Multi-task Optimization Based Co-training for Electricity Consumption Prediction
Hui Song, A. K. Qin, Chenggang Yan

TL;DR
This paper introduces a multi-task optimization co-training framework for electricity consumption prediction, enabling knowledge sharing among related tasks to improve accuracy across different time horizons and locations.
Contribution
The paper proposes a novel MTO-CT framework that uses evolutionary methods for inter-task knowledge transfer in multi-task electricity consumption prediction.
Findings
MTO-CT outperforms independent task solutions in prediction accuracy.
Knowledge transfer improves performance across different prediction horizons.
Framework effectively leverages shared information among tasks.
Abstract
Real-world electricity consumption prediction may involve different tasks, e.g., prediction for different time steps ahead or different geo-locations. These tasks are often solved independently without utilizing some common problem-solving knowledge that could be extracted and shared among these tasks to augment the performance of solving each task. In this work, we propose a multi-task optimization (MTO) based co-training (MTO-CT) framework, where the models for solving different tasks are co-trained via an MTO paradigm in which solving each task may benefit from the knowledge gained from when solving some other tasks to help its solving process. MTO-CT leverages long short-term memory (LSTM) based model as the predictor where the knowledge is represented via connection weights and biases. In MTO-CT, an inter-task knowledge transfer module is designed to transfer knowledge between…
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Taxonomy
TopicsEnergy Load and Power Forecasting · Music and Audio Processing · Building Energy and Comfort Optimization
