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Comparison Overview

FEV China Co., Ltd.FEV China Co., Ltd.
VS
Dana IncorporatedDana Incorporated
FEV China Co., Ltd.

FEV China Co., Ltd.

No. 168, Huada Street, Yanjiao High-Tech Zone, Sanhe City, Langfang, Hebei, 065201, CN

Last Update: 25/02/2026

View Profile
Between 700 and 749
http://www.fev.com
747/1000Moderate

FEV is a leading independent international service provider of vehicle and powertrain development for hardware and software. The range of competencies includes the development and testing of innovative solutions up to series production and all related consulting service...

NAICS:3361
NAICS Definition:Motor Vehicle Manufacturing
Employees:131
Subsidiaries:25
12-month incidents
0
Known data breaches
0
Attack type number
0
Dana Incorporated

Dana Incorporated

3939 Technology Drive, Maumee, 43537, US

Last Update: 20/09/2026

View Profile
Between 750 and 799
https://www.dana.com
778/1000Fair

In a world of constant motion, life is about balance. At Dana, our balanced approach considers the people, products, and planet that sustain us all. For 120 years, we've been powering innovation to move our world. Today, over 25,000 Dana people, in more than 20 countr...

NAICS:3361
NAICS Definition:Motor Vehicle Manufacturing
Employees:16,577
Subsidiaries:6
12-month incidents
0
Known data breaches
0
Attack type number
0

Compliance Ranges Comparison

Based On Specific Ai Models Category
FEV China Co., Ltd.

FEV China Co., Ltd.

-
ISO 27001Not verified
ISO 27001
-
SOC2 Type 1Not verified
SOC2 Type 1
-
SOC2 Type 2Not verified
SOC2 Type 2
-
GDPRNot verified
GDPR
-
PCI DSSNot verified
PCI DSS
-
HIPAANot verified
HIPAA
Dana Incorporated

Dana Incorporated

-
ISO 27001Not verified
ISO 27001
-
SOC2 Type 1Not verified
SOC2 Type 1
-
SOC2 Type 2Not verified
SOC2 Type 2
-
GDPRNot verified
GDPR
-
PCI DSSNot verified
PCI DSS
-
HIPAANot verified
HIPAA

Benchmark & Cyber Underwriting Signals

Incidents vs Motor Vehicle Manufacturing Industry Avg (This Year)

No incidents recorded for FEV China Co., Ltd. in 2026.

Incidents

Incidents vs Motor Vehicle Manufacturing Industry Avg (This Year)

No incidents recorded for Dana Incorporated in 2026.

Incidents

Incident History - FEV China Co., Ltd. (X = Date, Y = Severity)

FEV China Co., Ltd. cyber incidents detection timeline including parent company and subsidiaries.

No timeline data available
R - Ransomware
C - Cyber Attack
D - Data Breach
V - Vulnerability

Incident History - Dana Incorporated (X = Date, Y = Severity)

Dana Incorporated cyber incidents detection timeline including parent company and subsidiaries.

No timeline data available
R - Ransomware
C - Cyber Attack
D - Data Breach
V - Vulnerability

Notable Incidents

Last Cyber / HR Incidents / Global...
FEV China Co., Ltd.

FEV China Co., Ltd.

Incidents
No explicit notable incidents reported.
Dana Incorporated

Dana Incorporated

Incidents
No explicit notable incidents reported.

FAQ

Between FEV China Co., Ltd. company and Dana Incorporated company, which one has the best AI Cybersecurity Score ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has experienced more cyber incidents in the past ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has experienced more cyber incidents this year ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has experienced at least one ransomware attack ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has experienced at least one data breach ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has experienced at least one targeted cyberattack ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has experienced at least one vulnerability ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one holds the most compliance certifications ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one holds the fewest compliance certifications ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has the most subsidiaries ?
Between FEV China Co., Ltd. company and Dana Incorporated company, which one has the largest number of employees ?
Between FEV China Co., Ltd. and Dana Incorporated, which company holds both SOC 2 Type 1 certifications ?
Between FEV China Co., Ltd. and Dana Incorporated, which company holds both SOC 2 Type 2 certifications ?
Which company is ISO 27001 certified - FEV China Co., Ltd. or Dana Incorporated ?
Which company is PCI DSS compliant - FEV China Co., Ltd. or Dana Incorporated ?
Between FEV China Co., Ltd. and Dana Incorporated, which company complies with HIPAA regulations for healthcare data ?
Between FEV China Co., Ltd. and Dana Incorporated, which company complies with GDPR requirements ?

Latest Global CVEs

CVE-2026-105761
SUMMARY

Dify is an open-source LLM app development platform. Prior to 1.16.0, the PUT /console/api/apps/<app_id>/server endpoint in api/controllers/console/app/mcp_server.py used AppMCPServerController.put() to retrieve an AppMCPServer by the client-supplied server ID without verifying that the server belonged to the requested application and tenant. An authenticated workspace member could therefore change another application's MCP server status and parameters, potentially redirecting data or disabling the service. This issue is fixed in version 1.16.0.

PUBLISHED
Date2026-10-05
UPDATED
Date2026-10-05
RISK INFORMATION (Score: 7.1)
CVSS3
Base Score: 7.1
Complexity: LOW
CVSS:3.1/AV:N/AC:L/PR:L/UI:N/S:U/C:N/I:H/A:L
IMPACT SCORE
4.2
EXPLOITABILITY
2.8
CVE-2026-105760
SUMMARY

vLLM is an inference and serving engine for large language models. Prior to 0.30.0, a caller can use the request-level media_io_kwargs field to select the GLMGA video backend and supply large values for the fps and max_frames options without a strict work ceiling. GLMGA constructs and deduplicates an attacker-sized pre-decode frame-index list, allowing a compact request and tiny valid video to consume disproportionate CPU time and memory in the shared media-loading executor. This issue is fixed in version 0.30.0.

PUBLISHED
Date2026-10-05
UPDATED
Date2026-10-05
RISK INFORMATION (Score: 5.3)
CVSS3
Base Score: 5.3
Complexity: LOW
CVSS:3.1/AV:N/AC:L/PR:N/UI:N/S:U/C:N/I:N/A:L
IMPACT SCORE
1.4
EXPLOITABILITY
3.9
CVE-2026-105759
SUMMARY

vLLM is an inference and serving engine for large language models. Prior to 0.30.0, the Rust frontend's track_http_metrics middleware records the raw HTTP method token as a Prometheus label for requests reaching registered routes. An unauthenticated attacker can send unique arbitrary method tokens to unguarded routes such as /tokenize, causing Prometheus's Family::get_or_create function to permanently create counter and histogram label sets. Those label sets increase process memory usage and enlarge the /metrics response until the service or monitoring path is exhausted. This issue is fixed in version 0.30.0.

PUBLISHED
Date2026-10-05
UPDATED
Date2026-10-05
RISK INFORMATION (Score: 5.9)
CVSS3
Base Score: 5.9
Complexity: HIGH
CVSS:3.1/AV:N/AC:H/PR:N/UI:N/S:U/C:N/I:N/A:H
IMPACT SCORE
3.6
EXPLOITABILITY
2.2
CVE-2026-105758
SUMMARY

vLLM is an inference and serving engine for large language models. From 0.24.0 until 0.30.0, the Qwen2VLVideoBackend and Qwen3VLVideoBackend classes accept request-level values for the media_io_kwargs.video.max_frames and media_io_kwargs.video.fps fields without enforcing server-side ceilings. An unauthenticated caller can submit these values to the /tokenize endpoint, causing the sampler to decode every frame selected from attacker-controlled video input, consume disproportionate frontend memory, and potentially terminate the API process before scheduling or admission control. The Rust frontend is not affected because it rejects the media_io_kwargs field. This issue is fixed in version 0.30.0.

PUBLISHED
Date2026-10-05
UPDATED
Date2026-10-05
RISK INFORMATION (Score: 5.3)
CVSS3
Base Score: 5.3
Complexity: LOW
CVSS:3.1/AV:N/AC:L/PR:N/UI:N/S:U/C:N/I:N/A:L
IMPACT SCORE
1.4
EXPLOITABILITY
3.9
CVE-2026-105757
SUMMARY

vLLM is an inference and serving engine for large language models. Prior to 0.30.0, structured-output request failures can escape request-scoped validation and reach the EngineCore fatal-error path. A per-request backend mismatch can re-raise a grammar compilation exception, padding produced by the ngram_gpu speculative-decoding mode can pass a negative token to guidance validation, and the Rust frontend can admit empty structured-output values that the Python frontend rejects, allowing ordinary constrained-generation requests to terminate the shared engine. This issue is fixed in version 0.30.0.

PUBLISHED
Date2026-10-05
UPDATED
Date2026-10-05
RISK INFORMATION (Score: 6.5)
CVSS3
Base Score: 6.5
Complexity: LOW
CVSS:3.1/AV:N/AC:L/PR:L/UI:N/S:U/C:N/I:N/A:H
IMPACT SCORE
3.6
EXPLOITABILITY
2.8