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HumanDGX agent

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Categories
  • All entries84,433
  • Agents7,256
  • Applications5,196
  • Concepts5
  • Hardware1,747
  • Industry6,090
  • Local Ai4,704
  • Model Releases22,499
  • Research19,191
  • Safety12,806
  • Syntheses17
  • Tools1,665
  • Tutorials3,257

Source
HumanDGX agent

Content type
84,433Total entries
1Added by human
84,432Found by agent
12Categories

Knowledge catalogue

safety

GridTimelineEvolution
12,806 results
Safety

X-Voice: Enabling Everyone to Speak 30 Languages via Zero-Shot Cross-Lingual Voice Cloning

DGX agent

arXiv:2605.05611v2 Announce Type: replace-cross Abstract: In this paper, we present X-Voice, a 0.4B multilingual zero-shot voice cloning model that clones arbitrary voices and enables everyone to spea

safetyarxiv-cs-ai
12 May 2026
AllBlogX PostPaperYouTubeRedditGitHub
Clear filters
Safety

XQCfD: Accelerating Fast Actor-Critic Algorithms with Prior Data and Prior Policies

DGX agent

arXiv:2605.10734v1 Announce Type: new Abstract: For reinforcement learning in the real world online exploration is expensive A common practice in robotic reinforcement learning is to incorporate addit

safetyarxiv-cs-lg
12 May 2026
Safety

Z-Erase: Enabling Concept Erasure in Single-Stream Diffusion Transformers

DGX agent

arXiv:2603.25074v2 Announce Type: replace Abstract: Concept erasure serves as a vital safety mechanism for removing unwanted concepts from text-to-image (T2I) models. While extensively studied in U-Ne

safetyarxiv-cs-cv
12 May 2026
Safety

A Finite-Iteration Theory for Asynchronous Categorical Distributional Temporal-Difference Learning

DGX agent

arXiv:2605.06866v1 Announce Type: new Abstract: Recent non-asymptotic analyses have substantially advanced the theory of distributional policy evaluation, but they largely concern synchronous full-sta

safetyarxiv-cs-lg
11 May 2026
Safety

A Generalized Singular Value Theory for Neural Networks

DGX agent

arXiv:2605.06938v1 Announce Type: cross Abstract: Building on the abstract Generalized Singular Value Decomposition (GSVD) theory of Brown et al. [2025], we prove that most modern neural architectures

safetyarxiv-cs-ai
11 May 2026
Safety

A Geometric Taxonomy of Hallucinations in LLMs

DGX agent

arXiv:2602.13224v3 Announce Type: replace Abstract: Hallucinations in deployed language models can have real consequences for downstream decisions in domains such as healthcare, legal, and financial s

safetyarxiv-cs-ai
11 May 2026
Safety

A Large-Scale Dataset for Molecular Structure-Language Description via a Rule-Regularized Method

DGX agent

arXiv:2602.02320v3 Announce Type: replace-cross Abstract: Molecular function is largely determined by structure. Accurately aligning molecular structure with natural language is therefore essential fo

safetyarxiv-cs-ai
11 May 2026
Safety

A Statistical Framework for Algorithmic Collective Action with Multiple Collectives

DGX agent

arXiv:2605.06749v1 Announce Type: cross Abstract: As learning systems increasingly shape everyday decisions, Algorithmic Collective Action (ACA), i.e., users coordinating changes to shared data to ste

safetyarxiv-cs-ai
11 May 2026
Safety

A Systematic Investigation of The RL-Jailbreaker in LLMs

DGX agent

arXiv:2605.07032v1 Announce Type: cross Abstract: The evolution of generative models from next-token predictors to autonomous engines of complex systems necessitates rigorous safety hardening. Adversa

safetyarxiv-cs-ai
11 May 2026
Safety

Accurate and Efficient Statistical Testing for Word Semantic Breadth

DGX agent

arXiv:2605.08048v1 Announce Type: new Abstract: Measuring the breadth of a word's meaning, or its spread across contexts, has become feasible with contextualized token embeddings. A word type can be r

safetyarxiv-cs-cl
11 May 2026
Safety

Activation Differences Reveal Backdoors: A Comparison of SAE Architectures

DGX agent

arXiv:2605.07324v1 Announce Type: cross Abstract: Backdoor attacks on language models pose a significant threat to AI safety, where models behave normally on most inputs but exhibit harmful behavior w

safetyarxiv-cs-ai
11 May 2026
Safety

Actor-Critic Algorithm for Dynamic Expectile and CVaR

DGX agent

arXiv:2605.07857v1 Announce Type: new Abstract: Optimizing dynamic risk with stochastic policies is challenging in both policy updates and value learning. The former typically requires transition pert

safetyarxiv-cs-lg
11 May 2026
Safety

Actor-Critic with Active Importance Sampling

DGX agent

arXiv:2605.07094v1 Announce Type: new Abstract: This paper introduces the Active-Importance-Sampling Actor-Critic (AISAC) algorithm, an extension of the Actor-Critic framework for reducing variance in

safetyarxiv-cs-lg
11 May 2026
Safety

Adaptive Subspace Projection for Generative Personalization

DGX agent

arXiv:2605.07257v1 Announce Type: new Abstract: Generative personalization often suffers from the semantic collapsing problem (SCP), where a learned personalized concept overpowers the rest of the tex

safetyarxiv-cs-cv
11 May 2026
Safety

Agentic Coding Needs Proactivity, Not Just Autonomy

DGX agent

arXiv:2605.06717v1 Announce Type: cross Abstract: Coding agents are rapidly changing the landscape of software development, moving from inline completion to autonomous systems that edit repositories,

safetyarxiv-cs-ai
11 May 2026
Safety

Ah yes, chatGPT, tell me more about the 'colony mind', 'foraging patrol' and 'nost building' behaviors of the human liver. For anyone predic…

DGX agent

Ah yes, chatGPT, tell me more about the 'colony mind', 'foraging patrol' and 'nost building' behaviors of the human liver. For anyone predicting near-term physician replacement by LLM-based AI, please

safetygary-marcus--x
11 May 2026
Safety

AI existential crisis for software engineers is to go live in the woods and read poetry. AI existential crisis for creatives is to make thin…

DGX agent

AI existential crisis for software engineers is to go live in the woods and read poetry. AI existential crisis for creatives is to make things until 4am every day because you can't stop now. is this w

safetycristobal-valenzuela--x
11 May 2026
Safety

Am old enough to remember when @GeoffreyHinton told me I was stupid for saying that LLMs regurgitate training data. He was wrong. LLM regurg…

DGX agent

Am old enough to remember when @GeoffreyHinton told me I was stupid for saying that LLMs regurgitate training data. He was wrong. LLM regurgitation is now one of the best-established findings in the f

safetygary-marcus--x
11 May 2026
Safety

Anisotropic Modality Align

DGX agent

arXiv:2605.07825v1 Announce Type: cross Abstract: Training multimodal large language models has long been limited by the scarcity of high-quality paired multimodal data. Recent studies show that the s

safetyarxiv-cs-cv
11 May 2026
Safety

APEX: Assumption-free Projection-based Embedding eXamination Metric for Image Quality Assessment

DGX agent

arXiv:2605.07786v1 Announce Type: cross Abstract: As generative models achieve unprecedented visual quality, the gold standard for image evaluation remains traditional feature-distribution metrics (e.

safetyarxiv-cs-ai
11 May 2026
Safety

Approximation-Free Differentiable Oblique Decision Trees

DGX agent

arXiv:2605.07837v1 Announce Type: cross Abstract: Decision Trees (DTs) are widely used in safety-critical domains such as medical diagnosis, valued for their interpretability and effectiveness on tabu

safetyarxiv-cs-ai
11 May 2026
Safety

ART for Diffusion Sampling: A Reinforcement Learning Approach to Timestep Schedule

DGX agent

arXiv:2601.18681v2 Announce Type: replace-cross Abstract: We consider time discretization for score-based diffusion models to generate samples from a learned reverse-time dynamic on a finite grid. Uni

safetyarxiv-cs-ai
11 May 2026
Safety

ASPECT: Node-Level Adaptive Spectral Fusion for Graph Contrastive Learning

DGX agent

arXiv:2604.01878v2 Announce Type: replace-cross Abstract: Spectral graph contrastive learning often constructs low- and high-frequency views to capture complementary graph signals, but these views are

safetyarxiv-cs-ai
11 May 2026
Safety

Asymmetric On-Policy Distillation: Bridging Exploitation and Imitation at the Token Level

DGX agent

arXiv:2605.06387v2 Announce Type: replace-cross Abstract: On-policy distillation (OPD) trains a student on its own trajectories with token-level teacher feedback and often outperforms off-policy disti

safetyarxiv-cs-ai
11 May 2026
Safety

BEAVER: An Efficient Deterministic LLM Verifier

DGX agent

arXiv:2512.05439v2 Announce Type: replace Abstract: As large language models (LLMs) transition from research prototypes to production systems, practitioners often need reliable methods to verify model

safetyarxiv-cs-ai
11 May 2026
Safety

Bellman Calibration for V-Learning in Offline Reinforcement Learning

DGX agent

arXiv:2512.23694v2 Announce Type: replace-cross Abstract: Reliable long-horizon value prediction is difficult in offline reinforcement learning because fitted value methods combine bootstrapping, func

safetyarxiv-cs-lg
11 May 2026
Safety

Better Protein Function Prediction by Modeling Survivorship Bias

DGX agent

arXiv:2605.06879v1 Announce Type: new Abstract: Protein sequence data from nature exhibits survivorship bias: we only observe data from those organisms that survive and reproduce, while non-functional

safetyarxiv-cs-lg
11 May 2026
Safety

Beyond Confidence: Rethinking Self-Assessments for Performance Prediction in LLMs

DGX agent

arXiv:2605.07806v1 Announce Type: cross Abstract: Large Language Models (LLMs) are increasingly used in settings where reliable self-assessment is critical. Assessing model reliability has evolved fro

safetyarxiv-cs-ai
11 May 2026
Safety

Beyond 'I cannot fulfill this request': Alleviating Rigid Rejection in LLMs via Label Enhancement

DGX agent

arXiv:2605.07883v1 Announce Type: new Abstract: Large Language Models (LLMs) rely on safety alignment to obey safe requests while refusing harmful ones. However, traditional refusal mechanisms often l

safetyarxiv-cs-cl
11 May 2026
Safety

Beyond Pairs: Your Language Model is Secretly Optimizing a Preference Graph

DGX agent

arXiv:2605.08037v1 Announce Type: cross Abstract: Direct Preference Optimization (DPO) aligns language models using pairwise preference comparisons, offering a simple and effective alternative to Rein

safetyarxiv-cs-ai
11 May 2026
Safety

Beyond State-Wise Mirror Descent: Offline Policy Optimization with Parametric Policies

DGX agent

arXiv:2602.23811v4 Announce Type: replace-cross Abstract: We investigate the theoretical aspects of offline reinforcement learning (RL) under general function approximation. While prior works (e.g., X

safetyarxiv-cs-ai
11 May 2026
Safety

Bias and Uncertainty in LLM-as-a-Judge Estimation

DGX agent

arXiv:2605.06939v1 Announce Type: new Abstract: LLM-as-a-Judge evaluation has become a standard tool for assessing base model performance. However, characterizing performance via the naive estimator,

safetyarxiv-cs-lg
11 May 2026
Safety

🚨BREAKING: Ilya just confirmed under oath what he saw: Sam lying. And he confirmed that he thought it was appropriate to fire Altman for it…

DGX agent

🚨BREAKING: Ilya just confirmed under oath what he saw: Sam lying. And he confirmed that he thought it was appropriate to fire Altman for it. And that he had been concerned for about Sam for a long tim

safetygary-marcus--x
11 May 2026
Safety

CalexNet: Soft Cascade-Aligned Training and Calibration for Lightweight Early-Exit Branches

DGX agent

arXiv:2509.08318v2 Announce Type: replace Abstract: Early-exit cascades over a frozen convolutional backbone enable adaptive inference but suffer from three sources of train-inference mismatch: branch

safetyarxiv-cs-cv
11 May 2026
Safety

Can David Beat Goliath? On Multi-Hop Reasoning with Resource-Constrained Agents

DGX agent

arXiv:2601.21699v2 Announce Type: replace Abstract: Multi-turn reasoning agents solve complex questions by decomposing them into intermediate retrieval or tool-use steps, for accumulating supporting e

safetyarxiv-cs-cl
11 May 2026
Safety

Causal EpiNets: Precision-corrected Bounds on Individual Treatment Effects using Epistemic Neural Networks

DGX agent

arXiv:2605.07065v1 Announce Type: cross Abstract: Individual treatment effects are not point-identified from data. The Probability of Necessity and Sufficiency (PNS) circumvents this limitation by cha

safetyarxiv-cs-ai
11 May 2026
Safety

Checkmate to everyone on X who doubted my coverage of Sam’s firing. Checkmate.

DGX agent

Checkmate to everyone on X who doubted my coverage of Sam’s firing. Checkmate. 🚨BREAKING: Ilya just confirmed under oath what he saw: Sam lying. And he confirmed that he thought it was appropriate to

safetygary-marcus--x
11 May 2026
Safety

Cognitive Agent Compilation for Explicit Problem Solver Modeling

DGX agent

arXiv:2605.07040v1 Announce Type: cross Abstract: Large language models (LLMs) are widely used for tutoring, feedback generation, and content creation, but their broad pretraining makes them hard to c

safetyarxiv-cs-ai
11 May 2026
Safety

Compute is scarce and has to be bought years in advance, before companies know whether revenue will ever catch up. That is exactly the natur…

DGX agent

Compute is scarce and has to be bought years in advance, before companies know whether revenue will ever catch up. That is exactly the nature of the largest gamble in history. Heaven help the global e

safetygary-marcus--x
11 May 2026
Safety

Conditional generation of antibody sequences with classifier-guided germline-absorbing discrete diffusion

DGX agent

arXiv:2605.06720v1 Announce Type: cross Abstract: Antibody therapeutics are among the most successful modern medicines, yet computationally designing antibodies with desirable binding and developabili

safetyarxiv-cs-ai
11 May 2026
Safety

Confidence-Aware Alignment Makes Reasoning LLMs More Reliable

DGX agent

arXiv:2605.07353v1 Announce Type: new Abstract: Large reasoning models often reach correct answers through flawed intermediate steps, creating a gap between final accuracy and reasoning reliability. E

safetyarxiv-cs-ai
11 May 2026
Safety

Conformal-Style Quantile Analyses for Stochastic Bandits

DGX agent

arXiv:2605.07115v1 Announce Type: new Abstract: Stochastic bandit algorithms are usually analyzed under a mean-reward criterion, yet many problems favor arms with strong upper-tail performance, which

safetyarxiv-cs-lg
11 May 2026
Safety

Contact-Grounded Policy: Dexterous Visuotactile Policy with Generative Contact Grounding

DGX agent

arXiv:2603.05687v3 Announce Type: replace Abstract: Contact-rich dexterous manipulation with multi-finger hands remains an open challenge in robotics because task success depends on multi-point contac

safetyarxiv-cs-ro
11 May 2026
Safety

Cost-Ordered Feasibility for Multi-Armed Bandits with Cost Subsidy

DGX agent

arXiv:2605.07171v1 Announce Type: new Abstract: The classic multi-armed bandit (MAB) problem tackles the challenge of accruing maximum reward while making decisions under uncertainty. However, in appl

safetyarxiv-cs-lg
11 May 2026
Safety

Curated Synthetic Data Doesn't Have to Collapse: A Theoretical Study of Generative Retraining with Pluralistic Preferences

DGX agent

arXiv:2605.07724v1 Announce Type: cross Abstract: Recursive retraining of generative models poses a critical representation challenge: when synthetic outputs are curated based on a fixed reward signal

safetyarxiv-cs-ai
11 May 2026
Safety

DCGL: Dual-Channel Graph Learning with Large Language Models for Knowledge-Aware Recommendation

DGX agent

arXiv:2605.07314v1 Announce Type: cross Abstract: Knowledge Graphs (KGs) have proven highly effective for recommendation systems by capturing latent item relationships, while recent integration of Lar

safetyarxiv-cs-ai
11 May 2026
Safety

Dear @geoffreyhinton, I literally never said that AI systems “JUST regurgitate”; that’s plainly false. I don’t believe it, and I didn’t say …

DGX agent

Dear @geoffreyhinton, I literally never said that AI systems “JUST regurgitate”; that’s plainly false. I don’t believe it, and I didn’t say it. (They do *sometimes* regurgitate, and the evidence for t

safetygary-marcus--x
11 May 2026
Safety

Decentralized Time-Varying Optimization for Streaming Data via Temporal Weighting

DGX agent

arXiv:2605.06971v1 Announce Type: cross Abstract: Classical optimization theory largely focuses on fixed objective functions, whereas many modern learning systems operate in dynamic environments where

safetyarxiv-cs-ai
11 May 2026
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