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Updated 7/21/2026, database is current

Language Model Security Database

959 research findings · 1077 evaluated models

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32 entries

Matches every word across titles, descriptions, sources, affected systems, and models.

Multimodal Entity Linking (MEL) systems, encompassing both traditional dual-encoder models and Multimodal Large Language Models (MLLMs), are vulnerable to gradient-based white-box adversarial attacks. By applying imperceptible perturbations to visual inputs via Projected Gradient Descent (PGD), Auto-PGD (APGD), or Carlini & Wagner (CW) methods, an attacker can manipulate the visual embeddings generated by the model. This manipulation disrupts the cross-modal alignment structure, causing the…

On Evaluating the Adversarial Robustness of Foundation Models for Multimodal Entity Linking
Affects: MiniGPT-4

Source: arXiv

Large Language Models (LLMs), including Llama 2, Mistral, and Vicuna, are susceptible to a white-box adversarial attack that circumvents safety alignment mechanisms (such as RLHF). The vulnerability exists due to the models' susceptibility to intrinsic optimization of adversarial suffixes using Exponentiated Gradient Descent (EGD). Unlike previous methods that rely on inefficient discrete token searches (e.g., Greedy Coordinate Gradient) or standard projected gradient descent, this attack…

Universal and Transferable Adversarial Attack on Large Language Models Using Exponentiated Gradient Descent
Affects: GPT-3.5, GPT-4o, Llama 2 7B +3 more

Source: arXiv

Updated 12/30/2025

Large Language Models (LLMs) utilizing Chain-of-Thought (CoT) prompting are vulnerable to input perturbations that decouple intermediate reasoning from the final answer. An attacker can generate adversarial examples using gradient-based optimization (targeting specific loss functions that maximize reasoning divergence while minimizing answer loss) to induce "Right Answer, Wrong Reasoning" behaviors. This vulnerability manifests through two primary attack vectors: 1. Token-level perturbations…

Robust Answers, Fragile Logic: Probing the Decoupling Hypothesis in LLM Reasoning
Affects: Llama 3 8B, Mistral 7B, Zephyr 7B Beta +4 more

Source: arXiv

Large Vision-Language Models (LVLMs) that utilize a projection layer (adapter) to bridge a vision encoder and a Large Language Model (LLM) contain a vulnerability stemming from the "Modality Gap"—a distributional distance between image and text token embeddings. This gap allows the visual modality to bypass the safety alignment (RLHF/instruction tuning) of the backbone LLM. Attackers can trigger harmful, toxic, or illegal responses to queries that would be refused in text-only contexts by…

Bootstrapping LLM Robustness for VLM Safety via Reducing the Pretraining Modality Gap
Affects: LLaVA 7B, Vicuna 7B

Source: arXiv

Sparse Autoencoders (SAEs), utilized for interpreting the internal residual stream activations of Large Language Models (LLMs) into human-understandable concepts, are vulnerable to adversarial input perturbations. By employing gradient-based optimization techniques adapted for SAEs (specifically a generalized Greedy Coordinate Gradient), an attacker can craft inputs via suffix appending or token replacement that manipulate the SAE's latent feature activations. This vulnerability allows for the…

Interpretability Illusions with Sparse Autoencoders: Evaluating Robustness of Concept Representations
Affects: Llama 3 8B, Gemma 2 9B

Source: arXiv

The Vision-Language Model (VLM) perception module in Vision-and-Language Navigation (VLN) agents is vulnerable to adversarial 3D object injection via the Adversarial Object Fusion (AdvOF) framework. An attacker can generate physically plausible 3D objects with adversarial perturbations capable of deceiving the agent's VLM across multiple viewing angles and distances. The vulnerability exists due to a misalignment between 3D physical manipulations and the agent's 2D image perception, combined…

Disrupting Vision-Language Model-Driven Navigation Services via Adversarial Object Fusion

Source: arXiv

Retrieval-Augmented Generation (RAG) systems employing standard dense embedding models (e.g., Sentence-T5, SimCSE-BERT, RoBERTa, MPNet) for End-Cloud collaboration are vulnerable to Embedding Inversion Attacks (EIA). While embeddings are vector representations designed to be human-unrecognizable, they retain sufficient semantic information to allow an attacker with access to the vectors (e.g., a malicious or compromised cloud provider) to reconstruct the original sensitive plaintext input.

Safeguarding LLM Embeddings in End-Cloud Collaboration via Entropy-Driven Perturbation

Source: arXiv

Updated 12/9/2025

Vision-Language Models (VLMs), specifically the LLaVA-1.5 and LLaVA-1.6 series, are vulnerable to optimization-based white-box jailbreak attacks despite standard safety alignment measures like Supervised Fine-Tuning (SFT) and Direct Preference Optimization (DPO). Attackers can craft adversarial perturbations in the image space (imperceptible noise) or latent space using Projected Gradient Descent (PGD) to manipulate the model's internal representations. These perturbations maximize the…

Adversary-Aware DPO: Enhancing Safety Alignment in Vision Language Models via Adversarial Training
Affects: LLaVA 1.5 7B, LLaVA 1.6 7B

Source: arXiv

Multimodal Large Language Models (MLLMs) are vulnerable to a universal adversarial attack where a single, optimized image can bypass safety alignment mechanisms across diverse textual queries. By employing gradient-based optimization on the input image pixels while propagating gradients through the vision encoder and language model, an attacker can craft a visual perturbation that coerces the model into a compliant state. When this adversarial image is present in the context, the model’s…

Universal Adversarial Attack on Multimodal Aligned LLMs
Affects: LLaVA 1.5 7B, Llama 3.2 11B Vision Instruct, Phi-3.5 Vision Instruct +1 more

Source: arXiv

State-of-the-art machine unlearning and safety fine-tuning methods for Large Language Models (LLMs) fail to robustly remove hazardous capabilities or refusal mechanisms from model weights. While these methods suppress model outputs during standard input-output interactions, the underlying capabilities remain latent in the parameter space. An attacker with access to model weights (e.g., via open releases or leaked weights) can restore "unlearned" knowledge (such as dual-use biology hazards) or…

Model tampering attacks enable more rigorous evaluations of llm capabilities
Affects: Llama 3 8B

Source: arXiv

Research methodology

Entries summarize publicly available primary-source security research. Model names reflect only systems explicitly evaluated by the cited paper, and measurements are research-reported unless independent verification is stated.