Transfer Learning Based Efficient Traffic Prediction with Limited Training Data
Sajal Saha, Anwar Haque, and Greg Sidebottom

TL;DR
This paper explores how transfer learning can improve internet traffic prediction accuracy and efficiency when training data is limited, using deep sequence models and real-world datasets.
Contribution
It evaluates transfer learning with deep sequence models for traffic prediction, demonstrating improved accuracy and reduced execution time with limited data.
Findings
Transfer learning enhances prediction accuracy with small datasets.
Transfer learning reduces execution time in traffic prediction models.
Deep sequence models like LSTM and GRU perform well in transfer learning scenarios.
Abstract
Efficient prediction of internet traffic is an essential part of Self Organizing Network (SON) for ensuring proactive management. There are many existing solutions for internet traffic prediction with higher accuracy using deep learning. But designing individual predictive models for each service provider in the network is challenging due to data heterogeneity, scarcity, and abnormality. Moreover, the performance of the deep sequence model in network traffic prediction with limited training data has not been studied extensively in the current works. In this paper, we investigated and evaluated the performance of the deep transfer learning technique in traffic prediction with inadequate historical data leveraging the knowledge of our pre-trained model. First, we used a comparatively larger real-world traffic dataset for source domain prediction based on five different deep sequence…
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Taxonomy
TopicsTraffic Prediction and Management Techniques · Internet Traffic Analysis and Secure E-voting · Advanced Computing and Algorithms
Methodstravel james · Tanh Activation · Sigmoid Activation · Long Short-Term Memory
