<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>3gpp on Le Site de François</title><link>https://lesitedefrancois.be/en/tags/3gpp/</link><description>Recent content in 3gpp on Le Site de François</description><generator>Hugo -- gohugo.io</generator><language>en</language><copyright>© 2026 François</copyright><atom:link href="https://lesitedefrancois.be/en/tags/3gpp/index.xml" rel="self" type="application/rss+xml"/><item><title>3GPP SCAS</title><link>https://lesitedefrancois.be/en/compliance/scas/</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://lesitedefrancois.be/en/compliance/scas/</guid><description>&lt;p&gt;&lt;strong&gt;3GPP Security Assurance Specifications (SCAS)&lt;/strong&gt; are technical specifications developed by &lt;strong&gt;3GPP&amp;rsquo;s SA3 working group&lt;/strong&gt; (Security) that define security requirements and associated test cases for specific network product classes — each 3GPP-defined network function (AMF, SMF, UPF, gNB, MME, etc.) has its own SCAS document. 3GPP is the &lt;strong&gt;international&lt;/strong&gt; standards body responsible for mobile telecommunications standards (comprising seven organizational partners covering Europe, US, China, Japan, Korea, India), making SCAS a globally recognized specification set rather than a national or regional scheme. Each SCAS document follows a structured approach: it identifies the &lt;strong&gt;assets&lt;/strong&gt; of the network product class that require protection, performs a &lt;strong&gt;threat analysis&lt;/strong&gt; describing how those assets can be exploited, defines &lt;strong&gt;security requirements&lt;/strong&gt; (objectives) that mitigate the identified threats, and specifies concrete &lt;strong&gt;test cases&lt;/strong&gt; to verify that a product implementation meets those requirements. SCAS specifications serve as the technical foundation for the &lt;strong&gt;GSMA NESAS&lt;/strong&gt; scheme — when a vendor submits a network product for NESAS evaluation, accredited test laboratories evaluate it against the applicable SCAS test cases. Compliance is &lt;strong&gt;voluntary&lt;/strong&gt; (there is no legal mandate to pass SCAS tests), but SCAS/NESAS evaluation results are increasingly used as a procurement requirement by telecom operators and are referenced by the EU 5G Security Toolbox and national security assessments. The list of adopted SCAS documents is maintained by the GSMA in FS.63 and continues to expand as 3GPP defines new network functions.&lt;/p&gt;</description></item><item><title>5G Core (5GC)</title><link>https://lesitedefrancois.be/en/telco/5gc/</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://lesitedefrancois.be/en/telco/5gc/</guid><description>&lt;p&gt;The &lt;strong&gt;5G Core (5GC)&lt;/strong&gt; is the packet core network architecture defined by &lt;strong&gt;3GPP&lt;/strong&gt; from &lt;strong&gt;Release 15&lt;/strong&gt; onward as the control and user-plane backbone of standalone 5G deployments. It replaces the Evolved Packet Core (EPC) of 4G LTE not through incremental evolution but through a deliberate architectural break: where the EPC was built around monolithic, hardware-bound network functions interconnected by point-to-point interfaces, the 5GC is designed from the ground up around a &lt;strong&gt;Service-Based Architecture (SBA)&lt;/strong&gt; — every network function exposes its capabilities as a set of services over a &lt;strong&gt;common HTTP/2 bus&lt;/strong&gt; (the Service-Based Interface, SBI), and any authorised consumer NF can discover and invoke those services through the &lt;strong&gt;NRF (Network Repository Function)&lt;/strong&gt; without bilateral peering agreements or proprietary protocols. This shift reflects two structural requirements of 5G that EPC could not satisfy: &lt;strong&gt;network slicing&lt;/strong&gt; — the ability to run logically independent end-to-end networks (each with its own QoS, isolation, and lifecycle) on shared physical infrastructure — and &lt;strong&gt;cloud-native deployment&lt;/strong&gt;, where NFs run as containerised microservices on commodity compute, can be horizontally scaled, and are managed by standard Kubernetes-compatible orchestration rather than vendor-specific element managers. The 5GC also enforces a hard separation between &lt;strong&gt;Control Plane (CP)&lt;/strong&gt; and &lt;strong&gt;User Plane (UP)&lt;/strong&gt; — the &lt;strong&gt;CUPS&lt;/strong&gt; principle inherited from 3GPP Release 14 and fully operationalised here — so that the &lt;strong&gt;UPF (User Plane Function)&lt;/strong&gt; handling packet forwarding, QoS enforcement, and traffic anchoring can be distributed to the edge independently of the control logic, enabling ultra-low-latency and MEC scenarios without redesigning the control plane. The architecture is access-agnostic: the same 5GC serves &lt;strong&gt;NR (New Radio)&lt;/strong&gt;, &lt;strong&gt;eLTE&lt;/strong&gt;, &lt;strong&gt;Wi-Fi (untrusted/trusted non-3GPP access)&lt;/strong&gt;, and fixed-wireless access through a unified &lt;strong&gt;N2/N3&lt;/strong&gt; reference point toward the access network and a common &lt;strong&gt;UE context&lt;/strong&gt; model in the AMF.&lt;/p&gt;</description></item><item><title>6G</title><link>https://lesitedefrancois.be/en/telco/6g/</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://lesitedefrancois.be/en/telco/6g/</guid><description>&lt;p&gt;&lt;strong&gt;6G&lt;/strong&gt; denotes the next generation of mobile cellular systems, framed internationally as &lt;strong&gt;IMT-2030&lt;/strong&gt; by &lt;strong&gt;ITU-R&lt;/strong&gt; and studied in &lt;strong&gt;3GPP&lt;/strong&gt; from &lt;strong&gt;Release 18&lt;/strong&gt; (5G Advanced) onward with dedicated 6G work items accelerating in &lt;strong&gt;Release 19–21&lt;/strong&gt;. Commercial deployment is widely targeted for &lt;strong&gt;around 2030&lt;/strong&gt;, following the typical decade-long cycle after 5G (IMT-2020). Unlike incremental 5G releases, 6G research programmes emphasise a &lt;strong&gt;native integration of AI/ML&lt;/strong&gt; in the air interface and the core (not only as an overlay analytics function), &lt;strong&gt;Integrated Sensing and Communication (ISAC)&lt;/strong&gt; — using radio resources jointly for connectivity and environment sensing — and exploration of &lt;strong&gt;sub-terahertz&lt;/strong&gt; and advanced &lt;strong&gt;MIMO&lt;/strong&gt; for extreme capacity and sensing resolution. Energy efficiency, &lt;strong&gt;ubiquitous coverage&lt;/strong&gt; (including NTN/satellite as a first-class component), and &lt;strong&gt;trustworthy / resilient&lt;/strong&gt; network operation are recurring design goals across regional initiatives (Europe’s &lt;strong&gt;Hexa-X / Hexa-X-II&lt;/strong&gt;, Korea’s &lt;strong&gt;6G R&amp;amp;D&lt;/strong&gt;, Japan’s &lt;strong&gt;Beyond 5G&lt;/strong&gt;, and industry forums such as &lt;strong&gt;Next G Alliance&lt;/strong&gt; in North America).&lt;/p&gt;</description></item></channel></rss>