Skip to main content
LLM Security Database
Skip to research search
Updated 7/21/2026, database is current

Language Model Security Database

959 research findings · 1077 evaluated models

Filtered research findings

340 entries

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

AI control protocols utilizing Large Language Models (LLMs) as "trusted monitors" to oversee stronger "untrusted" models are vulnerable to adaptive prompt injection attacks. An adversarial untrusted model, possessing knowledge of the monitor's system prompt and scoring logic (Kerckhoffs's principle), can embed specific text artifacts—such as fake system calibration logs or XML metadata—within its output. These injections exploit the monitor's inability to distinguish between data (the agent's…

Adaptive Attacks on Trusted Monitors Subvert AI Control Protocols
Affects: GPT-4o, GPT-4o Mini, GPT-4.1 +3 more

Source: arXiv

AI code agents are vulnerable to jailbreaking attacks that cause them to generate or complete malicious code. The vulnerability is significantly amplified when a base Large Language Model (LLM) is integrated into an agentic framework that uses multi-step planning and tool-use. Initial safety refusals by the LLM are frequently overturned during subsequent planning or self-correction steps within the agent's reasoning loop.

Breaking the Code: Security Assessment of AI Code Agents Through Systematic Jailbreaking Attacks
Affects: Claude 3.7 Sonnet, DeepSeek R1, Dolphin Mistral 24B Venice +6 more

Source: arXiv

Updated 11/20/2025

A jailbreak vulnerability, known as Task Concurrency, exists in multiple Large Language Models (LLMs). The vulnerability arises when two distinct tasks, one harmful and one benign, are interleaved at the word level within a single prompt. The structure of the malicious prompt alternates words from each task, often using separators like {} to encapsulate words from the second task. This "concurrent" instruction format obfuscates the harmful intent from the model's safety guardrails, causing the…

Adjacent Words, Divergent Intents: Jailbreaking Large Language Models via Task Concurrency
Affects: DeepSeek V3, Gemini 2.5 Flash, GPT-4.1 +7 more

Source: arXiv

Large Language Models (LLMs) are vulnerable to imperceptible jailbreaking attacks and prompt injection via the exploitation of Unicode variation selectors. This vulnerability arises from a discrepancy between text rendering and tokenizer processing. Attackers can append long sequences of invisible variation selectors (specifically from ranges U+FE00–U+FE0F and U+E0100–U+E01EF) to malicious prompts. While these characters are visually rendered as zero-width or ignored by standard user…

Imperceptible Jailbreaking against Large Language Models
Affects: Llama 2 7B, Llama 3.1 8B, Mistral 7B +1 more

Source: arXiv

A vulnerability exists in Large Language Models (LLMs) that support fine-tuning, allowing an attacker to bypass safety alignments using a small, benign dataset. The attack, "Attack via Overfitting," is a two-stage process. In Stage 1, the model is fine-tuned on a small set of benign questions (e.g., 10) paired with identical, repetitive refusal answers. This induces an overfitted state where the model learns to refuse all prompts, creating a sharp minimum in the loss landscape and making it…

Attack via Overfitting: 10-shot Benign Fine-tuning to Jailbreak LLMs
Affects: DeepSeek R1 Distill Llama 8B, GPT-3.5 Turbo, GPT-4.1 +7 more

Source: arXiv

Pattern Enhanced Chain of Attack (PE-CoA) shows that safety controls can be bypassed gradually across a conversation. The paper evaluates five recurring conversational patterns and finds that resistance to one pattern does not reliably generalize to others, creating a black-box, multi-turn jailbreak risk even when individual turns appear benign.

Pattern Enhanced Multi-Turn Jailbreaking: Exploiting Structural Vulnerabilities in Large Language Models
Affects: Claude 3 Haiku, DeepSeek Chat, Gemini 1.5 Flash +9 more

Source: arXiv

Appending simple demographic persona details to prompts requesting policy-violating content can bypass the safety mechanisms of Large Language Models. This technique, referred to as persona-targeted prompting, adds details such as country, generation, and political orientation to a request for a harmful narrative (e.g., disinformation). This systematically increases the jailbreak rate across most tested models and languages, in some cases by over 10 percentage points, enabling the generation…

A Multilingual, Large-Scale Study of the Interplay between LLM Safeguards, Personalisation, and Disinformation
Affects: Claude 3.5 Sonnet, Gemma 2 9B IT, GPT-4o +5 more

Source: arXiv

A vulnerability exists in Large Language Models where their strong adherence to processing structured data schemas can be exploited to bypass safety mechanisms. The attack, named BreakFun, uses a multi-component prompt that combines an innocent framing, a Chain-of-Thought (CoT) instruction, and a core "Trojan Schema." This schema is an adversarially designed data structure (e.g., a Python class definition) that embeds a harmful user request. By instructing the model to simulate the…

BreakFun: Jailbreaking LLMs via Schema Exploitation
Affects: Claude 3 Haiku, Claude 3.5 Sonnet, DeepSeek R1 +11 more

Source: arXiv

Updated 10/31/2025

Large Language Models (LLMs) that use special tokens to define conversational structure (e.g., via chat templates) are vulnerable to a jailbreak attack named MetaBreak. An attacker can inject these special tokens, or regular tokens with high semantic similarity in the embedding space, into a user prompt. This manipulation allows the attacker to bypass the model's internal safety alignment and external content moderation systems. The attack leverages four primitives: 1. Response Injection…

MetaBreak: Jailbreaking Online LLM Services via Special Token Manipulation
Affects: Claude Opus 4, Gemma 2 27B IT, GPT-4.1 +9 more

Source: arXiv

A vulnerability exists in certain safety-aligned Large Language Models (LLMs) due to an untargeted, gradient-based optimization attack method called Untargeted Jailbreak Attack (UJA). Unlike previous targeted attacks (e.g., GCG) that optimize a prompt to elicit a predefined string (e.g., "Sure, here is..."), UJA optimizes for a general objective: maximizing the unsafety probability of the model's response, as quantified by an external judge model.

Untargeted Jailbreak Attack
Affects: DeepSeek R1, GPT-2 Large, GPT-4 +11 more

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.