Session 16: Optimizing Open RAN with Machine Learning | concept overview from com 3gpp Watch Video

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✓ Published: 03-Jun-2024
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Hello and welcome to Session 16 of our Open RAN series! Today, we're diving into the fascinating world of machine learning and its impact on Open RAN networks. We'll be focusing on how machine learning can boost Open RAN performance, specifically in predicting throughput based on MCS coding schemes. This is a crucial aspect for optimizing network performance and resource allocation in Open RAN environments.<br/><br/>1. Introduction to Machine Learning in Open RAN:<br/>Machine learning plays a pivotal role in enhancing Open RAN networks by enabling predictive capabilities, particularly in throughput optimization. By leveraging machine learning models, Open RAN can predict throughput based on the Modulation and Coding Scheme (MCS) coding scheme. Throughput prediction is critical for optimizing network performance and efficiently allocating resources, ensuring a seamless user experience.<br/><br/>2. Developing Machine Learning Models for Throughput Prediction:<br/>Developing a machine learning model for throughput prediction in Open RAN requires several key considerations. Firstly, the model needs to be trained on a dataset that includes throughput data and corresponding MCS values. The model should be designed to handle the complex relationships between these variables and predict throughput accurately. Mathematical functions and algorithms such as regression and neural networks are commonly used for this purpose, as they can effectively capture the underlying patterns in the data.<br/><br/>3. Deployment of Machine Learning Models in Open RAN:<br/>The deployment of machine learning models in Open RAN involves several steps. Once the model is trained and validated, it is deployed to the network where it operates in real-time. The model continuously monitors network conditions and predicts throughput based on incoming data. This information is then used to dynamically allocate network resources, optimizing performance and ensuring efficient operation.<br/><br/>4. Training Data Acquisition Process:<br/>Acquiring training data for the machine learning model involves collecting throughput data and corresponding MCS values from the network. This data is then cleaned and formatted to remove any inconsistencies or errors. The cleaned data is used to train the model, ensuring that it can accurately predict throughput in various network conditions. The training data acquisition process is crucial as it directly impacts the accuracy and reliability of the machine learning model.<br/><br/>Subscribe to \

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Welcome back to our journey through the world of Open RAN and machine learning. In this session, In this session, we&#39;ll explore the deployment of machine learning models in Open RAN networks, focusing on practical examples and deployment strategies.&#60;br/&#62;&#60;br/&#62;Deployment Example:&#60;br/&#62;Consider a scenario where an Open RAN operator wants to optimize resource allocation by predicting network congestion. They decide to deploy a machine learning model to predict congestion based on historical traffic data and network conditions.&#60;br/&#62;&#60;br/&#62;Deployment Steps:&#60;br/&#62;&#60;br/&#62;1. Data Collection and Preprocessing:&#60;br/&#62;The operator collects historical traffic data, including throughput, latency, and user traffic patterns.&#60;br/&#62;They preprocess the data to remove outliers and normalize features.&#60;br/&#62;&#60;br/&#62;2. Model Development:&#60;br/&#62;Data scientists develop a machine learning model, such as a regression model, to predict congestion based on the collected data.&#60;br/&#62;They use a development environment with libraries like TensorFlow or scikit-learn for model development.&#60;br/&#62;&#60;br/&#62;3. Offline Model Training and Validation (Loop 1):&#60;br/&#62;The model is trained on historical data using algorithms like linear regression or decision trees.&#60;br/&#62;Validation is done using a separate dataset to ensure the model&#39;s accuracy.&#60;br/&#62;&#60;br/&#62;4. Online Model Deployment and Monitoring (Loop 2):&#60;br/&#62;Once validated, the model is deployed in the network&#39;s edge servers or cloud infrastructure.&#60;br/&#62;Real-time network data, such as current traffic conditions, is fed into the model for predictions.&#60;br/&#62;Model performance is monitored using metrics like prediction accuracy and latency.&#60;br/&#62;&#60;br/&#62;5. Closed-Loop Automation (Loop 3):&#60;br/&#62;The model&#39;s predictions are used by the network&#39;s orchestration and automation tools to dynamically allocate resources.&#60;br/&#62;For example, if congestion is predicted in a certain area, the network can allocate additional resources or reroute traffic to avoid congestion.&#60;br/&#62;&#60;br/&#62;Subscribe to &#92;
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