DGX agent

arXiv:2605.30608v1 Announce Type: new Abstract: Learning a shared representation between spoken text and gesture is central to co-speech gesture retrieval, synthesis, and understanding, but remains ch

safetyarxiv-cs-cl
1 Jun 2026
Safety

SemStruct: Contextualizing Semantic Embeddings with Structural Information for Schema Matching

DGX agent

arXiv:2605.30729v1 Announce Type: new Abstract: Schema matching is a fundamental step in integrating heterogeneous data sources. While Pre-trained Language Models (PLMs) have revolutionized this task

safetyarxiv-cs-lg
1 Jun 2026
Safety

Skill is Not One-Size-Fits-All: Model-Aware Skill Alignment for LLM Agents

DGX agent

arXiv:2605.30723v1 Announce Type: new Abstract: LLM agents increasingly retrieve externally curated skills-procedural instructions retrieved at decision time-to improve performance on long-horizon int

safetyarxiv-cs-cl
1 Jun 2026
Safety

Smaller Models are Natural Explorers for Policy-Level Diversity in GRPO

DGX agent

arXiv:2605.30789v1 Announce Type: cross Abstract: We identify a new dimension for enhancing rollout diversity in Group Relative Policy Optimization (GRPO) for LLMs. While GRPO relies on diverse rollou

safetyarxiv-cs-ai
1 Jun 2026
Safety

Softly Constrained Denoisers for Diffusion Models Applied to Partial Differential Equations

DGX agent

arXiv:2512.14980v4 Announce Type: replace Abstract: Diffusion models have become a powerful generative prior for solutions of partial differential equations (PDEs). Existing approaches enforce physica

safetyarxiv-cs-lg
1 Jun 2026
Safety

SpongeBob: Sync-Aware Harmonious Audio-Visual Generative Editing

DGX agent

arXiv:2605.25193v2 Announce Type: replace Abstract: Visual and acoustic events in the physical world are inherently coupled, yet existing video editing methods typically adopt decoupled pipelines, lac

safetyarxiv-cs-cv
1 Jun 2026
Safety

Structural Bias Beyond Homophily: A Study of Fairness in Link Prediction

DGX agent

arXiv:2602.11802v2 Announce Type: replace Abstract: Graph link prediction (LP) plays a critical role in socially impactful applications such as job recommendation and friendship formation, making fair

safetyarxiv-cs-lg
1 Jun 2026
Safety

Structure-Induced Information for Rerooting Levin Tree Search

DGX agent

arXiv:2605.30664v1 Announce Type: new Abstract: Subgoal-based policy tree search, which uses a policy to guide search, is effective for complex single-agent deterministic problems but often relies on

safetyarxiv-cs-ai
1 Jun 2026
Safety

Supervised Learning as Lossy Compression: Characterizing Generalization and Sample Complexity via Finite Blocklength Analysis

DGX agent

arXiv:2602.04107v2 Announce Type: replace Abstract: This paper presents a novel information-theoretic perspective on generalization in machine learning by framing the learning problem within the conte

safetyarxiv-cs-lg
1 Jun 2026
Safety

Supervised Training Rapidly Degrades Early Visual Cortex Alignment Across Biologically Plausible Learning Rules

DGX agent

arXiv:2605.30556v1 Announce Type: new Abstract: Random, untrained neural networks consistently match or exceed trained networks in representational similarity to early visual cortex. This puzzling fin

safetyarxiv-cs-lg
1 Jun 2026
Safety

Surface Constraint Policy for Learning Surface-Constrained and Dynamically Feasible Robot Skills

DGX agent

arXiv:2605.31321v1 Announce Type: new Abstract: Diffusion-based imitation learning methods have driven rapid progress in robot dexterous manipulation tasks. However, they have limitations when applied

safetyarxiv-cs-ro
1 Jun 2026
Safety

Synthetic Stimuli, Real Gains: Rethinking VLM Fine-Tuning Through Fully Controlled Data Generation

DGX agent

arXiv:2511.11440v3 Announce Type: replace-cross Abstract: Performance gains of Vision Language Models (VLMs) obtained by fine-tuning are generally based on ad hoc data collection and annotation of rea

safetyarxiv-cs-cl
1 Jun 2026
Safety

TALON: Token-Aligned Lightweight Adapters for 6-DoF Spacecraft Pose Estimation

DGX agent

arXiv:2605.31217v1 Announce Type: new Abstract: Monocular 6-DoF spacecraft pose estimation methods predominantly process individual frames, discarding the temporal information present in an image sequ

safetyarxiv-cs-cv
1 Jun 2026
Safety

Task-Focused Memorization for Multimodal Agents

DGX agent

arXiv:2605.31075v1 Announce Type: new Abstract: Long-term memory is essential for multimodal agents to build coherent experience, accumulate world knowledge, and achieve continual learning. However, c

safetyarxiv-cs-cv
1 Jun 2026
Safety

THE DEFINITIVE AI CONVERSATION OF THE YEAR. MUST LISTEN. @JG_Nuke @GaryMarcus @MacrostrategyP https://open.substack.com/pub/georgenoble/p/ai…

DGX agent

THE DEFINITIVE AI CONVERSATION OF THE YEAR. MUST LISTEN. @JG_Nuke @GaryMarcus @MacrostrategyP https://open.substack.com/pub/georgenoble/p/ai-the-biggest-capital-misallocation-d18?r=35saq&utm_medium=io

safetygary-marcus--x
1 Jun 2026
Safety

The Flip Side of RLHF: On-Policy Feedback for Reward Model Self-Supervised Improvement

DGX agent

arXiv:2605.30888v1 Announce Type: new Abstract: Building strong reward models (RMs) for language model alignment is bottlenecked by the cost and difficulty of acquiring diverse and reliable preference

safetyarxiv-cs-cl
1 Jun 2026
Safety

The Global Landscape of Environmental AI Regulation: From the Cost of Reasoning to a Right to Green AI

DGX agent

arXiv:2603.00068v2 Announce Type: replace-cross Abstract: Artificial intelligence (AI) systems impose substantial and growing environmental costs, yet transparency about these impacts has declined eve

safetyarxiv-cs-ai
1 Jun 2026
Safety

The Refutability Gap: Challenges in Validating Reasoning by Large Language Models

DGX agent

arXiv:2601.02380v4 Announce Type: replace-cross Abstract: Recent reports claim that Large Language Models (LLMs) have achieved the ability to derive new science and exhibit human-level general intelli

safetyarxiv-cs-ai
1 Jun 2026
Safety

The Sword, Shield, and Achilles' Heel: Characterizing the Linguistic Inductive Bias of Large Language Models for Spatial Reasoning in Navigation Planning

DGX agent

arXiv:2605.31404v1 Announce Type: cross Abstract: Large Language Model (LLM)-based navigation systems commonly construct explicit spatial representations (e.g., topological graphs, semantic raster map

safetyarxiv-cs-ai
1 Jun 2026
Safety

“The technology worked. The value didn’t arrive,” Bain concluded in the report. https://www.bloomberg.com/news/newsletters/2026-06-01/bain-s…

DGX agent

“The technology worked. The value didn’t arrive,” Bain concluded in the report. https://www.bloomberg.com/news/newsletters/2026-06-01/bain-survey-ai-delivers-less-cost-reduction-than-many-firms-predic

safetygary-marcus--x
1 Jun 2026
Safety

This was right five years ago, and still is: “Large scale pretrained models are certainly likely to figure prominently in artificial intelli…

DGX agent

This was right five years ago, and still is: “Large scale pretrained models are certainly likely to figure prominently in artificial intelligence for the near future, and play an important role in com

safetygary-marcus--x
1 Jun 2026
Safety

Traceable by Design: An LLM Pipeline and Dashboard for EU Regulatory Consultation Analysis

DGX agent

arXiv:2605.30995v1 Announce Type: cross Abstract: Public consultations generate large volumes of data in the form of stakeholder submissions that are practically unfeasible to analyse manually. We pre

safetyarxiv-cs-cl
1 Jun 2026
Model Releases

Triaging Threats to Specialized Guardrails

DGX agent

arXiv:2605.30693v1 Announce Type: cross Abstract: Building robust safety guardrails is essential for deploying Large Language Models across diverse real-world applications. However, this goal remains

model-releasesarxiv-cs-cl
1 Jun 2026
Safety

Trust-Region Behavior Blending for On-Policy Distillation

DGX agent

arXiv:2605.31159v1 Announce Type: cross Abstract: On-policy distillation (OPD) trains a student on prefixes sampled from its own policy while matching a stronger teacher. This addresses the prefix mis

safetyarxiv-cs-ai
1 Jun 2026
Safety

TunerDiT: Training-free Progressive Steering of Diffusion Transformer for Multi-Event Video Generation

DGX agent

arXiv:2605.31590v1 Announce Type: cross Abstract: Text-to-video (T2V) generation faces challenging questions when generating videos with long horizons containing multiple events. Inspired by the intri

safetyarxiv-cs-ai
1 Jun 2026
Safety

TUX: Measuring Human--AI Tacit Understanding

DGX agent

arXiv:2605.30930v1 Announce Type: cross Abstract: As large language models (LLMs) increasingly act as collaborative partners, human--AI alignment is often evaluated through explicit task success, accu

safetyarxiv-cs-ai
1 Jun 2026
Safety

Ubiquity of Emergent Hebbian Dynamics in Regularized Learning

DGX agent

arXiv:2505.18069v3 Announce Type: replace Abstract: Hebbian and anti-Hebbian plasticity are widely observed in the brain and are classically modeled as mechanistic, local homosynaptic rules stabilized

safetyarxiv-cs-lg
1 Jun 2026
Safety

Uncertainty-Aware and Temporally Regulated Expert Advice in Reinforcement Learning for Autonomous Driving

DGX agent

arXiv:2605.30576v1 Announce Type: new Abstract: Exploration in reinforcement learning for autonomous driving is inherently unsafe: agents must experience novel behaviors to learn, yet exploration can

safetyarxiv-cs-ai
1 Jun 2026
Safety

Unfolding Generative Flows with Koopman Operators: Trajectory-Preserving Linearization

DGX agent

arXiv:2506.22304v3 Announce Type: replace-cross Abstract: Continuous Normalizing Flows (CNFs) enable elegant generative modeling but remain bottlenecked by their iterative nature requiring costly samp

safetyarxiv-cs-cv
1 Jun 2026
Safety

UniAudio-Token: Empowering Semantic Speech Tokenizers with General Audio Perception

DGX agent

arXiv:2605.31521v1 Announce Type: new Abstract: Semantic speech tokenizers have become a widely used interface for Audio-LLMs, owing to their compact single-codebook design and strong linguistic align

safetyarxiv-cs-cl
1 Jun 2026
Safety

UniRTL: Unifying Code and Graph for Robust RTL Representation Learning

DGX agent

arXiv:2605.31040v1 Announce Type: new Abstract: Developing effective representations for register transfer level (RTL) designs is crucial for accelerating the hardware design workflow. Existing approa

safetyarxiv-cs-lg
1 Jun 2026
Safety

UXR PoV for Neuroinclusive Emotion Regulation

DGX agent

arXiv:2605.31131v1 Announce Type: cross Abstract: Attention-deficit/hyperactivity disorder (ADHD) is a psychiatric disorder which presents itself in individuals through patterns of developmentally ina

safetyarxiv-cs-ai
1 Jun 2026
Safety

Value Functions as Supermartingale Certificates

DGX agent

arXiv:2605.31524v1 Announce Type: new Abstract: Certification methods for stochastic systems provide sufficient proof rules, based on real-valued supermartingale certificates, to determine the almost-

safetyarxiv-cs-lg
1 Jun 2026
Safety

VeriGate: Verifier-Gated Step-Level Supervision for GRPO

DGX agent

arXiv:2605.30451v1 Announce Type: new Abstract: Group Relative Policy Optimization (GRPO) is an effective recipe for training reasoning models with verifier-based outcome rewards, but its supervision

safetyarxiv-cs-lg
1 Jun 2026
Safety

Vision-Language Models Suppress Female Representations Under Ambiguous Input

DGX agent

arXiv:2605.31556v1 Announce Type: cross Abstract: Alignment teaches vision-language models (VLMs) to avoid expressing demographic biases, and when gender is clearly visible they largely succeed. Far l

safetyarxiv-cs-ai
1 Jun 2026
Safety

Wall-OSS-0.5 Technical Report

DGX agent

arXiv:2605.30877v1 Announce Type: new Abstract: Large-scale Vision-Language-Action (VLA) pretraining is increasingly adopted as the foundation for robot policies, yet the evidence for pretrained VLAs

safetyarxiv-cs-ro
1 Jun 2026
Safety

@webisticsdawg @GaryMarcus Personally I think everyone w a 401(k) should be absolutely livid. I'm disgusted by this, it's so brazen. How dar…

DGX agent

@webisticsdawg @GaryMarcus Personally I think everyone w a 401(k) should be absolutely livid. I'm disgusted by this, it's so brazen. How dare the richest man in the world pick working Americans' pocke

safetygary-marcus--x
1 Jun 2026
Safety

What Am I Missing? Question-Answering as Hidden State Probing

DGX agent

arXiv:2605.31561v1 Announce Type: new Abstract: Test-time reasoning has become a significant field of study since the introduction of chain-of-thought reasoning in large language models (LLMs). Howeve

safetyarxiv-cs-cl
1 Jun 2026
Safety

What if the skeptics are right and superintelligence is impossible? Great! Then a proactive ban costs us nothing, prevents massive compute w…

DGX agent

What if the skeptics are right and superintelligence is impossible? Great! Then a proactive ban costs us nothing, prevents massive compute waste, and hurts no one. But if they are wrong? We face an un

safetyconnor-leahy--x
1 Jun 2026
Safety

When are LLMs Sufficient Policy Optimizers for Sequential RL Tasks?

DGX agent

arXiv:2605.30719v1 Announce Type: cross Abstract: We study when large language models (LLMs) can serve as effective black-box policy optimizers for reinforcement learning (RL) tasks, i.e., when can we

safetyarxiv-cs-ai
1 Jun 2026
Safety

which is NOT new; see this quote from 5 years ago. the fact that all this is still true says a lot.

DGX agent

which is NOT new; see this quote from 5 years ago. the fact that all this is still true says a lot. This was right five years ago, and still is: “Large scale pretrained models are certainly likely to

safetygary-marcus--x
1 Jun 2026
Safety

Who Gets Credit or Blame? Attributing Accountability in Modern AI Systems

DGX agent

arXiv:2506.00175v5 Announce Type: replace-cross Abstract: Modern AI systems are typically developed through multiple stages-pretraining, fine-tuning rounds, and subsequent adaptation or alignment, whe

safetyarxiv-cs-ai
1 Jun 2026
Safety

Why Linear Recurrent Memory Works in Partially Observable Reinforcement Learning

DGX agent

arXiv:2605.31261v1 Announce Type: cross Abstract: The family of linear recurrent neural networks has shown strong performance as recurrent memory units in partially observable reinforcement learning.

safetyarxiv-cs-ai
1 Jun 2026
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