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Updated 7/21/2026, database is current

Language Model Security Database

959 research findings · 1077 evaluated models

Filtered research findings

45 entries

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

Updated 12/9/2025

Mobile LLM agents utilizing vision-based screen perception (OCR or Multimodal Large Language Models) are vulnerable to Visual Prompt Injection via malicious GUI overlays. An attacker holding the SYSTEM_ALERT_WINDOW permission can deploy non-focusable floating windows (using FLAG_NOT_FOCUSABLE) containing adversarial text or fabricated UI elements over legitimate applications. Because the agent captures the entire screen buffer to interpret the device state, it ingests the adversarial overlay…

From Assistants to Adversaries: Exploring the Security Risks of Mobile LLM Agents
Affects: GPT-4o

Source: arXiv

Updated 12/30/2025

Large Language Model (LLM) agents operating in stateful environments (web browsers, operating systems, and tool-use contexts) are vulnerable to indirect prompt injection and multi-modal adversarial attacks. These vulnerabilities arise when agents process untrusted environmental observations—such as web accessibility trees, screen screenshots, or database query results—that contain concealed malicious instructions. Specifically, attackers can embed prompt injections into HTML accessibility…

DoomArena: A Framework for Testing AI Agents Against Evolving Security Threats
Affects: GPT-4o, GPT-4o Mini, Claude 3.5 Sonnet +2 more

Source: arXiv

LLM-powered GUI agents utilizing screenshot-based interpretation (such as those powered by GPT-4o, Claude 3.7 Sonnet, Gemini 2.0 Flash, and DeepSeek V3 0324) are vulnerable to Fine-Print Injection (FPI) and Deceptive Default (DD) attacks due to a lack of visual saliency filtering. Unlike human users who prioritize prominent UI elements, these agents perform "indiscriminate parsing," processing low-salience text (e.g., privacy policies, terms of service, footer disclaimers) with the same…

The Obvious Invisible Threat: LLM-Powered GUI Agents' Vulnerability to Fine-Print Injections
Affects: GPT-4o, Gemini 2.0 Flash, Claude 3.7 Sonnet +2 more

Source: arXiv

Multi-agent systems (MAS) utilizing Large Language Model (LLM) orchestration are vulnerable to control-flow hijacking via indirect prompt injection, leading to Remote Code Execution (RCE). This vulnerability arises when a sub-agent (e.g., a file surfer or web surfer) processes untrusted input containing adversarial metadata, such as simulated error messages or administrative instructions. The sub-agent faithfully reproduces this adversarial content in its report to the orchestrator agent. The…

Multi-agent systems execute arbitrary malicious code
Affects: GPT-4o, GPT-4o Mini, Gemini 1.5 Pro +1 more

Source: arXiv

Large Vision-Language Models (VLMs) are vulnerable to a cross-modal toxic continuation attack facilitated by reinforcement learning-tuned diffusion models. This vulnerability allows an attacker to bypass safety alignment and external guardrails (such as NSFW image filters) by pairing a specific text prefix with a "semantically adversarial" image. Unlike traditional gradient-based adversarial examples that rely on pixel noise, these images are semantically coherent but optimized via Denoising…

RedDiffuser: Auditing Multimodal Safety Failures in Vision-Language Models via Reinforced Diffusion
Affects: LLaVA 1.5 7B, Gemini 1.5 Flash, Llama 3.2 11B Vision Instruct

Source: arXiv

Updated 3/8/2026

Multimodal Large Language Models (MLLMs) are vulnerable to coupled cross-modal jailbreak attacks that combine continuous visual perturbations with discrete textual manipulations. Because standard alignment and single-modality defenses (such as text-only safety tuning or isolated vision-encoder adversarial training) fail to secure the cross-modal interaction, attackers can simultaneously apply gradient-based noise (e.g., PGD) to input images and adversarial suffixes (e.g., GCG) to text prompts…

E2AT: Multimodal Jailbreak Defense via Dynamic Joint Optimization for Multimodal Large Language Models
Affects: LLaVA 1.5 7B, Bunny 1.0 4B, Mplug-owl2

Source: arXiv

FC-Attack leverages automatically generated flowcharts containing step-by-step descriptions derived or rephrased from harmful queries, combined with a benign textual prompt, to jailbreak Large Vision-Language Models (LVLMs). The vulnerability lies in the model's susceptibility to visual prompts containing harmful information within the flowcharts, thus bypassing safety alignment mechanisms.

FC-Attack: Jailbreaking Large Vision-Language Models via Auto-Generated Flowcharts
Affects: Claude 3.5 Sonnet 20240620, Gemini 1.5 Flash, GPT-4o 2024-08-06 +4 more

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

Vision Language Models (VLMs) integrated into autonomous driving (AD) systems are vulnerable to a black-box adversarial attack method termed Cascading Adversarial Disruption (CAD). The vulnerability stems from the model's susceptibility to optimized visual perturbations that disrupt the decision-making reasoning chain (perception, prediction, and planning). Attackers can generate adversarial images or physical patches by aligning visual noise with deceptive textual semantics in the model's…

Black-box adversarial attack on vision language models for autonomous driving
Affects: GPT-4, GPT-4o, InstructBLIP

Source: arXiv

Updated 12/9/2025

Vision Language Models (VLMs) are vulnerable to visual prompt injection attacks via text-to-image obfuscation. While these models often possess safety guardrails for standard text-based inputs, they fail to apply equivalent safety alignment to textual instructions embedded visually within an image. An attacker can overlay malicious instructions (e.g., requests for illegal acts, hate speech) onto an image file and submit it to the model. The model’s Optical Character Recognition (OCR) or visual…

Lessons from red teaming 100 generative ai products
Affects: GPT-4, Phi-3

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.