Cross-Framework Mapping

3GPP Security Architecture (TS 33.501 — 5G Security)vsSigstore — Software Artifact Signing and Verification

See exactly how 3GPP Security Architecture (TS 33.501 — 5G Security) controls map to Sigstore — Software Artifact Signing and Verification. Pre-computed mappings, identified gaps, and coverage analysis.

5
Controls Mapped
17
Gaps Found
23%
Coverage

According to the TheArtOfService Compliance Knowledge Graph:

3GPP Security Architecture (TS 33.501 — 5G Security) maps to Sigstore — Software Artifact Signing and Verification with 23% coverage across 5 directly mapped controls. Analysis of 22 3GPP Security Architecture (TS 33.501 — 5G Security) controls identifies 17 compliance gaps — primarily concentrated in Authentication and Key Management.

Source: TheArtOfService Knowledge Graph | 22 controls analysed | 693 frameworks | 819K+ cross-framework mappings

Control Mappings

Showing 5 of 5 mapped controls across 2 domains. Sign up to explore all 819K+ mappings across 693 frameworks.

Subscriber Privacy and Service Security(4 mappings)

6.12Subscription Identifier Privacy
SIGSTORE-COS-2Key-Based Signing
A.1Governance Framework
SIGSTORE-VER-2Supply Chain Attestation
A.3Asset Management
SIGSTORE-VER-2Supply Chain Attestation
A.4Supply Chain Risk Management
SIGSTORE-VER-2Supply Chain Attestation

Radio and Access Network Security(1 mappings)

6.6RRC and UP Ciphering and Integrity
SIGSTORE-COS-2Key-Based Signing

Related Comparisons

Other 3GPP Security Architecture (TS 33.501 — 5G Security) comparisons

Other Sigstore — Software Artifact Signing and Verification comparisons

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What are the key differences between 3GPP Security Architecture (TS 33.501 — 5G Security) and Sigstore — Software Artifact Signing and Verification?

3GPP Security Architecture (TS 33.501 — 5G Security) has 22 controls across its framework, while Sigstore — Software Artifact Signing and Verification covers 13 controls. Direct mapping analysis identifies 5 overlapping controls (23% coverage). The frameworks diverge most significantly in Authentication and Key Management, where 5 3GPP Security Architecture (TS 33.501 — 5G Security) controls have no direct Sigstore — Software Artifact Signing and Verification equivalent.

How many controls map between 3GPP Security Architecture (TS 33.501 — 5G Security) and Sigstore — Software Artifact Signing and Verification?

Of 22 total 3GPP Security Architecture (TS 33.501 — 5G Security) controls, 5 map directly to Sigstore — Software Artifact Signing and Verification controls — representing 23% coverage. The remaining 17 controls represent compliance gaps requiring additional documentation or compensating controls to satisfy both frameworks simultaneously.

What are the compliance gaps when mapping 3GPP Security Architecture (TS 33.501 — 5G Security) to Sigstore — Software Artifact Signing and Verification?

17 3GPP Security Architecture (TS 33.501 — 5G Security) controls have no direct equivalent in Sigstore — Software Artifact Signing and Verification. The highest concentration of gaps is in Authentication and Key Management with 5 unmapped controls. These gaps represent areas where additional controls, policies, or documentation must be created to achieve compliance with both frameworks.

Which control domains have the most gaps between 3GPP Security Architecture (TS 33.501 — 5G Security) and Sigstore — Software Artifact Signing and Verification?

The domain with the highest gap count is Authentication and Key Management (5 gaps). Export the full domain-by-domain gap breakdown via the Professional tier to generate a prioritised remediation roadmap.

This platform provides educational compliance tools, not legal, regulatory, or professional compliance advice. Cross-framework mappings are AI-assisted interpretations and do not reproduce or replace official standards. Framework names and trademarks belong to their respective owners. Consult qualified professionals for your specific compliance requirements. See our Terms of Service.