Page 189 - AI for Good-Innovate for Impact Final Report 2024
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AI for Good-Innovate for Impact



               received, codecs), and equipment metrics (such as CPU, disk, memory, and network usage)
               would be included. Interaction through an interface for real-time/near-real-time metrics retrieval
               would be facilitated by the environment.

               The simulated data would then be analyzed as a time series from a cumulative database and            43 - NS
               as a Reinforcement Learning agent-environment for optimal policy learning. Adaptation of
               the 5G network for KPI violations, error detection, or capacity bottlenecks would be pursued.
               Predictions on KPI violations, error detection, or capacity bottlenecks, along with optimal policy
               triggers, would be demonstrated and published based on the simulated data patterns.


               43�3� Use case requirements

               •    REQ-01: It is critical that the solution/system enables autonomous network operations
                    through ML/AI to simplify deployment and configuration tasks.
               •    REQ-02: It is critical that the solution/system incorporates a Digital Twin for efficient
                    resource management, projecting resource utilization to optimize infrastructure usage.
               •    REQ-03:  It is critical that the solution/system provides monitoring, dashboard and
                    dispatch capabilities for responsive observability, allowing operators to visualize and
                    interact with network configurations and projected traffic.
               •    REQ-04: It is critical that the solution/system includes security measures for continuous
                    monitoring of network traffic and automated enforcement of security policies.


               43�4� Sequence diagram


















































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