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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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13 entries

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

Updated 4/10/2026

Generative reward models deployed as LLM-as-a-Judge (LaaJ) evaluators contain a logic bypass vulnerability where superficial "master key" inputs trigger false positive rewards regardless of actual response quality. Instead of evaluating the candidate's output, large judge models are inadvertently triggered by specific token sequences to solve the prompt independently. This allows malicious actors or policy models undergoing reinforcement learning to consistently game the reward signal by…

Security in LLM-as-a-Judge: A Comprehensive SoK
Affects: GPT-4o, o1, Qwen 2.5 72B Instruct +1 more

Source: arXiv

Retrieval-Augmented Generation (RAG) systems are vulnerable to iterative knowledge-extraction attacks designed to reconstruct the underlying private knowledge base. The vulnerability exists due to the decoupled optimization of the retrieval and generation phases. Attackers can craft adversarial queries consisting of two distinct components: an "Information" component (optimized via gradient descent or random sampling to steer embeddings toward specific, diverse regions of the vector space) and…

Benchmarking Knowledge-Extraction Attack and Defense on Retrieval-Augmented Generation
Affects: GPT-4o, Llama 3 8B, Qwen 2.5 7B

Source: arXiv

Updated 3/8/2026

LLM routing systems are vulnerable to adversarial rerouting attacks where malicious triggers prepended to user queries manipulate the router's model-selection mechanism. Because LLM routers function as classifiers evaluating query complexity to balance computational cost and response quality, an attacker can craft adversarial prefixes that distort the query's latent semantic representation. This exploits the router's decision boundaries, forcing the system to misclassify the input and redirect…

RerouteGuard: Understanding and Mitigating Adversarial Risks for LLM Routing
Affects: GPT-4, GPT-4o, GPT-5 +2 more

Source: arXiv

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

Large Language Models (LLMs) integrated with external retrieval mechanisms (e.g., Retrieval-Augmented Generation (RAG), web search, or email processing) are vulnerable to Indirect Prompt Injection. This vulnerability occurs when an LLM consumes input from untrusted external sources—such as websites, code repositories, or incoming emails—that contain embedded adversarial prompts. Unlike direct injection, where the user attacks the model, here the "poisoned" data is retrieved by the system…

Breaking to Build: A Threat Model of Prompt-Based Attacks for Securing LLMs

Source: arXiv

Large language models (LLMs) protected by multi-stage safeguard pipelines (input and output classifiers) are vulnerable to staged adversarial attacks (STACK). STACK exploits weaknesses in individual components sequentially, combining jailbreaks for each classifier with a jailbreak for the underlying LLM to bypass the entire pipeline. Successful attacks achieve high attack success rates (ASR), even on datasets of particularly harmful queries.

STACK: Adversarial Attacks on LLM Safeguard Pipelines
Affects: Claude Opus 4, Gemma 2 9B, GPT-4 Turbo +4 more

Source: arXiv

Updated 4/21/2025

Large Language Model (LLM) guardrail systems, including those relying on AI-driven text classification models (e.g., fine-tuned BERT models), are vulnerable to evasion via character injection and adversarial machine learning (AML) techniques. Attackers can bypass detection by injecting Unicode characters (e.g., zero-width characters, homoglyphs) or using AML to subtly perturb prompts, maintaining semantic meaning while evading classification. This allows malicious prompts and jailbreaks to…

Bypassing Prompt Injection and Jailbreak Detection in LLM Guardrails
Affects: DeBERTa v3 Base, GPT-4o Mini, mDeBERTa v3 Base

Source: arXiv

This vulnerability allows an attacker to bypass the safety mechanisms of Large Language Models (LLMs) by using an evolutionary algorithm to generate effective jailbreak prompts. The algorithm leverages the LLM's capabilities to iteratively refine prompts, increasing the likelihood of eliciting harmful responses to otherwise disallowed queries.

LLM-Virus: Evolutionary Jailbreak Attack on Large Language Models
Affects: Claude 2, Claude 3.5 Haiku, GPT-3.5 Turbo +5 more

Source: arXiv

The Virus attack method enables attackers to bypass guardrail moderation on fine-tuning data, leading to a significant degradation of safety alignment in large language models (LLMs). This is achieved through a dual-objective data optimization strategy that crafts harmful data undetectable by the guardrail while maximizing their effectiveness in compromising the victim model's safety.

Virus: Harmful Fine-tuning Attack for Large Language Models Bypassing Guardrail Moderation
Affects: Llama 3 8B, Llama Guard 2

Source: arXiv

LLM-based planning modules in embodied AI systems are vulnerable to Policy Executable (POEX) jailbreak attacks. Attackers can inject carefully crafted adversarial suffixes into user instructions, causing the LLM to generate and execute harmful policies in both simulated and real-world environments. The attacks bypass safety mechanisms by using optimized, human-readable suffixes that evade perplexity-based detection.

POEX: Policy Executable Embodied AI Jailbreak Attacks
Affects: Claude 3.5 Sonnet, GPT-4, GPT-4 Turbo +9 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.