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Last analyzed 9/9/2026

Language Model Security Database

985 research findings · 1123 evaluated models

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6 entries

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

Published 1/1/2026
Analyzed 3/9/2026

Semantic caching mechanisms in LLM applications are vulnerable to cross-tenant cache key collision attacks (CacheAttack) due to the inherent mathematical conflict between locality-preserving fuzzy hashing and cryptographic collision resistance (the avalanche effect). An attacker can leverage gradient-based search algorithms to optimize an adversarial discrete suffix that, when appended to a malicious prompt, forces its output embedding vector to collide with the embedding of a targeted benign…

From Similarity to Vulnerability: Key Collision Attack on LLM Semantic Caching
Evaluated models: Llama 3.1 8B, Mistral 7B, DeepSeek R1

Source: arXiv

Published 8/1/2025
Analyzed 8/31/2025

A Time-of-Check to Time-of-Use (TOCTOU) vulnerability exists in LLM-enabled agentic systems that execute multi-step plans involving sequential tool calls. The vulnerability arises because plans are not executed atomically. An agent may perform a "check" operation (e.g., reading a file, checking a permission) in one tool call, and a subsequent "use" operation (e.g., writing to the file, performing a privileged action) in another tool call. A temporal gap between these calls, often used for LLM…

Mind the Gap: Time-of-Check to Time-of-Use Vulnerabilities in LLM-Enabled Agents
Evaluated models: GPT-4o

Source: arXiv

Published 5/1/2025
Analyzed 5/31/2025

End-to-end Large Audio-Language Models (LALMs) are vulnerable to AudioJailbreak, a novel attack that appends adversarial audio perturbations ("jailbreak audios") to user prompts. These perturbations, even when applied asynchronously and without alignment to the user's speech, can manipulate the LALM's response to generate adversary-desired outputs that bypass safety mechanisms. The attack achieves universality by employing a single perturbation effective across different prompts and robustness…

AudioJailbreak: Jailbreak Attacks against End-to-End Large Audio-Language Models
Evaluated models: BLSP, FunAudioLLM, GPT-4o +9 more

Source: arXiv

Published 12/1/2024
Analyzed 12/29/2024

Large Audio-Language Models (LALMs) are vulnerable to a stealthy adversarial jailbreak attack, AdvWave, which leverages a dual-phase optimization to overcome gradient shattering caused by audio discretization. The attack crafts adversarial audio by adding perceptually realistic environmental noise, making it difficult to detect. The attack also dynamically adapts the adversarial target based on the LALM's response patterns.

AdvWave: Stealthy Adversarial Jailbreak Attack against Large Audio-Language Models
Evaluated models: GPT-4o, Llama Omni, Qwen 2 Audio +1 more

Source: arXiv

Published 7/1/2024
Analyzed 12/29/2024

Embodied Large Language Models (LLMs) are vulnerable to manipulation via voice-based interactions, leading to the execution of harmful physical actions. Attacks exploit three vulnerabilities: (1) cascading LLM jailbreaks resulting in malicious robotic commands; (2) misalignment between linguistic outputs (verbal refusal) and physical actions (command execution); and (3) conceptual deception, where seemingly benign instructions lead to harmful outcomes due to incomplete world knowledge within…

BadRobot: Manipulating Embodied LLMs in the Physical World
Evaluated models: BERT, GPT-3.5 Turbo, GPT-4 Turbo +2 more

Source: arXiv

Published 7/1/2024
Analyzed 12/28/2024

Large Language Models (LLMs) integrated into applications reveal unique behavioral fingerprints through responses to crafted queries. LLMmap exploits this by sending carefully constructed prompts and analyzing the responses to identify the specific LLM version with high accuracy (over 95% in testing against 42 LLMs). This allows attackers to tailor attacks exploiting known vulnerabilities specific to the identified LLM version.

Llmmap: Fingerprinting for large language models
Evaluated models: Aya-23-8B, Cohere-35B, GPT-4 +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.