Количество 4
Количество 4

CVE-2025-46560
vLLM is a high-throughput and memory-efficient inference and serving engine for LLMs. Versions starting from 0.8.0 and prior to 0.8.5 are affected by a critical performance vulnerability in the input preprocessing logic of the multimodal tokenizer. The code dynamically replaces placeholder tokens (e.g., <|audio_|>, <|image_|>) with repeated tokens based on precomputed lengths. Due to inefficient list concatenation operations, the algorithm exhibits quadratic time complexity (O(n²)), allowing malicious actors to trigger resource exhaustion via specially crafted inputs. This issue has been patched in version 0.8.5.

CVE-2025-46560
vLLM is a high-throughput and memory-efficient inference and serving engine for LLMs. Versions starting from 0.8.0 and prior to 0.8.5 are affected by a critical performance vulnerability in the input preprocessing logic of the multimodal tokenizer. The code dynamically replaces placeholder tokens (e.g., <|audio_|>, <|image_|>) with repeated tokens based on precomputed lengths. Due to inefficient list concatenation operations, the algorithm exhibits quadratic time complexity (O(n²)), allowing malicious actors to trigger resource exhaustion via specially crafted inputs. This issue has been patched in version 0.8.5.
CVE-2025-46560
vLLM is a high-throughput and memory-efficient inference and serving e ...
GHSA-vc6m-hm49-g9qg
phi4mm: Quadratic Time Complexity in Input Token Processing leads to denial of service
Уязвимостей на страницу
Уязвимость | CVSS | EPSS | Опубликовано | |
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![]() | CVE-2025-46560 vLLM is a high-throughput and memory-efficient inference and serving engine for LLMs. Versions starting from 0.8.0 and prior to 0.8.5 are affected by a critical performance vulnerability in the input preprocessing logic of the multimodal tokenizer. The code dynamically replaces placeholder tokens (e.g., <|audio_|>, <|image_|>) with repeated tokens based on precomputed lengths. Due to inefficient list concatenation operations, the algorithm exhibits quadratic time complexity (O(n²)), allowing malicious actors to trigger resource exhaustion via specially crafted inputs. This issue has been patched in version 0.8.5. | CVSS3: 6.5 | 0% Низкий | 4 месяца назад |
![]() | CVE-2025-46560 vLLM is a high-throughput and memory-efficient inference and serving engine for LLMs. Versions starting from 0.8.0 and prior to 0.8.5 are affected by a critical performance vulnerability in the input preprocessing logic of the multimodal tokenizer. The code dynamically replaces placeholder tokens (e.g., <|audio_|>, <|image_|>) with repeated tokens based on precomputed lengths. Due to inefficient list concatenation operations, the algorithm exhibits quadratic time complexity (O(n²)), allowing malicious actors to trigger resource exhaustion via specially crafted inputs. This issue has been patched in version 0.8.5. | CVSS3: 6.5 | 0% Низкий | 4 месяца назад |
CVE-2025-46560 vLLM is a high-throughput and memory-efficient inference and serving e ... | CVSS3: 6.5 | 0% Низкий | 4 месяца назад | |
GHSA-vc6m-hm49-g9qg phi4mm: Quadratic Time Complexity in Input Token Processing leads to denial of service | CVSS3: 6.5 | 0% Низкий | 4 месяца назад |
Уязвимостей на страницу