Hybrid 5G Architecture with MEC Security Modules
Find Innovative SolutionsGenerate Solutions
Solution Overview
Problem
Private networks require significant lead times and costs for setup and maintenance, and may become outdated faster than public networks, while also potentially using lower quality components.
Innovation Solution
A hybrid network architecture that combines elements of internet and private networks, utilizing Multi-access Edge Computing (MEC) servers and advanced security modules to ensure high security, low latency, and efficient data transmission.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If a private network is deployed to ensure high security and low latency, then security and latency performance are improved, but setup lead time and operational costs increase significantly
Solution Approach 1:
The patent introduces a hybrid network architecture that acts as an intermediary between fully private and fully public networks. This hybrid architecture includes a private network component for secure data transmission and a public network component for general connectivity, allowing organizations to achieve high security requirements without committing to a complete private network deployment, thereby reducing setup lead time and costs.
Solution Approach 2:
The patent segments the network infrastructure into distinct private and public components. The private network handles sensitive data transmission and critical operations, while the public network handles non-critical traffic and provides general connectivity. This segmentation allows organizations to deploy only the necessary private network elements rather than building an entire private network, reducing deployment time and costs while maintaining security for critical functions.
2Reliability
If a private network is deployed to ensure high security and low latency, then security and latency performance are improved, but operational costs increase significantly
Solution Approach 1:
The patent segments network operations into private and public components, allowing organizations to operate expensive private network infrastructure only for critical secure communications while using cost-effective public network infrastructure for non-critical traffic, thereby reducing overall operational costs while maintaining security requirements.
Solution Approach 2:
The hybrid network architecture provides multi-functionality by handling both secure private communications and general public network access through a unified system. This allows the organization to use a single hybrid infrastructure for multiple purposes rather than maintaining separate private and public network operations, reducing operational costs through resource sharing and consolidated management.
3Adaptability or versatility
If a private network is built for specific use cases, then security and performance requirements are met, but the network becomes outdated faster and may use lower quality components
Solution Approach 1:
The patent implements a dynamic hybrid network architecture where the private and public network components can be flexibly configured and adjusted based on evolving organizational needs. This dynamic structure allows the network to adapt to changing requirements without complete redesign, extending the network's useful life and reducing obsolescence compared to static private network deployments.
Solution Approach 2:
The hybrid network architecture provides universal functionality by combining specialized private network capabilities with general-purpose public network access. This multi-functional design allows the network to serve multiple evolving use cases over time, preventing rapid obsolescence that occurs when networks are built for单一 specific purposes.
Data Source
AI summary
A system for securely transmitting data includes a data network that connects to an internet network using an internet protocol. The system also includes a user equipment (UE) that transmits a request to access enterprise data, and a base station that receives and forwards the access request to an enterprise platform. The enterprise platform includes a Multi-access Edge Computing (MEC) server that receives and forwards the access request to an enterprise server that accesses a data center storing the enterprise data. Within the enterprise platform, a first security module receives the access request from the base station, determines that an access request is secure, and forwards secure access requests to the MEC server through an encrypted connection. The MEC server transmits the processed data through the first security module to the base station and the UE, which are connected to the internet network with the first security module.


