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CENTS: Generating synthetic electricity consumption time series for rare and unseen scenarios

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arxiv 2501.14426 v3 pith:4Y2CEUUW submitted 2025-01-24 cs.LG

classification cs.LG
keywords contextseriestimedataconsumptionelectricitymodelstraining
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Recent breakthroughs in large-scale generative modeling have demonstrated the potential of foundation models in domains such as natural language, computer vision, and protein structure prediction. However, their application in the energy and smart grid sector remains limited due to the scarcity and heterogeneity of high-quality data. In this work, we propose a method for creating high-fidelity electricity consumption time series data for rare and unseen context variables (e.g. location, building type, photovoltaics). Our approach, Context Encoding and Normalizing Time Series Generation, or CENTS, includes three key innovations: (i) A context normalization approach that enables inverse transformation for time series context variables unseen during training, (ii) a novel context encoder to condition any state-of-the-art time-series generator on arbitrary numbers and combinations of context variables, (iii) a framework for training this context encoder jointly with a time-series generator using an auxiliary context classification loss designed to increase expressivity of context embeddings and improve model performance. We further provide a comprehensive overview of different evaluation metrics for generative time series models. Our results highlight the efficacy of the proposed method in generating realistic household-level electricity consumption data, paving the way for training larger foundation models in the energy domain on synthetic as well as real-world data.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Diff-MN: Diffusion Parameterized MoE-NCDE for Continuous Time Series Generation with Irregular Observations

    cs.LG 2026-01 conditional novelty 6.0 of 10

    Diff-MN generates continuous, arbitrary-resolution time series from irregular observations by diffusing MoE-NCDE dynamics weights, reporting consistent wins over KO-VAE and GT-GAN on ten datasets.

  2. SynEnergy: Anomaly Semantic-Guided Diffusion for Synthetic Energy Data Generation

    cs.LG 2026-08 conditional novelty 5.5 of 10

    SynEnergy learns region-level anomaly semantics from residual energy data and injects them into a diffusion generator, improving anomaly preservation fidelity by an average of 12.21% over 11 baselines.

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